Abstract
Krabbe Disease (KD) is an autosomal metabolic disorder that affects both the central and peripheral nervous systems. It is caused by a functional deficiency of the lysosomal enzyme, galactocerebrosidase (GALC), resulting in an accumulation of the toxic metabolite, psychosine. Psychosine accumulation affects many different cellular pathways, leading to severe demyelination. Although there is currently no effective therapy for Krabbe disease, recent gene therapy-based approaches in animal models have indicated a promising outlook for clinical treatment. This review highlights recent findings in the pathogenesis of Krabbe disease, and evaluates AAV-based gene therapy as a promising strategy for treating this devastating pediatric disease.
Krabbe Disease (KD) is a devastating pediatric lysosomal storage disorder that affects both the central and peripheral nervous systems. It was first described in detail in 1916 by a Danish neurologist, Knud Krabbe who also lends his name to the disease (). This autosomal recessive disease is caused by the functional deficiency of the lysosomal enzyme, galactocerebrosidase (GALC). GALC degrades complex galactosides, carbohydrate molecules such as galactocerebrosides and galactosylsphingosine, to provide metabolites, such as sphingosine and ceramide, which are critical for the synthesis and maintenance of myelin, the insulating sheath that improves electrical transmission along neurons. The absence of GALC results in the accumulation of psychosine, which is toxic at high concentrations. Disease symptoms vary in severity, and are classified based on the age at which symptoms appear () (Figure 1).
Figure 1
In infants, KD is generally diagnosed by 4 months of age, with death occurring within 2–3 years if left untreated, largely due to organ failure because of severe demyelination (). Common symptoms include irritability, paralysis, blindness, hearing loss, and seizures. The severity of symptoms in early onset KD may result from a complete loss of GALC activity (, ). In late onset KD, the appearance of symptoms is more variable, with the oldest patient diagnosed at 72 years ().
This review describes recent findings that provide insights into pathological mechanisms of KD and evaluates therapeutic avenues thus far explored in treating KD, with a focus on AAV-based gene therapies.
Structure and Biochemistry of Galactosylcerebrosidase (GALC)
In humans, the GALC gene is located on chromosome 14 (14q31.3) and has 17 exons (). The GALC protein comprises 669 amino acids and has six potential N-glycosylation sites that engage the mannose-6-phosphate (M6P) receptor for trafficking to lysosomes ().
The structure of GALC includes an overall fold that comprises three domains: a central triosephosphate isomerase (TIM) barrel, a β-sandwich domain, and a lectin domain that make up the GALC substrate-binding site (). While the organization of human GALC has been described, the crystal structure is not yet available (). The structure of mouse GALC (83% identity with human GALC), however, both alone and in complex with D-galactose, one of its products, has been solved () (Figure 2). This structure shows the unique domain arrangement of GALC, and identifies the nature of substrate binding. In addition, it highlights the site of catalysis and provides insight into the role of mutations occurring in human KD patients. Understanding how mutations impact the structure of GALC has important implications for the rational design of therapeutics such as pharmacological chaperones. Computational advancements in artificial intelligence and machine learning have improved our understanding of positional implications of mutations in the 3 dimensional structure of proteins with databases such as HOPE ().
Figure 2
GALC catalyzes the synthesis of galactose from glycosphingolipids like galactocerebroside and galactosylsphingosine (Figure 3). In the absence of GALC, a secondary β-galactosidase can catalyze the formation of galactose from galactosylceramide. In addition, psychosine can also be generated directly from galactocerebrosides by acid ceramidase (ACDase) (), a lysosomal enzyme that is activated through various external stimuli including, but not limited to, Saposin D, TNFα, and IL-1β (). Interestingly, GALC is the only enzyme that can degrade psychosine () thus its absence leads to a dysregulated accumulation of psychosine that is toxic at high concentrations.
Figure 3
Psychosine accumulation, however, is not unique to deficiencies in GALC. A small glycoprotein, Saposin A (SapA) enhances GALC activity through the formation of a heterodimeric complex with GALC where it helps to orient substrates for effective cleavage (). Although rare, deficiency in SapA can also lead to clinical symptoms that phenocopy early onset KD (). In SapA deficiency, GALC enzymatic activity is preserved but psychosine is elevated to levels generally found in symptomatic KD patients. These biochemical pathways are critical in myelin synthesis and homeostasis.
Epidemiology, Genetics, and Biomarkers
Multiple epidemiological studies have been conducted on KD but the data has been difficult to reconcile due to the use of different study populations and varying methods of estimation (). The accepted incidence of KD in Europe is 1:100,000 (, ) and in some communities with consanguineous marriages like the Druze and Muslim Arabs, the incidence of KD is estimated at 1:100 to 1:150 (). Although previous studies suggest an estimated incidence of 1:250,000 in the USA (), an epidemiological study done in New York state (NYS) using newborn screening data estimated the state-wide incidence to be 1:394,000 (). A recent study in Spain unexpectedly found the prevalence of KD to be highest compared to several other lysosomal storage disorders, including Pelizaeus-Merzbacher disease and Sulfatide Lipidoses (), indicating a need for accurate regional disease incidence and patient demographic studies. Currently, newborn screening with elevated psychosine as a marker is increasingly being used for detection of KD () though presently, only eight states in the USA include KD on their newborn screening panel.
To date, at least 147 mutations in GALC have been documented, with 80 of them considered to be “severe” due to their impact on GALC activity (). These mutations can be missense mutations, non-sense mutations (premature stop codons), deletion mutations (particularly a 30 kb deletion that is found in 30–50% of infantile Krabbe disease cases), insertions, and frameshift mutations (). While disease-associated mutations in GALC occur throughout the different domains, certain homozygous mutations result in more severe symptoms than others (Figure 2). Mutations such as E114K and S257F in the TIM barrel domain, L364R and W410G in the β-sandwich domain, and G537R and L629R in the lectin domain cause severe misfolding and likely result in early degradation of GALC (). Some mutations, such as E215K, can cause severe disease by disrupting the interaction with auxiliary proteins, such as SapA, and impacting GALC function (). Similarly, the D528N mutation (common among Muslim Arab populations in Israel), which introduces a new glycosylation site and impairs GALC localization to the lysosome, can lead to severe disease (, ). However, the correlation between GALC mutations and disease severity can be unpredictable since mutations are not always inherited in a homozygous manner.
Geographical differences in disease-causing mutations have also been reported. For instance, the missense mutations that are frequently found in KD patients in China (H253Y, S259L, P318L, F350V, T428A, L530P, and G586D) are different than those found in Europe and Japan (). In Japan, the three most common missense mutations were found to be I66M + I289V, G270D, and T652P (). Similarly, a study characterizing GALC mutations in European KD patients reported four missense mutations that included P318R, G323R, I384T, and Y490N (). In the USA, based on the NYS referral population, the most common pathogenic mutations were T96A and Y303C, which frequently co-occurred with non-pathogenic enzyme reducing mutations R168C, D232N, and I546T ().
In all cases and across species, pathogenic mutations in GALC are associated with a dramatic increase in levels of psychosine within the central nervous system (CNS) and peripheral nervous system (PNS). Although psychosine levels are a better biomarker for clinical diagnosis compared with GALC activity, there is some debate concerning its use as a presymptomatic biomarker. Hypoxanthine, a metabolite in the purine nucleotide salvage pathway is elevated in Twitcher mice prior to onset of KD symptoms (), and may be a promising alternative to support early treatment. However, further research is required to validate it for clinical use.
Understanding KD Through Animal Models
KD is unusual among other rare diseases in having a range of animal models available that show reduced GALC activity. These animal models are listed by species and include cats, mice, dogs, sheep, and non-human primates, among which mice have been the most thoroughly characterized in terms of disease progression (Table 1).
Table 1
| Animal model/mutation/mean survival of untreated animals | Parameter | References |
|---|---|---|
![]() Murine (Twitcher) W339X 35-45 days | Weight | (–) |
| Motor activity | (–) | |
| Psychosine levels | (, , , ) | |
| GALC activity | (, , ) | |
| GALC immunohistochemistry | (–) | |
| Myelination | (, –) | |
| Neuroinflammation | (–, ) | |
| NMJ staining | () | |
| Neuroinflammation | (, ) | |
| Globoid cells | (, , , ) | |
| Immune cell counts | () | |
| Nerve Conduction | () | |
![]() Canine (West Highland White Terrier) Y158S and P639S 16 weeks | Psychosine levels | (, ) |
| Nerve Conduction | (, ) | |
| GALC levels | (, , ) | |
| Myelination; Globoid cells | () | |
![]() Non-human primate (Rhesus macaque) Δ387-388 (nuc) 1 year | Globoid cells | () |
![]() Feline (Domestic longhaired cat) Not known 21 weeks | Myelination (IHC); Globoid cells | () |
![]() Ovine (Merino sheep) Not known Not known | GALC & Psychosine levels; Myelination; Globoid cells | () |
A summary of published studies characterizing various parameters in animal models of Krabbe disease.
Much of the current knowledge on KD was gleaned from characterization of the Twitcher mouse, which arose due to a spontaneous mutation (W339X) at Jackson Labs in 1976. The mouse and human GALC proteins bear 83% identity (). Since its discovery, the Twitcher mouse has been well-characterized and used in a number of therapeutic studies. In general, the mice begin to show symptoms by 3 weeks, and live up to 35–45 days. Another model called the Twi-5j (with an E130K missense mutation in GALC) presents more aggressive symptoms and shorter life span compared to the Twitcher mouse, though reasons for this severity are not clear. Twi-5j mice begin to show symptoms by about 2 weeks and have a 21–30 day lifespan. These mice may have a stronger neuroinflammatory component than the Twitcher mice (). The E130K mutation has also been reported in several patients with infantile KD (). A third mouse model called twi-trs was generated by crossing the Twitcher mouse with a hybrid background mouse (129SVJ and FVB/N) bearing the same W339X mutation. These mice are larger in size and have a slightly extended lifespan of 50–62 days (). Although the Twitcher mouse recapitulates the pathological symptoms of KD quite well, the symptoms are more severe in the peripheral nervous system. Unlike the Twitcher mouse, human pediatric KD patients with early onset disease generally present with more severe symptoms in the central nervous system.
A canine model of KD is available on the white terrier (Cairn and West Highland) background. The human and canine versions of GALC share 87% sequence similarity, though the 3' UTR in dogs is 1 kb shorter (). Mutant dogs have two amino acid changes (Y158S and P639S), of which the former is implicated in causing disease (). The model has been characterized in terms of its survival, body weight, GALC and psychosine levels, peripheral nerve conduction, brainstem evoked auditory responses, and neuromuscular strength. In general, the mutant dogs show disease symptoms by 6 weeks, and live up to about 16 weeks. Cerebellum and sciatic nerves appear to have the highest levels of psychosine accumulation (). More recent reports indicate that psychosine levels are extremely high in the internal capsule of the cerebral hemispheres ().
A rhesus macaque model with a two base deletion at positions 387–388 in exon 4 resulting in a frameshift in GALC and subsequent degradation of the resulting protein was first described in 1989 (, ). Clinically, these macaques are similar to humans and display significant weight loss, eating and respiratory difficulties, and muscle weakness. Severe demyelination can be seen in both the CNS and PNS of affected macaques, including both gliosis and the presence of multinucleated globoid cells (). The amino acid sequence identity between non-human primate and human GALC is 97% (). This model has been studied well, though not to the same extent as the murine and canine models. Other animal models that show reduced GALC activity like the merino sheep and the cat have not been well-characterized.
