Abstract
Therapeutic implementation of human limb regeneration is a daring aim. Studying species that can regrow their lost appendages provides clues on how such a feat can be achieved in mammals. One of the unique features of regeneration-competent species lies in their ability to seal the amputation plane with a scar-free wound epithelium. Subsequently, this wound epithelium advances and becomes a specialized wound epidermis (WE) which is hypothesized to be the essential component of regenerative success. Recently, the WE and specialized WE terminologies have been used interchangeably. However, these tissues were historically separated, and contemporary limb regeneration studies have provided critical new information which allows us to distinguish them. Here, I will summarize tissue-level observations and recently identified cell types of WE and their specialized forms in different regeneration models.
Introduction
Limb regeneration is associated with two heterogeneous tissue types: a specialized wound epithelium that caps the amputation plane, and a blastema which forms underneath the specialized wound epidermis (WE) and contains lineage-restricted stem and progenitor cells that will give rise to the new appendage (; ). The interaction between these two tissues leads to the outgrowth of the lost structure. Studies with newts, which can consistently perform limb regeneration throughout their lifespan, provided landmark findings governing the function of these tissues (). Subsequent reports aimed to characterize and identify counterparts in other regeneration models.
The critical role of the WE for regenerative success stems from the observations dating back to the early 1900s (Morosow, 1938; Thornton, 1960). Mainly, newt limb amputations were found to progress with a rapid epithelial migration resulting in the closure of the amputation plane (Lash, 1955; ; Repesh and Oberpriller, 1978), forming the WE. Afterward, the WE progresses into its specialized morphologically thickened epithelial form, also known as the apical epithelial cap (AEC). Repeated salamander AEC removal or blocking AEC formation halts the limb regeneration program, highlighting its essential role for limb regeneration (Morosow, 1938; ; Thornton, 1957, 1958; Mescher, 1976; Tassava and Garling, 1979; Tsai et al., 2020). Conversely, grafting the salamander AEC can induce ectopic limb outgrowths, with cartilage and dermal composition (Thornton, 1960; Thornton and Thornton, 1965). Owing to these features, the derivation of the AEC for grafting or identifying genes associated with the AEC holds potential for therapeutic applications. However, before delving into the properties of the WE and the AEC, it is crucial to define them clearly.
The term “AEC” was initially used to identify an epithelium covering aggregated blastema cells during limb regeneration. Nonetheless, this definition could be used for both the WE and the AEC. Moreover, investigations on different non-limb regeneration scenarios (e.g., tail regeneration) sought to identify similar tissues. However, due to unclear definitions of these tissues, the WE and the AEC terminologies were used interchangeably. To distinguish them and clarify their differences, suggested a revision to these terminologies. Briefly, the WE is the epithelium covering the amputation plane (right after amputations), remains on the amputation plane for a short period, and has a simple morphology consisting of one to three layers of cells (Figure 1). Meanwhile, its specialized form, the AEC, appears after the WE formation. The AEC remains until proximal-distal elongation (until digit formation), and has a thickened structure of approximately 10–15 layers of cells (Figure 1). On this basis, two features were proposed to distinguish them: (1) the period coinciding with their presence during regeneration and (2) tissue morphology. Although these definitions are helpful, our current methodologies evidenced that tissue or cellular morphology could be inadequate assessments for functionally distinct populations and cell types. Moreover, the different cell types composing and identifying the WE or the AEC were not resolved. Instead, investigating their counterparts in other species or regeneration paradigms brought additional misperception to these concepts.
FIGURE 1
In this review, I aim to bridge historical tissue level observations of the WE and the AEC with recent single-cell transcriptomics and other cell-type focused findings, primarily in the context of vertebrate limb regeneration. Due to the interchangeable documentation of these two concepts, I will focus on the properties of the AEC and mark potential phenotypes distinguishing it from the WE. Finally, I will compare the cross-species and regeneration-model properties of the WE and the AEC.
What Does the Apical-Epithelial-Cap, Do?
