Abstract
Chromothripsis represents a mechanism of massive chromosome shattering and reassembly leading to the formation of derivative chromosomes with abnormal functions and expression. It has been observed in many cancer types, importantly, including chronic lymphocytic leukemia (CLL). Due to the associated chromosomal rearrangements, it has a significant impact on the pathophysiology of the disease. Recent studies have suggested that chromothripsis may be more common than initially inferred, especially in CLL cases with adverse clinical outcome. Here, we review the main features of chromothripsis, the challenges of its assessment, and the potential benefit of its detection. We summarize recent findings of chromothripsis occurrence across hematological malignancies and address its causes and consequences in the context of CLL clinical features, as well as chromothripsis-related molecular abnormalities described in published CLL studies. Furthermore, we discuss the use of the current knowledge about genome functions associated with chromothripsis in the optimization of treatment strategies in CLL.
Introduction
Chronic lymphocytic leukemia (CLL) is the most common adult leukemia in Western countries with a highly variable clinical course. Several recurrent chromosomal alterations have been associated with prognosis and may guide risk-adapted therapy. Besides deletions on chromosomes 11, 13, 17, and trisomy 12, high genomic complexity (high-GC) has also been recognized as a feature with prognostic value (, ) and is associated with poor clinical outcome (, ). Cytogenetics and array-based methods define high-GC as five or more chromosomal defects (, ). In many instances, highly complex karyotypes can be caused by chromothripsis (cth) (), a genomic event by which a single or a limited number of chromosomes are shattered into pieces, followed by error-prone reassembly (–).
Among all cancers, it was CLL where the evidence of cth was reported for the first time. This finding was made already a decade ago via the whole-genome sequencing screening of 10 CLL patients (). In a sample from a 62-year-old woman without any previous CLL treatment, a massive rearrangement of chromosomal arm 4q and focal alterations on chromosomes 1, 12, and 15 were found, showing striking patterns. It was proved that this complex genomic remodeling had occurred before the diagnosis and persisted until the rapid disease relapse after alemtuzumab treatment without further evolution. The phenomenon was termed chromothripsis (from Greek; chromos for chromosome, thripsis for shattering into pieces) and was subsequently observed in many other tumor types (, –).
In contrast to the traditional view of tumorigenesis as the multi-step accumulation of mutations, cth arises via a single devastating event. Within a single cell division, tens to hundreds of DNA double-strand breaks are generated and imperfectly assembled into derivative chromosomes, most often via non-homologous end joining (NHEJ), whereas some fragments can be lost (Figure 1A). The massively rearranged genomes of the cells that survive such an event propagate in daughter clones and are likely to have gained a strong selection advantage, as cth could disrupt the functions of tumor suppressors, support the oncogene amplification, and/or give rise to pathogenic gene fusions. Thus, cth is a potential driving force of malignant transformation and tumor progression.
Figure 1
Detection of Chromothripsis-Like Patterns
Cth is characterized by several hallmarks that set it apart from other complex genomic changes: (a) occurrence of tens to hundreds of chromosomal rearrangements with pronounced clustering, (b) random orientation of rearrangements resulting in equal representation of deletions, inversions, and tandem duplications, (c) copy-number alterations (CNAs) oscillating between two (occasionally three) copy-number states, (d) alterations of segments that retained heterozygosity and segments with loss-of-heterozygosity (LOH), (e) structural rearrangements displaying a bias toward occurring on a single chromosome homolog, and (f) presence of double-minute chromosomes (
Since the genomic profile originating in cth could be similar to stepwise processes, the detection of cth is often challenging. Therefore, a set of criteria was generated for accurate and reproducible cth inference (
Chromothripsis in Hematological Malignancies