The common theme in all the animal models and human patients is the psychosine accumulation due to the reduction of functional GALC that results in disease symptoms associated with KD. Preclinical studies, largely centered on the Twitcher mouse, have demonstrated that disease symptoms can be reversed through various therapeutic efforts, indicating the appropriateness of these animal models for developing future therapies.
Effects of Psychosine on Pathophysiology of KD
The psychosine hypothesis was proposed nearly 50 years ago and states that a loss in GALC activity leads to psychosine accumulation, which in turn causes the neural pathology seen in KD (). The cellular function and concentration of psychosine at steady state remains to be determined. Given the variability in GALC activity levels and disease severity, particularly in late-onset KD patients, psychosine is used as a biomarker for KD diagnosis as well as for reliably distinguishing between early- and late-onset KD (, ). A summary of the effects of elevated psychosine levels is shown in Figure 4. We briefly describe recent findings elucidating the role of psychosine in several relevant areas including apoptotic pathways, demyelination, and neuroinflammation; details on the mechanistic role of psychosine in KD pathogenesis have recently been reviewed elsewhere (83).
Figure 4
Apoptotic Pathways in Neural Cell Types
Oligodendrocytes and Schwann cells are particularly sensitive to psychosine-induced apoptosis during the initial stages of myelination and maturation (84). Although the precise mechanism is unknown, psychosine accumulation may increase lysophosphatidylcholine (LPC) and arachidonic acid levels in the cytoplasm, causing downstream inflammation and apoptosis in oligodendrocytes. Indeed, high levels of LPC have been observed both in the brains of human KD patients and Twitcher mice (80). In a recent study utilizing patient-derived iPSCs, a significant impact of GALC deficiency was observed particularly on the ability of progenitor cells to differentiate into oligodendrocytes at early timepoints (between day 7 and 14 following differentiation) (85). At least one important regulator of oligodendrocyte differentiation appears to be microRNA-219 (miR-219). Reduced expression of miR-219 in twitcher mouse oligodendrocyte precursor cells impeded oligodendrocyte maturation. Transfected miR-219 significantly reduced the number of apoptotic oligodendrocytes as well as psychosine levels in the differentiated cells (though not back to wild-type levels) (86). The mechanism of action for miR-219 in reducing psychosine levels is not yet clear. miR-219 also appeared to impact neuronal differentiation but the results were inconsistent between two independent iPSC lines. The differentiated neurons appeared to have an altered profile of lipids, suggesting deviations in lipid metabolism—an imbalance that could ultimately lead to apoptosis (85). Apoptosis in neurons may also proceed through psychosine-mediated ROS generation, as evidenced by both the presence of fundamental autophagy markers (LC3 and Beclin-1) and ubiquitin and p62 aggregates in the brain and sciatic nerve of both early and late symptomatic Twitcher mice (84). The p62 aggregates reduce the amount of autophagy receptors and cargoes and stall autophagy, leading to an accumulation of damaged proteins and organelles that easily oxidize and increase ROS levels. This study suggested that psychosine may be responsible for causing a dose and time-dependent accumulation of autophagosomes and autolysosomes in the CNS (
Demyelination
Psychosine-mediated loss of oligodendrocytes and Schwann cells leads to widespread demyelination within both the CNS and PNS, and impacts non-neuronal organs as well. For example, demyelination in the spinal cord leads to thymic atrophy, with significant subsequent decreases in the number of CD4 and CD8 T cells in the Twitcher mice (
Recent research suggests that psychosine's impact on demyelination may also proceed through pathways that are independent of oligodendrocytes and Schwann cells. Specifically, two recent pharmacological studies expand our understanding of the potential mechanisms through which psychosine may induce demyelination by acting on neuronal membrane proteins. For example, in one study, GsMTx4, an agonist for Piezo1 (a mechanosensitive ion channel that regulates axon guidance and neural stem cell differentiation) reduced psychosine-induced demyelination in an ex vivo organotypic cerebellar slice culture model (68). This suggests that psychosine may contribute to demyelination by inhibiting Piezo1 function. However, additional research is needed to understand whether psychosine directly impacts Piezo1 function, and whether psychosine-induced demyelination could be reduced by upregulating Piezo1 function in an in vivo model. In a different study, an agonist of S1PR (G-protein coupled receptor that regulates both neuronal and glial cell function), fingolimod, was similarly found to reduce psychosine-induced demyelination in both organotypic cerebellar slice cultures as well as in Twitcher mice—though not to wild-type levels (69, 70, 87). The effectiveness of fingolimod in reducing psychosine-induced demyelination, while promising, is likely to have limited success as a therapeutic strategy because the available data is preventative at best, not therapeutic. Moreover, using fingolimod alone may have limited success, as the demyelination in KD appears to result from a concerted reduction in the activity of many receptors.
Pathological Impact of Psychosine on Neuromuscular Junctions and Vasculature
Motor dysfunction and muscle weakness are common symptoms among KD patients that are also recapitulated in Twitcher mice, in which psychosine begins accumulating in the muscles soon after birth and increases over time (
Role in Neuroinflammation
A comparative analysis of the Twitcher and wild-type mice nervous systems by Tandem Mass Tag Spectrometry based approaches indicated differences in more than 400 protein groups (90). Extracellular matrix proteins such as tenascin-C were elevated and the laminin meshwork were disaggregated in Twitcher mice, suggesting the presence of neuroinflammation (66, 91). Psychosine-induced oligodendrocyte death, aberrant signaling (involving PKC, CD200, or CD47) or even release of cytokines associated with oligodendrocyte stress (CCL2, IL-1B) may lead to microglial activation. Elevated levels of both CCL2 and IL-1B were detected in Twitcher mouse brains by qRT-PCR as early as postnatal day 2, likely due to increasing levels of psychosine (92). One of the defining features of Krabbe disease is the presence of multinucleated globoid cells. Interestingly, high levels of extracellular psychosine transformed cultured microglia into globoid cells, and this transformation was dependent on elevated levels of matrix metalloproteinase-3 (MMP-3) (74).
Neuroinflammation and Globoid Cell Formation in KD
There is a growing appreciation for the role of dysfunctional microglia and astrocytes in demyelination in KD. As opposed to the psychosine hypothesis, the microglial hypothesis suggests a re-evaluation of the order in which the disease cascade occurs, namely that neuroinflammatory processes might precede disease symptoms and demyelination through the activation of astrocytes first, which then activate microglia in an abnormal manner (81). Post-mortem histology of the CNS showed that regions of demyelination frequently accompanied clusters of multinucleated globoid cells surrounding the axons. It is abundantly clear that aberrantly activated microglia and astrocytes contribute to inflammation through the release of cytokines and chemokines, such as CCL2, CCL3, CCL5, CXCL10, TNFα, IL-6, IL-1β, and IL-8, and recruit additional immune cells (monocytes and macrophages) from the periphery (81). Reduction in GALC function may result in pathology through pathways that are independent of psychosine or neuroinflammation and warrants further investigation. For example, GALC appears to be important in both early brainstem development as well as the maintenance of a stem cell niche in the bone marrow (
Globoid cells were first identified in Dr. Krabbe's report but their origin and contribution to KD pathophysiology are still unknown. These cells are frequently multinucleated, show periodic acid–Schiff (PAS)-positive staining, and are often observed early in the progression of the disease—even prior to demyelination or other symptoms. In conditional GALC knockout mice, macrophages (Ly6high/CD206low) assist in myelin degradation in the PNS. It is likely that the recruited GALC−/− macrophages have impaired phagocytosis, accumulate lysosomes and myelin phagosomes and assume an inflammatory phenotype and a globoid appearance. Further analysis showed that treating bone marrow derived macrophages with galactosylceramide (C8-GalCer) but not psychosine recapitulated the phenotype in vitro. These induced globoid cells had reduced CD206 expression and elevated TNF-α and IL-1β cytokine expression profiles (
Ceramide metabolism in the lysosomes may contribute to increased misfolding and aggregation of proteins (94). Oligodendrocytes from 6-day old Twitcher mice show functional defects in the immunoproteosome, as well as impaired protein synthesis and degradation (66). This study also reported an interesting connection with α synuclein, which has pathological associations with Parkinson's disease. This is particularly interesting in light of the fact that α synuclein aggregates have been found in Krabbe patient brain autopsies, and that psychosine binds to α synuclein to promote its aggregation (95, 96). Given these findings, it would be worth investigating the predisposition of patients with lysosomal storage disorders to other neurodegenerative diseases associated with protein aggregates (such as β amyloid plaques and tau neurofibrillary tangles). Lysosomal dysfunction might lead to impairments in synaptic transmission and ultimately neurodegeneration (97). Indeed, this is supported by recent GWAS studies that implicate lysosomal genes in the etiology of Alzheimer's disease, Parkinson's disease, and Frontotemporal Dementia (98–100).
Therapeutic Strategies
Therapeutic approaches to treat KD symptoms over the past 20 years are described in the sections below.
Hematopoietic Stem Cell Transplantation
Hematopoietic stem cell transplantation (HSCT) is currently the gold standard treatment for Krabbe disease. A seminal study in Twitcher mice demonstrated that HSCT administration following lethal irradiation in 10 day old mice could extend their survival from 40 to 80 days. Minor improvements were seen in gait, foraging, grooming, and body weight, but only when HSCT was administered at an early time point (101). In a subsequent study, GALC enzyme levels in various mouse tissues following HSCT administration were determined. In most tissues, GALC activity levels were in the normal range but in the CNS, GALC levels gradually increased over 2 months, ultimately reaching 15% of the CNS GALC levels in wild-type mice (102). Regardless, improvements in KD symptoms were apparent. These and other studies informed the use of HSCT in infantile KD patients, which can prolong life by several years if administered prior to the onset of symptoms.
In human KD patients, current clinical guidelines for applying HSCT differ for early and late onset KD. For early onset KD, HSCT is recommended in infants less than a month old who are asymptomatic. According to a recent study, although infants receiving HSCT prior to 31 days showed no significant difference in 5 and 10 year survival compared to infants receiving HSCT after 31 days, mobility and communication were in fact better in infants receiving HSCT earlier (103). In late onset KD, disease progression is first determined by monitoring symptoms over a 3–6 month time period. In addition, prospective recipients undergo complete physical and neurologic examination to determine their suitability for HSCT (104).
However, HSCT therapy does pose several challenges. One challenge with HSCT is finding a donor match for the patient. Patients receiving HSCT are at risk of an inflammatory response caused by the donor cells (graft vs. host disease). Another challenge is that for HSCT to be successful there needs to be presymptomatic intervention in the early onset KD patients. In this regard, both accurate diagnoses of children with KD as well as pre-symptomatic detection are important obstacles to be surmounted. One potential reason for the limited therapeutic efficacy of bone marrow transplantation seen in KD patients at symptomatic stages of the disease could be due to underlying defects in the BM vascular niche as a result of GALC deficiency (93). There is some evidence that functional BM vasculature may be essential for HSC engraftment (105). More recently, however, greater success has been observed in combining HSCT with other therapies, including gene therapies, which have previously been reviewed (106). There is some evidence that de novo GALC expression in hematopoietic stem cells is toxic (107). However, in one elegant experiment, miRNA expression (miR-126) specific to undifferentiated hematopoietic stem cells was identified and used to limit lentiviral GALC expression to progenitor cells (such as macrophages and microglia) alone. GALC-deficient mice infused with these lentivirus transduced hematopoietic stem cells survived for an additional 3–4 weeks, compared to untreated controls (108).