The salamander AEC has been associated with multiple critical roles for successful regeneration, from influencing extracellular-matrix (ECM) organization to providing mitogenic factors. Among these undertakings, one of the early suggested AEC functions governed the question: does the blastema influence the AEC formation or vice versa? Work targeting this question proposed that the injury caused by the amputation induces morphologically identified dedifferentiated cells (Tassava and Loyd, 1977). These cells can proliferate and form a blastema in the presence of the AEC. However, without the AEC, the blastema does not form, although dedifferentiated cells can be observed. Hence, the AEC has been suggested to maintain and further instruct injury-induced dedifferentiated cells to form a blastema and patterning for regeneration. Due to the observation that injury-induced dedifferentiated cells can form without the AEC, it has been hypothesized that the lack of a specialized WE results in regeneration-incompetency in higher vertebrates (Tassava and Olsen, 1982).
In subsequent years, the AEC has been further associated with multiple essential cellular mechanisms for regenerative success. The majority of functional suggestions on the role of the AEC were concluded based on staining approaches and observed gene expression patterns. For example, the salamander AEC expresses ECM associated fn1 (
Is the Apical Epithelial Cap Formation Re-Deployment of the Limb Development Associated Apical-Ectodermal Ridge?
One of the main questions in regeneration biology involves revealing similarities between regeneration and development. From this perspective, the AEC has been associated with the apical ectodermal ridge (AER), which is well-established transient tissue essential for chicken and mouse limb development (
Both the AER and the AEC were suggested to be largely mitotically inactive populations (Moriyasu et al., 2012; Storer et al., 2013;
Despite all similarities, the AEC and the AER are argued to have some differences, and there are challenges to testing their equivalency. First, morphological features of the AER and the AEC were discussed as potential differences (
There are different models for AER disappearance during amniotic development (Scherz et al., 2004; Verheyden and Sun, 2008; Storer et al., 2013; Pickering et al., 2018), but how the AEC disappears during regeneration remains unknown. Salamander and froglet AEC formations have been suggested to be a nerve-dependent process (Suzuki et al., 2005; Satoh et al., 2008; Stocum, 2019), while nerves are not required for the Xenopus tadpole limb regeneration (
Xenopus laevis is the only commonly used laboratory animal with a well-established AER and AEC (Stopper and Wagner, 2005; Purushothaman et al., 2019). Using single-cell transcriptomics, we revealed individual cell types defining these tissues and compared their similarities at the single-cell transcriptome level (
Re-Assessing Morphological and Gene Expression Markers of the Apical Epithelial Cap
The salamander WE and the AEC were historically distinguished mainly based on their tissue morphology. Notably, the thickened epithelium was used to detect the AEC. Initial attempts aimed at identifying the AEC used antigen stainings (Tassava et al., 1986, 1993;
Marker genes distinguishing the AEC from the WE have been revealed. Particularly, fgf8 has been associated with the salamander limb AEC, but not the WE (
Fgf8 expressing basal epidermal cells in the AEC have been characterized during X. laevis limb regeneration (
Single-Cell Studies Reveal Cell Types Defining Limb-Specific Apical Epithelial Cap
With recent advancements in cell-centric approaches, we now have an opportunity to characterize specific cell types within the WE and the AEC tissues. Although definitions of a cell type or its transient forms as a cell state have been debated (Trapnell, 2015;
From the initial studies in salamanders, it is well established that the salamander WE will form via the migration of remaining stump epidermal cells (
Several axolotl limb regeneration studies incorporated scRNA-Seq (
Single-cell investigation on Xenopus limb regeneration, focusing on the AEC, confirmed that the AEC is a heterogeneous tissue and that only the basal layers contain fgf8 + cells (
Divergent Molecular, Cellular, and Tissue-Level Properties of Wound Epidermis and Apical Epithelial Cap in Other Regeneration Models
The WE and the AEC have been long sought and investigated in other regeneration models. Currently, the epidermal population covering the amputation plane in different regeneration models is also named the WE or the AEC. However, due to different tissue formation kinetics in other species and regeneration paradigms, differences between two tissues are even less precisely defined than those in amphibians.