Cth has been observed in primary tumors of various histological types, including hematological malignancies, such as lymphomas (
Table 1
| Reference | Clinical characterization of the cohort | Clinical characterization of cth cases | n/N | Cth prevalence | Method |
|---|---|---|---|---|---|
| Chronic lymphocytic leukemia | |||||
| Stephens et al., 2011 ( | not specified | rapid relapse after alemtuzumab | 1/10 | 10% | WGS |
| Edelmann et al., 2012 ( | treatment-naïve; samples from the GCLLSG CLL8 trial | poor survival; 74% with unmutated IGHV; 32% with mutated TP53 | 19/353 | 5.4% | SNP array |
| Salaverria et al., 2015 ( | 26% treatment-naïve | poor survival; 75% with TP53 abnormality (mutation and/or deletion) | 8/180 | 4.4% | aCGH |
| Puente et al., 2015 ( | treatment-naïve | 26% with mutated TP53; 26% with inactivated SETD2, 25% with loss of mir-15a/mir-16 | 15/452 | 3.3% | SNP array, WGS |
| Parker et al., 2016 ( | 93% treatment-naïve; 84% of samples from the ADMIRE, ARCTIC, UK CLL4, GCLLSG CLL8, and SCSG CLL2O trials | poor outcome; 26% with SETD2 deletion | 27/1,006 | 2.7% | SNP array |
| Burns et al., 2018 ( | 52% treatment-naïve | with TP53 deletion | 1/46 | 2.2% | WGS |
| Cortés-Ciriano et al., 2020 ( | data from the PCAWG Consortium ( | not specified | 1/86 | 1.2% | WGS |
| Leeksma et al., 2021 ( | 86% treatment-naïve; samples from 13 CLL diagnostic centers participating in ERIC | poor survival; all with TP53 abnormality (mutation and/or deletion) and del(11q) | 32/2,293 | 1.4% | SNP array, aCGH |
| Ramos-Campoy et al., 2021 ( | treatment-naïve; 47% with complex karyotypes | poor outcome, 73% with TP53 abnormality | 30/340 | 8.8% | SNP array, aCGH |
| Acute myeloid leukemia | |||||
| Rausch et al., 2012 ( | non-M3 AML; treatment-naïve; adults | poor survival, 89% with mutated TP53 | 9/108 | 8.3% | SNP array |
| Fontana et al., 2018 ( | 82% de novo AML, 12% AML secondary to myelodysplastic syndrome, 1% AML secondary to myeloid neoplasms, 5% therapy-related AML; mostly adults (median age 59.35) | poor outcome; 70% of cases treated with chemotherapy did not respond; 88% with TP53 abnormality (mutation and/or deletion) | 26/395 | 6.6% | SNP array |
| Myelodysplastic syndrome | |||||
| Kim et al., 2013 ( | data from the GEO database ( | not specified | 7/393 | 1.8% | aCGH |
| Zemanova et al., 2014 ( | treatment-naïve; with complex chromosomal rearrangements (≥3 aberrations) | not specified | 77/157 | 49% | SNP array |
| Abáigar et al., 2016 ( | treatment-naïve | high-risk MDS; all died within one year; all with mutated TP53 | 3/240 | 1.3% | aCGH |
| Acute lymphoblastic leukemia | |||||
| Zhang et al., 2012 ( | childhood early T cell precursor ALL | 2 cases relapsed 8 and 13 months after diagnosis, 1 case underwent bone marrow transplantation; all died | 3/12 | 25% | WGS |
| Li et al., 2014 ( | childhood ALL; 56% with sporadic iAMP21, 44% with rob(15;21)c-associated iAMP21 | not specified | 8/9 | 89% | WGS |
| Ratnaparkhe et al., 2017 ( | childhood ataxia-telangiectasia-related T-ALL | 1 case died 2 years after diagnosis, 1 case died from toxicity, 3 cases still alive (2/3 in remission) | 5/7 | 71% | WGS |
| Ratnaparkhe et al., 2017 ( | sporadic childhood T-ALL | not specified | 4/92 | 4.3% | WGS |
| Multiple myeloma | |||||
| Magrangeas et al., 2011 ( | treatment-naïve | 50% with rapid relapse | 10/764 | 1.3% | SNP array |
| Stevens-Kroef et al., 2012 ( | 82% treatment-naïve | not specified | 1/28 | 3.6% | SNP array |
| Kim et al., 2013 ( | data from the GEO database ( | not specified | 8/391 | 2% | aCGH |
| Voronina et al., 2020 ( | data from the NCT/DKTK-MASTER platform ( | not specified | 2/6 | 33% | WGS |
| Lymphoma | |||||
| Cortés-Ciriano et al., 2020 ( | mature B cell non-Hodgkin lymphoma; data from the PCAWG Consortium ( | not specified | 19/105 | 18% | WGS |
Prevalence of chromothripsis in CLL and other hematological malignancies.
*refers to unpublished data discussed with Meijerink et al., partly published in Li et al., 2016 (
n, the number of cth cases; N, the total number of cases analyzed in the respective study; GCLLSG, German CLL Study Group; PCAWG, Pan-Cancer Analysis of Whole Genomes; ERIC, European Research Initiative on CLL; GEO, Gene Expression Omnibus; NCT/DKTK-MASTER, National Center for Tumor Diseases/German Cancer Consortium-Molecularly Aided Stratification for Tumor Eradication; WGS, whole-genome sequencing; SNP array, single-nucleotide polymorphism array; aCGH, array comparative genomic hybridization.