Enzyme Replacement Therapies
Propelled by the success of enzyme replacement therapy in other lysosomal storage disorders including Fabry's disease and Gaucher's disease, a research group administered recombinant mouse GALC to Twitcher mice at day P10 intraperitoneally, with subsequent injections every other day (109). The observed minor improvements in survival (up to 1 week) and behavior could be due to the limited transport of the enzyme across the blood brain barrier (
Substrate Reduction
Reducing psychosine concentrations in tissues could be another strategy for ameliorating KD symptoms. One attempt used L-cycloserine, which deactivates serine palmitoyltransferase, an enzyme several steps upstream of the biochemical synthesis of psychosine (111, 112). A more recent approach utilized a β-cyclodextrin (cyclic oligosaccharide) to treat Twitcher mice, with the aim of absorbing excess psychosine, but the strategy showed limited improvements in overall survival—likely due to the molecule's inability to cross the blood brain barrier (113). A thorough review of substrate reduction therapies for KD has been published and is an excellent resource for a commentary on this therapeutic strategy (114). More recently, acid ceramidase inhibitors have showed significant reductions in brain psychosine levels in Twitcher mice and could be promising, particularly in combination with other therapeutic strategies (115). In general, however, substrate reduction therapies on their own have shown limited efficacy in preclinical models, and have not yet been tested in human KD patients, though they could be beneficial if used in conjunction with other approaches such as gene therapy.
Viral Gene Therapy Initiatives
Gene therapy approaches have been of particular interest to researchers working on Krabbe disease therapies due to the focus on the root cause of the disease. In addition to adeno-associated viral vectors (AAV), these approaches have also included adenoviral and retroviral vectors (116–118). In particular, a few different studies have investigated the efficacy of lentiviral (retroviral) delivery of GALC in patient iPSCs, Twitcher mice, and rhesus macaques (85, 118, 119). Lentiviral (LV) transduction of patient iPSCs successfully reduced psychosine accumulation and provided a partial rescue in differentiation—with greater improvement observed in neurons than in oligodendrocytes (85). Similarly, two studies investigated intracerebral injection of LV in Twitcher mice, and showed effective production of GALC from neurons, astrocytes, and oligodenderocytes. However, improvement in either motor skills or life span (extension of ~2 weeks) was limited (118, 120). LV GALC was also investigated in the rhesus macaque model of Krabbe disease—the first time gene therapy for KD was attempted in the NHP model. As in mice, the lentivirus efficiently transduced neurons, astrocytes, and oligodendrocytes, and GALC levels in the diseased monkey were restored to near physiological levels (119). Of note, the LV-treated diseased monkey showed significant improvement in neuromuscular strength within 3 months post therapy—with scores comparable to age-matched normal animals. Unfortunately, limited information can be drawn from this study, as only one NHP each (affected or control) was used. Compared to AAVs, LVs are able to package transgenes up to 10 kb, which is twice the length achievable with AAVs. In particular, for ex vivo gene therapy strategies in which long-term transduction of hematopoieitic stem cells is needed, LVs are recognized as better vectors than AAVs, which are primarily non-integrative unless combined with genome integration approaches (121). However, in the context of in vivo approaches, LVs appear to have limited capacity for diffusion post-inoculation due to their larger size compared with AAVs and bear significant risk of insertional mutagenesis. As of this review, 15 studies have been published since 2005 using AAVs to deliver GALC in animal models (Figure 5). Of the 15, two studies were done on the canine model, one was done in twi-trs Twitcher mice, and the remaining 12 were done in Twitcher mice. In addition, a recent announcement by PassageBio using the canine model has indicated a positive outlook in the development of an AAV-based therapeutic construct that rescues GALC expression (122). While the goal of all these studies was to restore GALC to physiological levels, they differed in the AAV serotype and dosage, as well as the route and time of administration. Importantly, some of these studies investigated the combination of AAV administration with bone marrow transplantation (BMT) in prolonging therapeutic efficacy.
Figure 5

AAV studies in animal models of Krabbe disease over time. Blue: Route and time of administration. Pink: AAV serotype(s) used in the study.
AAV Serotype, Dose, and Route of Administration
Two groups led the way in exploring AAV-based treatment for Krabbe disease, highlighting the importance of AAV serotype in ameliorating symptoms (
Administration of AAV1 at a total dose of 3.0e13 vgs/kg in the brain parenchyma and ventricles (IC + ICV; 1.5e13 vgs/kg for each site) increased the lifespan of Twitcher mice by 2–3 weeks, showing high GALC expression in the hippocampus and olfactory bulb but undetectable levels in the cerebellum (
Two follow-up studies published in 2011 by the Sands group used AAV5 in Twitcher mice, though the route of administration for each was different. AAV5 was administered either IC alone at a dose of approximately 7.20e12 vgs/kg (with a specific focus on delivering the virus to the hippocampus, cerebellum, and the neocortex) (
From 2012 to 2020, seven different studies used either AAVrh10 or AAV9 in Twitcher mice as therapeutic preclinical efforts for KD (Figure 5). One of these studies used IT delivery of AAV9 (self-complementary or single stranded), AAVrh10, and AAV-Olig001 (specific for oligodendrocytes), each at 4e13 vgs/kg, and was largely unsuccessful in extending lifespan in the treated mice beyond 2 weeks (
Table 2
| Publication | Year | AAV vector | Promoter | Other modifications | Route (day of injection) | Survival (days) |
|---|---|---|---|---|---|---|
| Rafi et al. | 2005 | AAV1 | CMV | ICV + IC (P0) | 55 | |
| Lin et al. | 2005 | AAV5 | CBA | IC (P3) | 52 | |
| Lin et al. | 2007 | AAV5 | CBA | IC / + BMT (P3) | 49; 104 | |
| Lin et al. | 2011 | AAV5 | CBA | IC (P3) | 62 | |
| Reddy et al. | 2011 | AAV5 | CBA | IC + IT (P2-P3) / + BMT | 71; 123 | |
| Rafi et al. | 2012 | AAVrh10 | CBA | ICV + IC + IV (P2) | 104 | |
| Rafi et al. | 2015 | AAVrh10 | CBA | IV (P10) | 75 | |
| Rafi et al. | 2015 | AAVrh10 | CBA | IV + BMT (P10) | 100–350 | |
| Karumuthil-Melethil et al. | 2016 | AAV9; AAVrh10; AAV-Olig001 | CBA / CBA / minJET | Codon optimization | IT (P10) | 50–55 |
| Marshall et al. | 2018 | AAV9 | CBA | Codon optimization | ICV + IT + IV (P0-P1) | 263 |
| *Bradbury et al. | 2018 | AAVrh10 | CBA | IV (P3) + ICV (P42) | 300 | |
| Pan et al. | 2019 | AAV9 | CAG | IDS Signal Peptide; hApoB-LDLR-BD | IV (P2); IP (P6-12) | 150; 104 |
| Rafi et al. | 2020 | AAVrh10 | CBA | IV + BMT (P10-40) | 450–500 | |
| *Bradbury et al. | 2020 | AAV9 | CAG | Codon optimization | ICM (P14 / P42) | 900+ |
| Li et al. | 2021 | AAV9 | CBA | IC + IT / + BMT (P0-P2) | 250–300 |
A summary of published AAV therapies in animal models of Krabbe disease with publication year, AAV serotype used, promoter element and other modifications, route and time of administration, and median survival in days.
The asterisk (*) marks the studies done in the canine model of Krabbe disease; the rest of the studies were done using the Twitcher mouse. Blank spaces denote information not available in the public domain. BMT, Bone marrow transplantation; IC, intracranial; IT, intrathecal; ICV, intracerebroventricular; IV, intravenous; IP, intraperitoneal; ICM, intracisternal.
The Wenger laboratory published two studies in Twitcher mice using AAVrh10 administered either as a combination of IC, ICV, and intravascular (IV) injection or IV alone (
Two additional studies administered AAV9 to Twitcher mice either IV in combination with ICV and IT (
Finally, most recently, two studies in the canine model of KD (
The importance of using the right dose was recently demonstrated in three different studies (one in Twitcher mice, two in dogs). In the Twitcher study, 1 day post-BMT treatment, Twitcher mice were injected IV with different doses of AAVrh10 (4X, 1X, 1/2X, 1/10X, and 1/100X). The 1X dose of AAVrh10 was equivalent to 4e13 vgs/kg, and a dose-dependent increase in lifespan was reported, with the exception of the 4X dose (126). Interestingly, there appeared to be no significant difference (in lifespan) between the 1X and 4X dose, indicating that the levels of GALC with the 1X dose might already have reached saturation. Similarly, in the first of the two canine studies, the animals treated with the low dose of AAV (1.2e12 vgs) showed only minor improvements in disease symptoms. In contrast, the animals treated with the high dose of AAV (3.8e13 vgs) not only had fewer symptoms of KD, but also lived much longer (
As a final note, the brain regions and neural cells transduced by AAVs depend not only on the serotype of AAV used, but also on additional variables such as promoter elements in the cassette and route by which the AAV is administered. For instance, in in vitro cultures, AAV1 and AAV9 both strongly transduce neurons; however, in vivo, following brain injections, AAV1 transduction of neurons in the cortex is low when compared to transduction using AAV9 (127). Similarly, when administered intravenously, AAV9 can penetrate the blood brain barrier, whereas AAV1 cannot. Furthermore, the cell tropism of AAV9 when administered intravenously is different than when administered directly into the brain. Extensive discussions on targeting AAVs to specific brain regions and neural cell types by leveraging these parameters have previously been reviewed (127–130). However, we would like to note that all the AAV constructs described in this review that showed therapeutic efficacy utilized ubiquitous promoters like the chicken beta-actin (CBA) promoter or CAG promoter to express the GALC transgene, indicating the need for widespread expression of GALC to achieve therapeutic efficacy.
Time of Administration
A general approach in the treatment of CNS-based diseases is to treat patients as early as possible to prevent potential irreversible pathological changes in the nervous system. HSCT in early onset KD patients appears to be most successful when administered pre-symptomatically. It is likely that infiltration of GALC and subsequent cross-correction in the CNS requires several weeks though the exact timing for the process is not clear.