Recent research with regeneration models that show both regeneration-competency and -incompetency further stresses the need for re-evaluation to distinguish the WE and the AEC terminologies. In heavily studied appendage regeneration competent vertebrate species, the amputation plane is sealed with a simple epithelium that fits the WE definition. However, this ability can be observed even in regeneration-competent species that are exhibiting regeneration-incompetency. For example, limb amputation in regeneration-incompetent Xenopus tadpoles can result in simple wound healing and can still display the WE formation (
FIGURE 2

The wound epidermis (WE) formation is not associated with regenerative success in diverse appendage regeneration models. (A, B)Xenopus laevis tadpoles lose their limb and tail regeneration abilities at specific developmental stages. Upon amputations, these animals cannot form an AEC (dark pink) at these stages but can still form the WE (light blue;
Mice can regrow their distal digit tip throughout their life, and distal digit tip regeneration undergoes the WE formation, although this process takes much longer than amphibian limb and tail regeneration scenarios. By contrast, amputating more proximal digit tips results in no regeneration, yet an epithelium, which can be regarded as the WE, still covers the amputation plane (
Gene expression profiles were tested to identify the WE and the AEC across species and regeneration paradigms, and some common gene expressions were found across certain species. For example, lef1, tp63, and msx family were expressed in the amputation plane during Xenopus tail and limb (
Cross-regeneration model comparisons indicate that the AEC may not be a shared tissue type for appendage regeneration, and cell types defining the AEC may show differences. Indeed, by using bulk-RNA sequencing, Xenopus tail and limb AEC tissues are shown to exhibit gene expression differences (Okumura et al., 2019). Moving beyond tissue to the single-cell level, we identified that Xenopus tail regeneration uses an epithelial population resembling transcriptional programs similar to the AER (
Conclusion
The critical functions of the AEC and its requirement for blastema formation and limb regeneration are widely accepted. Since their initial discovery, definitions of the WE and the AEC and their detection methodologies have not reached consensus across species and regeneration models. Based on current literature and initial single-cell characterizations, basal epidermal populations that migrate and seal the amputation area could be considered the WE. These cells may exhibit many similarities among all regeneration-competent species. However, the presence of the WE does not correlate with regeneration success, and their cellular identities remain elusive. Meanwhile, the presence of AEC on the amputation plane is positively correlated with regenerative success, and basal epidermal cells that form after the WE and exhibit high signaling center properties could be a more suitable description for cell types defining the AEC. Nevertheless, cell types and critical genes defining the AEC do not show conservation across species and regeneration models. For example, ROCs relocalize to form the Xenopus tail AEC, meanwhile, AER cell formation for the Xenopus limb AEC involves a differentiation event. On this basis, extra caution is required while using these terminologies and searching for their counterparts in different regeneration models. There could be diverse cell types defining the AEC tissue (as exemplified by AER cells for Xenopus limbs and ROCs for Xenopus tails). Identifying if appendage regeneration can be mediated without such populations may reveal new mechanisms for appendage regeneration.
Beyond elucidating cell fates represented in the WE or the AEC tissues, the behavioral properties of such populations and the molecular mechanisms enabling their formation on the amputation plane remain largely unknown. For example, mechanical damage has been implicated in creating Erk activation that temporarily spreads from the damaged region to the surrounding area, forming wave patterns, influencing epithelial cell migration and survival (
Mammalian skin wound healing has been studied to uncover ways for scar-free healing and can provide perspectives for epithelial behaviors during limb regeneration. As an example, skin wound injuries have been shown to be covered with excessive proliferation of a select number of stem cell clones, rather than using mass migratory behaviors or cell-fate switches (
Single-cell methods have been providing new insights on cell types mediating regeneration and divergent features of the WE and the AEC. Further cross-species systematic investigations on these tissues, cell types, and their dynamic behaviors will reveal evolutionarily conserved genetic programs of epithelial signaling centers and their association with appendage growth and regeneration.
Publisher’s Note
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Statements
Author contributions
CA wrote the manuscript.
Funding
CA is supported by the EPFL School of Life Sciences and the Fondation Gabriella Giorgi-Cavaglieri.
Acknowledgments
I gratefully acknowledge Marian Ros and Miriam Lisci for their critical reading of the manuscript.