For most hematological diseases, cth provides independent prognostic information and is associated with adverse clinical outcome. In myelodysplastic syndrome, the complex chromosomal rearrangements caused by cth are related to advanced disease stages prone to transform to acute myeloid leukemia (AML); as a consequence, they recurrently involve 5q deletions (
The evidence of cth cases described in CLL indicates that this phenomenon is a recurrent event. By exploring larger cohorts of CLL patients, cth was observed with frequencies from 1.2 to 10% (
Impact of Chromothripsis on CLL Onset and Progression
CLL patients with cth (cth-CLL) were shown to have inferior time to first treatment (
Some studies reported that cth occurs before the CLL diagnosis indicating that the complex genomic remodeling could be a CLL-initiating event (
Genomic Regions Associated With Chromothripsis in CLL
Chromosomes 2, 3, 6, 8, 9, 11, 13, and 17 were impacted by cth in CLL most frequently (
Moreover, SETD2 deletions have been associated with the loss of TP53, genomic complexity, and cth and define a subgroup of patients with poor outcome (
In the case study by Bassaganyas et al. (
Although seen with low frequency, there were observations of the cth-related gain of 8q (the C-MYC gene) (
Associations of Telomere Biology and Chromothripsis in CLL
Telomere dysfunction is known to have a dynamic role in shaping a disease course in CLL (
The dysfunctional telomeres often induce intra- or inter-chromosomal end fusions that can occur as clonal events. Their frequency was found to increase with the advancing disease stage in CLL (
In general, the telomere length has been proposed to be an independent prognostic factor in CLL, with short telomeres being associated with adverse outcome (
It is presumed that the derivative chromosomes resulting from cth are likely stabilized hindering further progressive chromosomal cataclysm that would be incompatible with cell survival. From longitudinal observations, the chromothriptic patterns in CLL patients are either stable, in which case the relapse specimens show similar aberrations to the primary samples (
All the mentioned findings confirm that the telomere attrition followed by end-to-end chromosome fusion and subsequent breakage leads to cth in CLL. This is followed by the establishment of telomere maintenance mechanisms that “lock-in” these alterations and prevent further lethal events. It, therefore, highlights the importance of detecting cth in the context of telomere length for risk stratification as well as for monitoring and early identification of clonal changes. Similarly, telomere maintenance mechanisms may represent a target for therapeutic intervention in cth-positive cases.
Chromothripsis in CLL Diagnostics and Treatment
The available data suggest the potential of cth detection for better stratification of CLL patients by recognizing cases with highly complex karyotypes and thus adverse prognosis. Studies showed that cth-CLL patients show adverse clinical course and demand an early therapeutic intervention (
As follows from the information above, cth is a consequence of genomic instability and is associated with aberrations in specific molecular pathways (
In general, the detection of cth-associated abnormalities could serve for the identification of molecular therapeutic targets. For instance, targeting oncogenes amplified via cth might provide a therapeutic benefit. Additionally, leukemic cells with cth could successfully respond to immune checkpoint blockade due to potential neoantigens generated from genomic rearrangements (
Besides that, a synthetic lethality approach (
Conclusions
Based on the available data, cth is a recurrent event in CLL and could have a strong prognostic value. Although there is rapid progress in understanding molecular processes behind cth, current studies have important limitations. The biggest drawback is a relatively small number of CLL patients that have been analyzed so far which hampers the reproducibility of published results. Another issue is missing longitudinal observations. Most studies focus on a single time point of the disease, usually treatment-naïve. However, the information about the dynamics of the cth and the changes accompanying this event is lacking. It would be of interest to elucidate which changes precede the development of cth and which, in contrast, are more frequently its consequence. These findings would facilitate a better understanding of CLL clonal evolution and its driving forces and could reveal recurrently altered molecular pathways with different prognostic impacts.
The genomic landscape induced by cth is complex and linking cth to specific clinical outcomes is not always straightforward. The genes and genomic regions affected by cth appear to be the most important factors for the disease phenotype, not the occurrence of cth itself. This highlights the growing need for personalized medicine to be implemented into CLL treatment. Analyzing tumor samples at different time points should also be a part of the clinical program to elucidate clonal genotypes that could be therapy-resistant, which might help in therapeutic decisions along the disease course.
Funding
The authors acknowledge the support by the AZV project NU21-08-00237 and the program for the conceptual development of research organization FNBr 65269705 provided by the Ministry of Health of the Czech Republic, the student projects MUNI/A/1595/2020 and MUNI/IGA/1640/2020 provided by the Ministry of Education, Youth and Sports of the Czech Republic, and the European Regional Development Fund Project “A-C-G-T” No. CZ.02.1.01/0.0/0.0/16_026/0008448. KZ is a holder of Brno Ph.D. Talent 2019 Scholarship funded by the Brno City Municipality. The content of this manuscript is a part of the doctoral thesis of KZ.
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Statements
Author contributions
KZ drafted the manuscript and created figures. KP proposed the structure and supervised manuscript preparation, both authors performed the literature search and contributed to manuscript writing. Both authors contributed to the article and approved the submitted version.
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
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Summary
Keywords
chromothripsis, chronic lymphocytic leukemia, complex chromosomal rearrangements, copy number alterations, genomic array, paired-end sequencing, oncogene amplification, tumor suppressor inactivation
Citation
Zavacka K and Plevova K (2021) Chromothripsis in Chronic Lymphocytic Leukemia: A Driving Force of Genome Instability. Front. Oncol. 11:771664. doi: 10.3389/fonc.2021.771664
Received
06 September 2021
Accepted
01 November 2021
Published
26 November 2021
Volume
11 - 2021
Edited by
Eugen Tausch, University of Ulm, Germany
Reviewed by
Lucrecia Yañez San Segundo, Marqués de Valdecilla University Hospital, Spain; Nicoletta Coccaro, University of Bari Aldo Moro, Italy
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© 2021 Zavacka and Plevova.
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: Karla Plevova, karla.plevova@mail.muni.cz
This article was submitted to Hematologic Malignancies, a section of the journal Frontiers in Oncology
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