One study explored the possibility of administering 4.0e13vgs/kg of AAVrh10 to P10 mice through an IV tail vein injection (
Two additional studies evaluated administration of AAV9 to Twitcher mice either at P0 (IV+IC+IT, 1.1e14 vgs/kg) or P2 (IV, 4.0e14 vgs/kg) (
Two studies by Bradbury et al. in the canine model also indicate that the earlier the intervention, the better the outcome (
Combining AAV With BMT
HSCT has been established as the “standard of care” for pre-symptomatic Krabbe patients because it showed the most effectiveness in slowing the course of the disease and preserving cognitive function (132). Patients do however show peripheral neuropathy after a decade and to address this, combining HSCT with another therapeutic strategy could be beneficial to patients. HSCT treatment supplants GALC-expressing myeloid progenitors that combine the removal/substitution of GALC-deficient myeloid progenitor cells with the therapeutic effects of cross-correction which is not possible with AAVs. A report has shown that HSCT treatment in twi mice lowers psychosine levels in the sciatic nerves effectively. One drawback was that though there was initial robust lowering of psychosine (up to 70%), the effects were not sustained, and the mice died soon after they reached 100 days (
As one example, results of an AAV/BMT combination therapy in the murine MSP IIIB model indicate that a combined approach does not always result in synergistically improved efficacy. This study surprisingly demonstrated even lower efficacy in the combination therapy treated group than the AAV alone treatment, presumably due to antagonistic effects of the two approaches (133). In addition to such effects, there are logistical challenges associated with pursuing a combined approach in clinical trials. Importantly, not only would an AAV/BMT combination therapy approach dictate selection of patients with low titers of neutralizing antibodies to AAV capsids (for effective AAV transduction), but also would require finding donor matches for such patients. Notwithstanding these, the AAV-BMT combination approach is currently being utilized in the RESKUE clinical trial conducted by Forge Biologics (NCT04693598). Emerging data from this study will help determine the clinical efficacy of such an approach.
Given that HSCT/BMT is the current gold standard for treating Krabbe disease, nearly half of all the AAV studies investigated the combined efficacy of AAV and BMT in prolonging survival in Twitcher mice. Studies combining AAV with BMT can be difficult to interpret in terms of the observed longevity and overall improvements due to the inherent variability in BMT-mediated engraftment. BMT involves the use of radiation or chemotherapy to eliminate myeloid cells, and depending on the intensity of radiation used (myeloablative or myeloreductive conditioning) or the choice of chemotherapeutic agent (such as busulfan or cyclophosphamide), may cause unintended cellular changes. For instance, Reddy et al. (
Combining AAV5 (IC) and BMT (myeloreductive) showed a profound effect on multiple aspects of KD in Twitcher mice (134). The regimen for myeloreduction in this study involved a single conditioning dose of 400 rad from a 137Cs source; this was followed by an IV injection of unfractionated bone marrow suspension. The combination therapy in this study extended the lifespan in Twitcher mice by an additional 50 days (than with either therapy alone). Additionally, there was decreased astrogliosis, the mice seemed to maintain their weight longer, and showed marked improvement in neuromuscular coordination. Less improvement was observed in neuromuscular strength despite the combined therapy. It is likely that BMT was either providing supplemental GALC for cross-correction (where AAV was unable to provide it, such as in the periphery) or was reducing overall neuroinflammation. Another study showed that BMT without any immunosuppressive preconditioning had a negligible effect on GALC activity or psychosine levels in the brain or spinal cord (
Rafi et al. (
Limitations of AAV Gene Therapy
Despite their promise, however, AAVs as vectors for gene therapy are not without their limitations. A key limitation of using AAVs is defining the dose that is both safe and efficacious in human patients, particularly when comparable doses in preclinical models do not show significant side effects. This limitation is particularly relevant for a disease such as Krabbe disease, where high levels of GALC seem to be critical in extending survival as well as neuromuscular function. Furthermore, even if high levels of GALC are achieved at a clinically tolerable dose, it is not known whether AAV-mediated GALC overexpression could result in gain of toxic function. Long term AAV9-mediated overexpression of survival motor neuron (SMN) protein, a protein associated with spinal muscular atrophy, was recently shown to cause toxicity in the sensorimotor circuit in mice (136).
Although less ideal than a single-dose therapeutic, one could envision maintaining adequate levels of GALC across both the CNS and PNS through recurring AAV injections. However, another limitation of using AAVs is that multiple injections of the same virus over time are not possible due to neutralizing antibodies. Nevertheless, the use of substantially different clades of AAVs to evade the immune response could still be a viable strategy. Additional strategies for evading the immune response include using decoy empty capsids to saturate circulating neutralizing antibodies, generating novel viral capsids through directed evolution, and chemically modifying viral capsids (137, 138). Furthermore, if the on-going efforts in engineering AAVs that can evade the immune system are successful, these approaches would be worth considering.
Although rAAVs have traditionally been categorized as relatively non-immunogenic, two recent studies have reported the occurrence of neuroinflammation in the dorsal root ganglia of the spinal cord and an acute syndrome of thrombocytopenia, hepatic and renal toxicity (139, 140). Both studies implicated a high dose of AAV either by intrathecal or intravenous administration. Recent data from the ASPIRO trial (NCT03199469) for X-linked myotubular myopathy (XLMTM) reported two patient deaths from sepsis. The experimental gene therapy AT-132 that expresses the therapeutic MTM1 payload was packaged in an AAV8 capsid that has shown an excellent safety profile in previous clinical profiles. Relatedly, several other severe adverse events (of varying severity) have occurred in patients receiving high dose systemic AAV largely stemming from innate immune responses (e.g., inflammation and complement activation) and cellular immune responses to vector days-to-weeks following intravenous administration. It is possible that the adverse events arose due to the high dose of 3 × 1014 vector genomes per kilogram bodyweight (vg/kg) administered to the patients. Assuming the patient body weight to be around 30 lbs, they would have received a dose in excess of 4 × 1015 vgs. Compounding this is the fact that the patients had pre-existing hepatobiliary disease that could have exacerbated toxicity given that most AAVs traffic to the liver irrespective of intended target organ or route of delivery. This data strongly directs setting an upper limit on intrathecal and intravenous AAV dosing though it is still unknown if anti-inflammatory or immune suppressive medications would be helpful in mitigation. In the absence of detailed reports on the clinical trials, it is imperative to proceed with caution when extremely high doses are being considered for therapy.
Additionally, AAV gene therapy in the murine MPS VII model was implicated in hepatocellular carcinoma (HCC) as the malignant cells showed integrated AAV sequences (141). Logan et al. have suggested that a liver-specific enhancer-promoter region in the 3′ untranslated region (UTR) could be linked to developing HCC risk (142). It is worth noting that although this region (a stretch of 124 nucleotides near the 3′ ITR) is within the non-protein-coding sequence of the wild-type AAV2 genome, part of this sequence may be present in recombinant AAV genomes currently being used for gene therapy. Similarly, Chandler et al. demonstrated that the overexpression of proximal microRNAs and retrotransposon-like 1 gene (Rtl1), following AAV integration into the RNA imprinted and accumulated in nucleus (Rian) locus, was associated with HCC (143). In a separate study using Twitcher mice with HCC tumors integrated in the Rian locus, it was suggested that the radiation and L-cycloserine treatments may have contributed to the development of HCC following AAV gene therapy (144). Yet another AAV editing vector targeting the Rian locus produced HCC in all injected mice, though it is important to note that animals treated with the control vector developed HCC as well, albeit at a lower frequency (145). Though the Rian locus is not present in humans, upregulation of delta-like homolog 1-deiodinase type 3 (DLK1-DIO3) locus, the human ortholog of the Rian microRNA locus, has been associated with a poor survival rate in patients with HCC (143). Long-term studies in a higher species namely dogs with Hemophilia A showed clonal expansion of cells that harbored integrated vectors indicating potential for genotoxicity in AAV treated animals (146).
Similarly, clonal insertion of wild-type AAV2 genome sequences in human HCC liver biopsies have also raised concerns about the potential genotoxicity of AAV based gene therapy (147). One important aspect of this study was that the identified AAV sequences were mostly fragments of the ITR integrated in HCC pro-oncogenes which were possibly subject to the ITR transactivation effect. These observations were recently corroborated by the identification of liver-specific enhancer-promoter elements in the wild-type AAV2 genome. These elements (present in a stretch of 124 nt) were found to be close to the 3' ITR and within the 163-nt common insertion region of the AAV genome, which was previously identified in HCC biopsies (142). Therefore, AAV vector transgenes devoid of this liver trans-activating genome region would be preferred for clinical use compared with those containing it. Finally, in a recent study, single-molecule real-time DNA sequencing was used to investigate chromosomal rAAV integrations in primary human hepatocytes both ex vivo as well as in vivo (using a humanized liver mouse model) (145). This study, involving multiple rounds of replication post-AAV transduction, found 0.6–2.8% of hepatocytes to have stably integrated the reporter transgene, and validated the earlier finding that a majority of the integrations were associated with the 3' ITR. As our ability to sequence both concatameric rAAV integrations and GC-rich regions improves, our understanding of the genotoxic risk of using AAV vectors ex vivo or in vivo will broaden. In addition, how chromosomal integrations vary with AAV serotype, therapeutic dose, and cell type (such as how frequently a cell divides) are all variables that require further investigation.
In conclusion, we would like to highlight the elegant argument that WT AAV insertions in hepatocellular carcinoma do not inform debate over genotoxicity risk of vectorized AAV (148). Interestingly a study also showed that AAV vector dose, enhancer/promoter selection, and the timing of gene delivery were all critical factors for determining HCC incidence after AAV gene delivery indicating careful vector and study designs would potentially be able to address toxicity concerns (143). It is also important to note that some lethal pediatric disorders that arise from inborn errors of metabolism may not have any other recourse and that the risk to benefit ratio of toxicity and therapy would need to be balanced to provide lifesaving therapeutics to patients.
Discussion
Given the broad expression of GALC in the nervous system, a therapeutic that rescues GALC locally is likely to have limited success. This hypothesis is borne out by multiple studies where localized GALC rescue failed to improve neuromuscular function (
In mice, myelination in the spinal cord begins at birth and continues till P60, therefore delaying treatment would allow psychosine to begin impacting early development of cells in the PNS (150). In support of this, the induced deletion of GALC prior to P4 in a conditional knockout mouse model resulted in severe neurodevelopmental defects (
Sustained supraphysiological levels of GALC appear to be important, especially given that higher doses of AAV-GALC seem to be positively correlated with survival in animal models. Studies indicate that AAVrh10-treated Twitcher mice that show phenotypic correction have 2-fold higher levels of GALC in their brains compared to wildtype mice (124). The need for abnormally high levels of GALC is likely due to the impaired ability of GALC-deficient cells to take up extracellular GALC for cross-correction (
Finally, the nature of the synergistic improvement seen in animals receiving both gene therapy and BMT warrants further exploration. In contrast to gene therapy, the mechanism through which BMT ameliorates pathology is not as apparent. It is possible that the conditioning prior to BMT might actually be important in eliminating GALC-deficient macrophages and hence the potential pool of future inflammatory globoid cells. There may be some evidence to support this idea. In one study, BMT was combined with AAV9 administered through three different routes (IC, IT, and IV) (
BMT may tone down neuroinflammation based on the status of inflammatory markers such as IL-6, TNFα, MIP-1β, and MCP-1 in the brain (
AAV gene therapies have potentially ushered a new frontier in our ability to tackle dozens of rare diseases, including lysosomal storage disorders such as Krabbe Disease. For KD, two clinical trials using gene therapy are currently underway (both in Phase 1/2). The first of the two is PBKR03 (PassageBio), a GALC transgene in a AAVhu68 vector (AAV9 variant) delivered through the ICM route (NCT04771416). This study will have both a low and high dose in each of two age groups (1–4 and 4–9 months). The second study combines HSCT with AAV; the molecule, FBX-101 (Forge Biologics), is a GALC transgene packaged within an AAVrh10 vector and delivered IV at either a low or high dose following HSCT (NCT04693598). The results from these clinical trials, combined with results from clinical trials of other LSDs such as Metachromatic leukodystrophy (MLD), will be instrumental in helping us refine our approach to these debilitating diseases in the future. For instance, a recently concluded clinical trial using AAVrh10 in 4 children who had pre- or early-symptomatic MLD found that all treated children continued to develop symptoms associated with MLD (NCT01801709). While disappointing, we can speculate on some of the reasons that might be associated with the lack of efficacy observed in the trial. The Arylsulfatase A gene, associated with MLD, is quite similar to GALC in terms of its cellular distribution and function—both enzymes are lysosomal enzymes that process substrates important in myelin homeostasis (153). Not surprisingly, the symptoms of MLD strongly overlap with those observed in Krabbe disease, which are a combination of both CNS and PNS pathology. In the AAVrh10 clinical trial for MLD, AAVrh10-hARSA was administered to patients intracerebrally, likely resulting in negligible enzymatic cross-correction in the spinal cord or the PNS. Although ARSA activity in the CSF of treated patients reached 20–70% of control values, ARSA levels in other critical tissues may have particularly low. The results of this trial validate the hypothesis that restoring sufficient levels of the enzyme in the CNS is not sufficient in patients with peripheral neuropathy—there is a need for systemic cross-correction.
In addition to KD, clinical trials using AAV for treating several others LSDs are currently underway. These diseases include Fabry disease (FLT190 and 4D-310), late onset Pompe disease (SPK-3006, AAV2/8SPhGAA, and AT845), Mucopolysaccharidosis Type I (SB-318), Mucopolysaccharidosis Type IIIA (LYS-SAF302), Mucopolysaccharidosis Type IIIB (rAAV2/5-hNAGLU), Mucopolysaccharidosis Type VI (AAV2/8.TBG.hARSB), Gangliosidosis (Tay Sachs and/or Sandhoff disease) (AAV-GLB1, AXO-AAV-GM2, TSHA-101, and LYS-GM101), and Gaucher disease Type II (PR001). A more comprehensive overview of AAV-based clinical trials over the past several years was covered recently (154).
In summary, the advent of AAV based gene therapy has significantly expanded the realms of possibility for drug development specifically for autosomal recessive rare diseases like Krabbe disease. Additionally, the Human Genome Project and recent genome-wide association studies have made the near impossible task of annotating the human genome possible and made available the abundant knowledge that helps associate diseases with causal genetic mutations. With increasing exploration of AAVs for gene therapy, the future holds great promise in improving the lives of patients living with debilitating diseases.
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Statements
Author contributions
GN and SA co-wrote and edited the manuscript. RC created Figure 2. GN created all the remaining figures. FE edited the manuscript. All authors contributed to the article and approved the submitted version.
Conflict of interest
GN, RC, FE, and SA were employed by Novartis Institutes for BioMedical Research at the time of research.
References
1.
GrazianoACCardileV. History, genetic, and recent advances on Krabbe disease. Gene. (2015) 555:2–13. 10.1016/j.gene.2014.09.046
2.
BascouNDeRenzoAPoeMDEscolarLM. A prospective natural history study of Krabbe disease in a patient cohort with onset between 6 months and 3 years of life. Orphanet J Rare Dis. (2018) 13:126. 10.1186/s13023-018-0872-9
3.
Beltran-QuinteroMLBascouNAPoeMDWengerDASaavedra-MatizCANicholsMJet al. Early progression of Krabbe disease in patients with symptom onset between 0 and 5 months. Orphanet J Rare Dis. (2019) 14:46. 10.1186/s13023-019-1018-4
4.
WengerDEscolarMLuziPRafiM. Krabbe Disease (Globoid Cell Leukodystrophy). New York, NY: McGraw-Hill (2013).
5.
DebsRFroissartRAubourgPPapeixCDouillardCDegosBet al. Krabbe disease in adults: phenotypic and genotypic update from a series of 11 cases and a review. J Inherit Metab Dis. (2013) 36:859–68. 10.1007/s10545-012-9560-4
6.
LuziPRafiMAWengerAD. Characterization of the large deletion in the GALC gene found in patients with Krabbe disease. Hum Mol Genet. (1995) 4:2335–8. 10.1093/hmg/4.12.2335
7.
DeaneJEGrahamSCKimNNSteinPEMcNairRCachon-GonzalezMBet al. Insights into Krabbe disease from structures of galactocerebrosidase. Proc Natl Acad Sci USA. (2011) 108:15169–73. 10.1073/pnas.1105639108
8.
LuziPRafiMAWengerAD. Structure and organization of the human galactocerebrosidase (GALC) gene. Genomics. (1995) 26:407–9. 10.1016/0888-7543(95)80230-J
9.
VenselaarHTe BeekTAKuipersRKHekkelmanMLVriendG. Protein structure analysis of mutations causing inheritable diseases. An e-Science approach with life scientist friendly interfaces. BMC Bioinformatics. (2010) 11:548. 10.1186/1471-2105-11-548
10.
LiYXuYBenitezBANagreeMSDearbornJTJiangXet al. Genetic ablation of acid ceramidase in Krabbe disease confirms the psychosine hypothesis and identifies a new therapeutic target. Proc Natl Acad Sci USA. (2019) 116:20097–103. 10.1073/pnas.1912108116
11.
GebaiAGorelikALiZIllesKNagarB. Structural basis for the activation of acid ceramidase. Nat Commun. (2018) 9:1621. 10.1038/s41467-018-03844-2
12.
HillCHCookGMSpratleySJFawkeSGrahamSCDeaneEJ. The mechanism of glycosphingolipid degradation revealed by a GALC-SapA complex structure. Nat Commun. (2018) 9:151. 10.1038/s41467-017-02361-y
13.
CalderwoodLWengerDAMaternDDahmoushHWatikerVLeeC. Rare Saposin A deficiency: Novel variant and psychosine analysis. Mol Genet Metab. (2020) 129:161–4. 10.1016/j.ymgme.2019.08.001
14.
FossAHDuffnerPKCarterLR. Lifetime risk estimators in epidemiological studies of Krabbe disease: review and monte carlo comparison. Rare Dis. (2013) 1:e25212. 10.4161/rdis.25212
15.
KwonJMMaternDKurtzbergJWrabetzLGelbMHWengerDAet al. Consensus guidelines for newborn screening, diagnosis and treatment of infantile Krabbe disease. Orphanet J Rare Dis. (2018) 13:30. 10.1186/s13023-018-0766-x
16.
DuffnerPKCagganaMOrsiniJJWengerDAPattersonMCCrosleyCJet al. Newborn screening for Krabbe disease: the New York State model. Pediatr Neurol. (2009) 40:245–52. 10.1016/j.pediatrneurol.2008.11.010
17.
ZayedH. Krabbe Disease in the Arab World. J Pediatr Genet. (2015) 4:1–8. 10.1055/s-0035-1554981
18.
BarczykowskiALFossAHDuffnerPKYanLCarterLR. Death rates in the US. due to Krabbe disease and related leukodystrophy and lysosomal storage diseases. Am J Med Genet A. (2012) 158A:2835–42. 10.1002/ajmg.a.35624
19.
OrsiniJJ. Newborn screening for Krabbe disease: perceived and current ethical issues. Dev Med Child Neurol. (2019) 61:1354. 10.1111/dmcn.14265
20.
DarbaJMarsaA. Current status and use of resources of lysosomal storage diseases: analysis of a Spanish claims database. Endocr Metab Immune Disord Drug Targets. (2020) 20:263–70. 10.2174/1871530319666190807162344
21.
RafiMALuziPZlotogoraJWengerAD. Two different mutations are responsible for Krabbe disease in the Druze and Moslem Arab populations in Israel. Hum Genet. (1996) 97:304–8. 10.1007/BF02185759
22.
LeeWCKangDCausevicEHerdtAREckmanEAEckmanBC. Molecular characterization of mutations that cause globoid cell leukodystrophy and pharmacological rescue using small molecule chemical chaperones. J Neurosci. (2010) 30:5489–97. 10.1523/JNEUROSCI.6383-09.2010
23.
ZhaoSZhanXWangYYeJHanLQiuWet al. Large-scale study of clinical and biochemical characteristics of Chinese patients diagnosed with Krabbe disease. Clin Genet. (2018) 93:248–54. 10.1111/cge.13071
24.
XuCSakaiNTaniikeMInuiKOzonoK. Six novel mutations detected in the GALC gene in 17 Japanese patients with Krabbe disease, and new genotype-phenotype correlation. J Hum Genet. (2006) 51:548–54. 10.1007/s10038-006-0396-3
25.
TappinoBBiancheriRMortMRegisSCorsoliniFRossiAet al. Identification and characterization of 15 novel GALC gene mutations causing Krabbe disease. Hum Mutat. (2010) 31:E1894–914. 10.1002/humu.21367
26.
OrsiniJJKayDMSaavedra-MatizCAWengerDADuffnerPKErbeRWet al. New York State Krabbe disease: newborn screening for Krabbe disease in New York State: the first eight years' experience. Genet Med. (2016) 18:239–48. 10.1038/gim.2015.211
27.
WeinstockNIWrabetzLFeltriMLShinD. Metabolic profiling reveals biochemical pathways and potential biomarkers associated with the pathogenesis of Krabbe disease. J Neurosci Res. (2016) 94:1094–107. 10.1002/jnr.23789
28.
LinDFantzCRLevyBRafiMAVoglerCWengerDAet al. AAV2/5 vector expressing galactocerebrosidase ameliorates CNS disease in the murine model of globoid-cell leukodystrophy more efficiently than AAV2. Mol Ther. (2005) 12:422–30. 10.1016/j.ymthe.2005.04.019
29.
GalbiatiFBassoVCantutiLGivogriMILopez-RosasAPerezNet al. Autonomic denervation of lymphoid organs leads to epigenetic immune atrophy in a mouse model of Krabbe disease. J Neurosci. (2007) 27:13730–8. 10.1523/JNEUROSCI.3379-07.2007
30.
ToyoshimaEYeagerAMBrennanSSantosGWMoserHWMayerRF. Nerve conduction studies in the Twitcher mouse (murine globoid cell leukodystrophy). J Neurol Sci. (1986) 74:307–18. 10.1016/0022-510X(86)90116-4
31.
LinDDonsanteAMacauleySLevyBVoglerCSandsSM. Central nervous system-directed AAV2/5-mediated gene therapy synergizes with bone marrow transplantation in the murine model of globoid-cell leukodystrophy. Mol Ther. (2007) 15:44–52. 10.1038/sj.mt.6300026
32.
LinDSHsiaoCDLiauILinSPChiangMFChuangCKet al. CNS-targeted AAV5 gene transfer results in global dispersal of vector and prevention of morphological and function deterioration in CNS of globoid cell leukodystrophy mouse model. Mol Genet Metab. (2011) 103:367–77. 10.1016/j.ymgme.2011.05.005
33.
ReddyASKimJHHawkins-SalsburyJAMacauleySLTracyETVoglerCAet al. Bone marrow transplantation augments the effect of brain- and spinal cord-directed adeno-associated virus 2/5 gene therapy by altering inflammation in the murine model of globoid-cell leukodystrophy. J Neurosci. (2011) 31:9945–57. 10.1523/JNEUROSCI.1802-11.2011
34.
MarshallMSIssaYJakubauskasBStoskuteMElackattuVMarshallJNet al. Long-term improvement of neurological signs and metabolic dysfunction in a mouse model of Krabbe's disease after global gene therapy. Mol Ther. (2018) 26:874–89. 10.1016/j.ymthe.2018.01.009
35.
PanXSandsSAYueYZhangKLeVineSMDuanD. An engineered galactosylceramidase construct improves AAV gene therapy for Krabbe disease in twitcher mice. Hum Gene Ther. (2019) 30:1039–51. 10.1089/hum.2019.008
36.
MitsuoKKobayashiTGotoI. Biosynthesis of galactosylsphingosine (psychosine) in the twitcher mouse. Neurochem Res. (1989) 14:899–903. 10.1007/BF00964821
37.
ZanfiniADreassiEBerardiAGoverniniLCorbiniGCostantino-CeccariniEet al. Quantification of psychosine in the serum of twitcher mouse by LC-ESI-tandem-MS analysis. J Pharm Biomed Anal. (2013) 80:44–9. 10.1016/j.jpba.2013.02.039
38.
IchiokaTKishimotoYBrennanSSantosGWYeagerMA. Hematopoietic cell transplantation in murine globoid cell leukodystrophy (the twitcher mouse): effects on levels of galactosylceramidase, psychosine, and galactocerebrosides. Proc Natl Acad Sci USA. (1987) 84:4259–63. 10.1073/pnas.84.12.4259
39.
RafiMARaoHZLuziPWengerAD. Long-term Improvements in Lifespan and Pathology in CNS and PNS After BMT Plus One Intravenous Injection of AAVrh10-GALC in Twitcher Mice. Mol Ther. (2015) 23:1681–90. 10.1038/mt.2015.145
40.
Karumuthil-MelethilSMarshallMSHeindelCJakubauskasBBongarzoneERGrayJS. Intrathecal administration of AAV/GALC vectors in 10-11-day-old twitcher mice improves survival and is enhanced by bone marrow transplant. J Neurosci Res. (2016) 94:1138–51. 10.1002/jnr.23882
41.
DuchenLWEicherEMJacobsJMScaravilliFTeixeiraF. Hereditary leucodystrophy in the mouse: the new mutant twitcher. Brain. (1980) 103:695–710. 10.1093/brain/103.3.695
42.
Cantuti CastelvetriLGivogriMIHebertASmithBSongYKaminskaAet al. The sphingolipid psychosine inhibits fast axonal transport in Krabbe disease by activation of GSK3beta and deregulation of molecular motors. J Neurosci. (2013) 33:10048–56. 10.1523/JNEUROSCI.0217-13.2013
43.
SuzukiKSuzukiK. The twitcher mouse. A model of human globoid cell leukodystrophy (krabbe's disease). Am J Pathol. (1983) 111:394.
44.
TakahashiHSuzukiK. Demyelination in the spinal cord of murine globoid cell leukodystrophy (the twitcher mouse). Acta Neuropathol. (1984) 62:298–308. 10.1007/BF00687612
45.
BradburyAMBagelJHNguyenDLykkenEAPesayco SalvadorJJiangXet al. Krabbe disease successfully treated via monotherapy of intrathecal gene therapy. J Clin Invest. (2020) 130:4906–20. 10.1172/JCI133953
46.
BradburyAMBagelJHJiangXSwainGPProciukMLFitzgeraldCAet al. Clinical, electrophysiological, and biochemical markers of peripheral and central nervous system disease in canine globoid cell leukodystrophy (K rabbe's disease). J Neurosci Res. (2016) 94:1007–17. 10.1002/jnr.23838
47.
Del GrossoAAngellaLTonazziniIMoscardiniAGiordanoNCaleoMet al. Dysregulated autophagy as a new aspect of the molecular pathogenesis of Krabbe disease. Neurobiol Dis. (2019) 129:195–207. 10.1016/j.nbd.2019.05.011
48.
CoradoCRPinkstaffJJiangXGalbanEMFisherSJSchollerOet al. Cerebrospinal fluid and serum glycosphingolipid biomarkers in canine globoid cell leukodystrophy (Krabbe Disease). Mol Cell Neurosci. (2020) 102:103451. 10.1016/j.mcn.2019.103451
49.
BordaJTAlvarezXMohanMRatterreeMSPhillippi-FalkensteinKLacknerAAet al. Clinical and immunopathologic alterations in rhesus macaques affected with globoid cell leukodystrophy. Am J Pathol. (2008) 172:98–111. 10.2353/ajpath.2008.070404
50.
SigurdsonCJBasarabaRJMazzaferroEMGouldDH. Globoid cell-like leukodystrophy in a domestic longhaired cat. Vet Pathol. (2002) 39:494–6. 10.1354/vp.39-4-494
51.
LeeEFullerMCarrMManavisJFinnieJ. Globoid cell leukodystrophy (Krabbe disease) in a Merino sheep. J Vet Diagn Invest. (2019) 31:118–21. 10.1177/1040638718806685
52.
PotterGBSantosMDavissonMTRowitchDHMarksDLBongarzoneERet al. Missense mutation in mouse GALC mimics human gene defect and offers new insights into Krabbe disease. Hum Mol Genet. (2013) 22:3397–414. 10.1093/hmg/ddt190
53.
RafiMAZhi RaoHPassiniMACurtisMVanierMTZakaMet al. AAV-mediated expression of galactocerebrosidase in brain results in attenuated symptoms and extended life span in murine models of globoid cell leukodystrophy. Mol Ther. (2005) 11:734–44. 10.1016/j.ymthe.2004.12.020
54.
VictoriaTRafiMAWengerAD. Cloning of the canine GALC cDNA and identification of the mutation causing globoid cell leukodystrophy in West Highland White and Cairn terriers. Genomics. (1996) 33:457–62. 10.1006/geno.1996.0220
55.
BradburyAMRafiMABagelJHBrissonBKMarshallMSPesayco SalvadorJet al. AAVrh10 Gene Therapy Ameliorates Central and Peripheral Nervous System Disease in Canine Globoid Cell Leukodystrophy (Krabbe Disease). Hum Gene Ther. (2018) 29:785–801. 10.1089/hum.2017.151
56.
BaskinGBRatterreeMDavisonBBFalkensteinKPClarkeMREnglandJDet al. Genetic galactocerebrosidase deficiency (globoid cell leukodystrophy, Krabbe disease) in rhesus monkeys (Macaca mulatta). Comp Med. (1998) 48:476–82.
57.
LuziPRafiMAVictoriaTBaskinGBWengerAD. Characterization of the rhesus monkey galactocerebrosidase (GALC) cDNA and gene and identification of the mutation causing globoid cell leukodystrophy (Krabbe disease) in this primate. Genomics. (1997) 42:319–24. 10.1006/geno.1997.4744
58.
MiyatakeTSuzukiK. Globoid cell leukodystrophy: additional deficiency of psychosine galactosidase. Biochem Biophys Res Commun. (1972) 48:539–43. 10.1016/0006-291X(72)90381-6
59.
EscolarMLKielyBTShawgoEHongXGelbMHOrsiniJJet al. Psychosine, a marker of Krabbe phenotype and treatment effect. Mol Genet Metab. (2017) 121:271–8. 10.1016/j.ymgme.2017.05.015
60.
GuenzelAJTurgeonCTNickanderKKWhiteALPeckDSPinoGBet al. The critical role of psychosine in screening, diagnosis, and monitoring of Krabbe disease. Genet Med. (2020) 22:1108–18. 10.1038/s41436-020-0764-y
61.
WeinstockNIShinDDhimalNHongXIronsEESilvestriNJet al. Macrophages expressing GALC improve peripheral Krabbe disease by a mechanism independent of cross-correction. Neuron. (2020) 107:65–81.e9. 10.2139/ssrn.3464653
62.
Cantuti-CastelvetriLMaravillaEMarshallMTamayoTD'AuriaLMongeJet al. Mechanism of neuromuscular dysfunction in Krabbe disease. J Neurosci. (2015) 35:1606–16. 10.1523/JNEUROSCI.2431-14.2015
63.
CastelvetriLCGivogriMIZhuHSmithBLopez-RosasAQiuXet al. Axonopathy is a compounding factor in the pathogenesis of Krabbe disease. Acta Neuropathol. (2011) 122:35–48. 10.1007/s00401-011-0814-2
64.
TeixeiraCAMirandaCOSousaVFSantosTEMalheiroARSolomonMet al. Early axonal loss accompanied by impaired endocytosis, abnormal axonal transport, and decreased microtubule stability occur in the model of Krabbe's disease. Neurobiol Dis. (2014) 66:92–103. 10.1016/j.nbd.2014.02.012
65.
Nogueira-RodriguesJBritesPSousaMM. Axonal pathology in Krabbe's disease: The cytoskeleton as an emerging therapeutic target. J Neurosci Res. (2016) 94:1037–41. 10.1002/jnr.23771
66.
LandiCLuddiABianchiLPannuzzoGPavoneVPiomboniPet al. Proteostasis network alteration in lysosomal storage disorders: Insights from the mouse model of Krabbe disease. J Neurosci Res. (2020) 98:718–33. 10.1002/jnr.24558
67.
Sural-FehrTSinghHCantuti-CatelvetriLZhuHMarshallMSRebiaiRet al. Inhibition of the IGF-1-PI3K-Akt-mTORC2 pathway in lipid rafts increases neuronal vulnerability in a genetic lysosomal glycosphingolipidosis. Dis Model Mech. (2019) 12:36590. 10.1242/dmm.036590
68.
Velasco-EstevezMGadallaKKELinan-BarbaNCobbSDevKKSheridanKG. Inhibition of Piezo1 attenuates demyelination in the central nervous system. Glia. (2020) 68:356–75. 10.1002/glia.23722
69.
O'SullivanSDevKK. Sphingosine-1-phosphate receptor therapies: Advances in clinical trials for CNS-related diseases. Neuropharmacology. (2017) 113:597–607. 10.1016/j.neuropharm.2016.11.006
70.
BechetSO'SullivanSAYsselJFaganSGDevKK. Fingolimod rescues demyelination in a mouse model of Krabbe's disease. J Neurosci. (2020) 40:3104–18. 10.1523/JNEUROSCI.2346-19.2020
71.
MaruyamaYUenoSMoritaMHayashiFMaekawaS. Inhibitory effect of several sphingolipid metabolites on calcineurin. Neurosci Lett. (2018) 673:132–5. 10.1016/j.neulet.2018.03.010
72.
MisslinCVelasco-EstevezMAlbertMO'SullivanSADevKK. Phospholipase A2 is involved in galactosylsphingosine-induced astrocyte toxicity, neuronal damage and demyelination. PLoS ONE. (2017) 12:e0187217. 10.1371/journal.pone.0187217
73.
GiriSKhanMNathNSinghISinghKA. The role of AMPK in psychosine mediated effects on oligodendrocytes and astrocytes: implication for Krabbe disease. J Neurochem. (2008) 105:1820–33. 10.1111/j.1471-4159.2008.05279.x
74.
IjichiKBrownGDMooreCSLeeJPWinokurPNPagariganRet al. MMP-3 mediates psychosine-induced globoid cell formation: implications for leukodystrophy pathology. Glia. (2013) 61:765–77. 10.1002/glia.22471
75.
GrazianoACParentiRAvolaRCardileV. Krabbe disease: involvement of connexin43 in the apoptotic effects of sphingolipid psychosine on mouse oligodendrocyte precursors. Apoptosis. (2016) 21:25–35. 10.1007/s10495-015-1183-4
76.
HaqEGiriSSinghISinghKA. Molecular mechanism of psychosine-induced cell death in human oligodendrocyte cell line. J Neurochem. (2003) 86:1428–40. 10.1046/j.1471-4159.2003.01941.x
77.
D'AuriaLReiterCWardEMoyanoALMarshallMSNguyenDet al. Psychosine enhances the shedding of membrane microvesicles: Implications in demyelination in Krabbe's disease. PLoS ONE. (2017) 12:e0178103. 10.1371/journal.pone.0178103
78.
WhiteABGivogriMILopez-RosasACaoHvan BreemenRThinakaranGet al. Psychosine accumulates in membrane microdomains in the brain of krabbe patients, disrupting the raft architecture. J Neurosci. (2009) 29:6068–77. 10.1523/JNEUROSCI.5597-08.2009
79.
LinDSHoCSHuangYWWuTYLeeTHHuangZDet al. Impairment of proteasome and autophagy underlying the pathogenesis of leukodystrophy. Cells. (2020) 9:1124. 10.3390/cells9051124
80.
GiriSKhanMRattanRSinghISinghKA. Krabbe disease: psychosine-mediated activation of phospholipase A2 in oligodendrocyte cell death. J Lipid Res. (2006) 47:1478–92. 10.1194/jlr.M600084-JLR200
81.
PotterGBPetryniakAM. Neuroimmune mechanisms in Krabbe's disease. J Neurosci Res. (2016) 94:1341–8. 10.1002/jnr.23804
82.
SnookERFisher-PerkinsJMSansingHALeeKMAlvarezXMacLeanAGet al. Innate immune activation in the pathogenesis of a murine model of globoid cell leukodystrophy. Am J Pathol. (2014) 184:382–96. 10.1016/j.ajpath.2013.10.011
83.
BradburyAMBongarzoneERSandsSM. Krabbe disease: New hope for an old disease. Neurosci Lett. (2021) 752:135841. 10.1016/j.neulet.2021.135841
84.
WonJSSinghAKSinghI. Biochemical, cell biological, pathological, and therapeutic aspects of Krabbe's disease. J Neurosci Res. (2016) 94:990–1006. 10.1002/jnr.23873
85.
MangiameliECeccheleAMorenaFSanvitoFMataforaVCattaneoAet al. Human iPSC-based neurodevelopmental models of globoid cell leukodystrophy uncover patient- and cell type-specific disease phenotypes. Stem Cell Rep. (2021) 16:1478–95. 10.1016/j.stemcr.2021.04.011
86.
InamuraNGoSWatanabeTTakaseHTakakuraNNakayamaAet al. Reduction in miR-219 expression underlies cellular pathogenesis of oligodendrocytes in a mouse model of Krabbe disease. Brain Pathol. (2021) 31:e12951. 10.1111/bpa.12951
87.
O'SullivanCDevKK. Galactosylsphingosine (psychosine)-induced demyelination is attenuated by sphingosine 1-phosphate signalling. J Cell Sci. (2015) 128:3878–87. 10.1242/jcs.169342
88.
CappelloVMarchettiLParlantiPLandiSTonazziniICecchiniMet al. Ultrastructural characterization of the lower motor system in a mouse model of Krabbe disease. Sci Rep. (2016) 6:1. 10.1038/s41598-016-0001-8
89.
RighiMBelleriMPrestaMGiacominiA. Quantification of 3D brain microangioarchitectures in an animal model of Krabbe disease. Int J Mol Sci. (2019) 20:2384. 10.3390/ijms20102384
90.
PellegriniDDel GrossoAAngellaLGiordanoNDililloMTonazziniIet al. Quantitative microproteomics based characterization of the central and peripheral nervous system of a mouse model of Krabbe disease. Mol Cell Proteomics. (2019) 18:1227–41. 10.1074/mcp.RA118.001267
91.
ClaycombKIWinokurPNJohnsonKMNicaiseAMGiampetruzziAWSacinoAVet al. Aberrant production of tenascin-C in globoid cell leukodystrophy alters psychosine-induced microglial functions. J Neuropathol Exp Neurol. (2014) 73:964–74. 10.1097/NEN.0000000000000117
92.
SantambrogioSRiccaAMadernaCIeraciAAureliMSonninoSet al. The galactocerebrosidase enzyme contributes to maintain a functional neurogenic niche during early post-natal CNS development. Hum Mol Genet. (2012) 21:4732–50. 10.1093/hmg/dds313
93.
BelleriMColtriniDRighiMRavelliCTarantoSChiodelliPet al. beta-galactosylceramidase deficiency causes bone marrow vascular defects in an animal model of Krabbe disease. Int J Mol Sci. (2019) 21:10251. 10.3390/ijms21010251
94.
PaciottiSAlbiEParnettiLBeccariT. Lysosomal ceramide metabolism disorders: implications in Parkinson's Disease. J Clin Med. (2020) 9:594. 10.3390/jcm9020594
95.
SmithBRSantosMBMarshallMSCantuti-CastelvetriLLopez-RosasALiGet al. Neuronal inclusions of alpha-synuclein contribute to the pathogenesis of Krabbe disease. J Pathol. (2014) 232:509–21. 10.1002/path.4328
96.
AbdelkarimHMarshallMSScesaGSmithRARueEMarshallJet al. alpha-Synuclein interacts directly but reversibly with psychosine: implications for alpha-synucleinopathies. Sci Rep. (2018) 8:12462. 10.1038/s41598-018-30808-9
97.
ParaCBosePPshezhetskyVA. Neuropathophysiology of lysosomal storage diseases: synaptic dysfunction as a starting point for disease progression. J Clin Med. (2020) 9:616. 10.3390/jcm9030616
98.
FerrariRHernandezDGNallsMARohrerJDRamasamyAKwokJBet al. Frontotemporal dementia and its subtypes: a genome-wide association study. Lancet Neurol. (2014) 13:686–99. 10.1016/S1474-4422(14)70065-1
99.
NallsMABlauwendraatCVallergaCLHeilbronKBandres-CigaSChangDet al. Identification of novel risk loci, causal insights, and heritable risk for Parkinson's disease: a meta-analysis of genome-wide association studies. Lancet Neurol. (2019) 18:1091–102. 10.1016/S1474-4422(19)30320-5
100.
GaoSCaseyAESargeantTJMakinenPV. Genetic variation within endolysosomal system is associated with late-onset Alzheimer's disease. Brain. (2018) 141:2711–20. 10.1093/brain/awy197
101.
YeagerAMBrennanSTiffanyCMoserHWSantosWG. Prolonged survival and remyelination after hematopoietic cell transplantation in the twitcher mouse. Science. (1984) 225:1052–4. 10.1126/science.6382609
102.
HoogerbruggePMSuzukiKSuzukiKPoorthuisBJKobayashiTWagemakerGet al. Donor-derived cells in the central nervous system of twitcher mice after bone marrow transplantation. Science. (1988) 239:1035–8. 10.1126/science.3278379
103.
AlleweltHTaskindoustMTroyJPageKWoodSParikhSet al. Long-term functional outcomes after hematopoietic stem cell transplant for early infantile Krabbe disease. Biol Blood Marrow Transplant. (2018) 24:2233–8. 10.1016/j.bbmt.2018.06.020
104.
PageKMStengerEOConnellyJAShyrDWestTWoodSet al. Hematopoietic stem cell transplantation to treat leukodystrophies: clinical practice guidelines from the hunter's hope leukodystrophy care network. Biol Blood Marrow Transplant. (2019) 25:e363–74. 10.1016/j.bbmt.2019.09.003
105.
HooperATButlerJMNolanDJKranzAIidaKKobayashiMet al. Engraftment and reconstitution of hematopoiesis is dependent on VEGFR2-mediated regeneration of sinusoidal endothelial cells. Cell Stem Cell. (2009) 4:263–74. 10.1016/j.stem.2009.01.006
106.
MikulkaCRSandsSM. Treatment for Krabbe's disease: Finding the combination. J Neurosci Res. (2016) 94:1126–37. 10.1002/jnr.23822
107.
VisigalliIUngariSMartinoSParkHCesaniMGentnerBet al. The galactocerebrosidase enzyme contributes to the maintenance of a functional hematopoietic stem cell niche. Blood. (2010) 116:1857–66. 10.1182/blood-2009-12-256461
108.
GentnerBVisigalliIHiramatsuHLechmanEUngariSGiustacchiniAet al. Identification of hematopoietic stem cell-specific miRNAs enables gene therapy of globoid cell leukodystrophy. Sci Transl Med. (2010) 2:58ra84. 10.1126/scitranslmed.3001522
109.
LeeWCCourtenayATroendleFJStallings-MannMLDickeyCADeLuciaMWet al. Enzyme replacement therapy results in substantial improvements in early clinical phenotype in a mouse model of globoid cell leukodystrophy. FASEB J. (2005) 19:1549–51. 10.1096/fj.05-3826fje
110.
QinEYHawkins-SalsburyJAJiangXReddyASFarberNBOryDSet al. Bone marrow transplantation increases efficacy of central nervous system-directed enzyme replacement therapy in the murine model of globoid cell leukodystrophy. Mol Genet Metab. (2012) 107:186–96. 10.1016/j.ymgme.2012.05.021
111.
LeVineSMPedchenkoTVBronshteynIGPinsonMD. L-cycloserine slows the clinical and pathological course in mice with globoid cell leukodystrophy (twitcher mice). J Neurosci Res. (2000) 60:231–6. 10.1002/(SICI)1097-4547(20000415)60:2<231::AID-JNR12>3.0.CO;2-E
112.
LowtherJYardBAJohnsonKACarterLGBhatVTRamanMCet al. Inhibition of the PLP-dependent enzyme serine palmitoyltransferase by cycloserine: evidence for a novel decarboxylative mechanism of inactivation. Mol Biosyst. (2010) 6:1682–93. 10.1039/c003743e
113.
KatabuchiAUGodoyVShilPMoserAMaegawaBGH. Serendipitous effects of beta-cyclodextrin on murine model of Krabbe disease. Mol Genet Metab Rep. (2018) 15:98–9. 10.1016/j.ymgmr.2018.03.002
114.
SandsSALeVineMS. Substrate reduction therapy for Krabbe's disease. J Neurosci Res. (2016) 94:1261–72. 10.1002/jnr.23791
115.
Di MartinoSTardiaPCilibrasiVCaputoSMazzonnaMRussoDet al. Lead optimization of benzoxazolone carboxamides as orally bioavailable and CNS penetrant acid ceramidase inhibitors. J Med Chem. (2020) 63:3634–64. 10.1021/acs.jmedchem.9b02004
116.
ShenWFlajoletMGreengardPSurmeierJD. Dichotomous dopaminergic control of striatal synaptic plasticity. Science. (2008) 321:848–51. 10.1126/science.1160575
117.
De GasperiRFriedrichVLPerezGMSenturkEWenPHKelleyKet al. Transgenic rescue of Krabbe disease in the twitcher mouse. Gene Ther. (2004) 11:1188–94. 10.1038/sj.gt.3302282
118.
LattanziASalvagnoCMadernaCBenedicentiFMorenaFKulikWet al. Therapeutic benefit of lentiviral-mediated neonatal intracerebral gene therapy in a mouse model of globoid cell leukodystrophy. Hum Mol Genet. (2014) 23:3250–68. 10.1093/hmg/ddu034
119.
MeneghiniVLattanziATiradaniLBravoGMorenaFSanvitoFet al. Pervasive supply of therapeutic lysosomal enzymes in the CNS of normal and Krabbe-affected non-human primates by intracerebral lentiviral gene therapy. EMBO Mol Med. (2016) 8:489–510. 10.15252/emmm.201505850
120.
LattanziANeriMMadernaCdi GirolamoIMartinoSOrlacchioAet al. Widespread enzymatic correction of CNS tissues by a single intracerebral injection of therapeutic lentiviral vector in leukodystrophy mouse models. Hum Mol Genet. (2010) 19:2208–27. 10.1093/hmg/ddq099
121.
BougioukliSChateauMMoralesHVakhshoriVSugiyamaOOakesDet al. Limited potential of AAV-mediated gene therapy in transducing human mesenchymal stem cells for bone repair applications. Gene Ther. (2020). 10.1038/s41434-020-0182-4. [Epub ahead of print].
122.
HordeauxJJianJJahanTBagelJHMitchellTWMichalsonKTet al. Evaluating the efficacy and safety of cerebrospinal fluid delivered gene therapy for Krabbe disease in murine and canine models. In: American Society for Gene and Cell Therapy. Virtual (2020).
123.
RafiMARaoHZLuziPCurtisMTWengerAD. Extended normal life after AAVrh10-mediated gene therapy in the mouse model of Krabbe disease. Mol Ther. (2012) 20:2031–42. 10.1038/mt.2012.153
124.
RafiMARaoHZLuziPLuddiACurtisMTWengerAD. Intravenous injection of AAVrh10-GALC after the neonatal period in twitcher mice results in significant expression in the central and peripheral nervous systems and improvement of clinical features. Mol Genet Metab. (2015) 114:459–66. 10.1016/j.ymgme.2014.12.300
125.
HellerGJMarshallMSIssaYMarshallJNNguyenDRueEet al. Waning efficacy in a long-term AAV-mediated gene therapy study in the murine model of Krabbe disease. Mol Ther. (2021) 29:1883–902. 10.1016/j.ymthe.2021.01.026
126.
RafiMALuziPWengerAD. Conditions for combining gene therapy with bone marrow transplantation in murine Krabbe disease. Bioimpacts. (2020) 10:105–15. 10.34172/bi.2020.13
127.
CastleMJTurunenHTVandenbergheLHWolfeHJ. Controlling AAV tropism in the nervous system with natural and engineered capsids. Methods Mol Biol. (2016) 1382:133–49. 10.1007/978-1-4939-3271-9_10
128.
LykkenEAShyngCEdwardsRJRozenbergAGrayJS. Recent progress and considerations for AAV gene therapies targeting the central nervous system. J Neurodev Disord. (2018) 10:16. 10.1186/s11689-018-9234-0
129.
HaeryLDevermanBEMathoKSCetinAWoodardKCepkoCet al. Adeno-associated virus technologies and methods for targeted neuronal manipulation. Front Neuroanat. (2019) 13:93. 10.3389/fnana.2019.00093
130.
O'CarrollSJCookWHYoungD. AAV targeting of glial cell types in the central and peripheral nervous system and relevance to human gene therapy. Front Mol Neurosci. (2020) 13:618020. 10.3389/fnmol.2020.618020
131.
YakovlevPLecoursA. The Myelogenetic Cycles of Regional Maturation of the Brain. Oxford: Blackwell (1967).
132.
WrightMDPoeMDDeRenzoAHaldalSEscolarLM. Developmental outcomes of cord blood transplantation for Krabbe disease: A 15-year study. Neurology. (2017) 89:1365–72. 10.1212/WNL.0000000000004418
133.
HeldermonCDOhlemillerKKHerzogEDVoglerCQinEWozniakDFet al. Therapeutic efficacy of bone marrow transplant, intracranial AAV-mediated gene therapy, or both in the mouse model of MPS IIIB. Mol Ther. (2010) 18:873–80. 10.1038/mt.2010.17
134.
LinDSHsiaoCDLeeAYHoCSLiuHLWangTJet al. Mitigation of cerebellar neuropathy in globoid cell leukodystrophy mice by AAV-mediated gene therapy. Gene. (2015) 571:81–90. 10.1016/j.gene.2015.06.049
135.
MarshallMSJakubauskasBBogueWStoskuteMHauckZRueEet al. Analysis of age-related changes in psychosine metabolism in the human brain. PLoS ONE. (2018) 13:e0193438. 10.1371/journal.pone.0193438
136.
Van AlstyneMTattoliIDelestreeNRecinosYWorkmanEShihabuddinLSet al. Gain of toxic function by long-term AAV9-mediated SMN overexpression in the sensorimotor circuit. Nat Neurosci. (2021) 24:930–40. 10.1038/s41593-021-00827-3
137.
BarnesCScheidelerOSchafferD. Engineering the AAV capsid to evade immune responses. Curr Opin Biotechnol. (2019) 60:99–103. 10.1016/j.copbio.2019.01.002
138.
SmithJKAgbandje-McKennaM. Creating an arsenal of Adeno-associated virus (AAV) gene delivery stealth vehicles. PLoS Pathog. (2018) 14:e1006929. 10.1371/journal.ppat.1006929
139.
HindererCKatzNBuzaELDyerCGoodeTBellPet al. Severe toxicity in nonhuman primates and piglets following high-dose intravenous administration of an adeno-associated virus vector expressing human SMN. Hum Gene Ther. (2018) 29:285–98. 10.1089/hum.2018.015
140.
HordeauxJHindererCGoodeTBuzaELBellPCalcedoRet al. Toxicology study of intra-cisterna magna adeno-associated virus 9 expressing iduronate-2-sulfatase in rhesus macaques. Mol Ther Methods Clin Dev. (2018) 10:68–78. 10.1016/j.omtm.2018.06.004
141.
DonsanteAMillerDGLiYVoglerCBruntEMRussellDWet al. AAV vector integration sites in mouse hepatocellular carcinoma. Science. (2007) 317:477. 10.1126/science.1142658
142.
LoganGJDaneAPHallwirthCVSmythCMWilkieEEAmayaAKet al. Identification of liver-specific enhancer-promoter activity in the 3' untranslated region of the wild-type AAV2 genome. Nat Genet. (2017) 49:1267–73. 10.1038/ng.3893
143.
ChandlerRJLaFaveMCVarshneyGKTrivediNSCarrillo-CarrascoNSenacJSet al. Vector design influences hepatic genotoxicity after adeno-associated virus gene therapy. J Clin Invest. (2015) 125:870–80. 10.1172/JCI79213
144.
LiYMillerCASheaLKJiangXGuzmanMAChandlerRJet al. Enhanced efficacy and increased long-term toxicity of CNS-Directed, AAV-based combination therapy for Krabbe disease. Mol Ther. (2021) 29:691–701. 10.1016/j.ymthe.2020.12.031
145.
DalwadiDATorrensLAbril-FornagueraJPinyolRWilloughbyCPoseyJet al. Liver injury increases the incidence of HCC following AAV gene therapy in mice. Mol Ther. (2021) 29:680–90. 10.1016/j.ymthe.2020.10.018
146.
NguyenGNEverettJKKafleSRocheAMRaymondHELeibyJet al. A long-term study of AAV gene therapy in dogs with hemophilia A identifies clonal expansions of transduced liver cells. Nat Biotechnol. (2021) 39:47–55. 10.1038/s41587-020-0741-7
147.
NaultJCDattaSImbeaudSFranconiAMalletMCouchyGet al. Recurrent AAV2-related insertional mutagenesis in human hepatocellular carcinomas. Nat Genet. (2015) 47:1187–93. 10.1038/ng.3389
148.
NaultJCMamiILa BellaTDattaSImbeaudSFranconiAet al. Wild-type AAV insertions in hepatocellular carcinoma do not inform debate over genotoxicity risk of vectorized AAV. Mol Ther. (2016) 24:660–1. 10.1038/mt.2016.47
149.
SiddiqiZASandersDBMasseyMJ. Peripheral neuropathy in Krabbe disease: effect of hematopoietic stem cell transplantation. Neurology. (2006) 67:268–72. 10.1212/01.wnl.0000230156.01228.33
150.
SnaideroNSimonsM. Myelination at a glance. J Cell Sci. (2014) 127:2999–3004. 10.1242/jcs.151043
151.
MengXLEtoYSchiffmannRShenSJ. HIV tat domain improves cross-correction of human galactocerebrosidase in a gene- and flanking sequence-dependent manner. Mol Ther Nucleic Acids. (2013) 2:e130. 10.1038/mtna.2013.57
152.
RiccaACascinoFMorenaFMartinoSGrittiA. In vitro validation of chimeric beta-galactosylceramidase enzymes with improved enzymatic activity and increased secretion. Front Mol Biosci. (2020) 7:167. 10.3389/fmolb.2020.00167
153.
ShaimardanovaAAChulpanovaDSSolovyevaVVMullagulovaAIKitaevaKVAllegrucciCet al. Metachromatic leukodystrophy: diagnosis, modeling, treatment approaches. Front Med. (2020) 7:576221. 10.3389/fmed.2020.576221
154.
HudryEVandenbergheHL. Therapeutic AAV gene transfer to the nervous system: a clinical reality. Neuron. (2019) 102:263. 10.1016/j.neuron.2019.03.020
Summary
Keywords
Krabbe disease (globoid cell leukodystrophy), leukodystrophies, adeno-associated virus, gene therapy, galactocerebrosidase, psychosine
Citation
Nasir G, Chopra R, Elwood F and Ahmed SS (2021) Krabbe Disease: Prospects of Finding a Cure Using AAV Gene Therapy. Front. Med. 8:760236. doi: 10.3389/fmed.2021.760236
Received
17 August 2021
Accepted
15 October 2021
Published
11 November 2021
Volume
8 - 2021
Edited by
Annarita Miccio, INSERM U1163 Institut Imagine, France
Reviewed by
Pasqualina Colella, Stanford University, United States; Vasco Meneghini, San Raffaele Telethon Institute for Gene Therapy (SR-Tiget), Italy
Updates

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Copyright
© 2021 Nasir, Chopra, Elwood and Ahmed.
This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
*Correspondence: Seemin S. Ahmed seemin.ahmed@novartis.com
This article was submitted to Gene and Cell Therapy, a section of the journal Frontiers in Medicine
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