Conflict of interest
The author declares that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
References
1
AkimenkoM. A.JohnsonS. L.WesterfieldM.EkkerM. (1995). Differential induction of four msx homeobox genes during fin development and regeneration in zebrafish.Development121347–357. 10.1242/dev.121.2.347
2
AokiK.KondoY.NaokiH.HiratsukaT.ItohR. E.MatsudaM. (2017). Propagating wave of ERK activation orients collective cell migration.Dev. Cell43305–317.e5. 10.1016/j.devcel.2017.10.016
3
AragonaM.DekoninckS.RulandsS.LenglezS.MascréG.SimonsB. D.et al (2017). Defining stem cell dynamics and migration during wound healing in mouse skin epidermis.Nat. Commun.8:14684. 10.1038/ncomms14684
4
ArendtD.MusserJ. M.BakerC. V. H.BergmanA.CepkoC.ErwinD. H.et al (2016). The origin and evolution of cell types.Nat. Rev. Genet.17744–757.
5
AztekinC. (2021). Appendage regeneration is context dependent at the cellular level.Open Biol.11:210126. 10.1098/rsob.210126
6
AztekinC.HiscockT. W.ButlerR.AndinoF. D. J.RobertJ.GurdonJ. B.et al (2020). The myeloid lineage is required for the emergence of a regeneration-permissive environment following Xenopus tail amputation.Development147:dev185496. 10.1242/dev.185496
7
AztekinC.HiscockT. W.GurdonJ.JullienJ.MarioniJ.SimonsB. D. (2021). Secreted inhibitors drive the loss of regeneration competence in Xenopus limbs.Development148:dev199158. 10.1242/dev.199158
8
AztekinC.HiscockT. W.MarioniJ. C.GurdonJ. B.SimonsB. D.JullienJ. (2019). Identification of a regeneration-organizing cell in the Xenopus tail.Science364653–658. 10.1126/science.aav9996
9
BeaucheminM.SavardP. (1992). Two distal-less related homeobox-containing genes expressed in regeneration blastemas of the newt.Dev. Biol.15455–65. 10.1016/0012-1606(92)90047-k
10
BeckC. W.ChristenB.SlackJ. M. W. (2003). Molecular pathways needed for regeneration of spinal cord and muscle in a vertebrate.Dev. Cell5429–439. 10.1016/s1534-5807(03)00233-8
11
BeckC. W.ChristenB.BarkerD.SlackJ. M. W. (2006). Temporal requirement for bone morphogenetic proteins in regeneration of the tail and limb of Xenopus tadpoles.Mech. Dev.123674–688. 10.1016/j.mod.2006.07.001
12
BeckC. W.Izpisúa BelmonteJ. C.ChristenB. (2009). Beyond early development: xenopus as an emerging model for the study of regenerative mechanisms.Dev. Dyn.2381226–1248. 10.1002/dvdy.21890
13
BlanpainC.FuchsE. (2006). Epidermal stem cells of the skin.Annu. Rev. Cell Dev. Biol.22339–373.
14
BoillyB.CavanaughK. P.ThomasD.HondermarckH.BryantS. V.BradshawR. A. (1991). Acidic fibroblast growth factor is present in regenerating limb blastemas of axolotls and binds specifically to blastema tissues.Dev. Biol.145302–310. 10.1016/0012-1606(91)90128-p
15
Bolaños-CastroL. A.WaltersH. E.VázquezR. O. G.YunM. H. (2021). Immunity in salamander regeneration: where are we standing and where are we headed?Dev. Dyn.250753–767. 10.1002/dvdy.251
16
BryantD. M.SousounisK.FarkasJ. E.BryantS.ThaoN.GuzikowskiA. R.et al (2017a). Repeated removal of developing limb buds permanently reduces appendage size in the highly-regenerative axolotl.Dev. Biol.4241–9. 10.1016/j.ydbio.2017.02.013
17
BryantD. M.SousounisK.Payzin-DogruD.BryantS.SandovalA. G. W.Martinez FernandezJ.et al (2017b). Identification of regenerative roadblocks via repeat deployment of limb regeneration in axolotls.NPJ Regen. Med.2:30. 10.1038/s41536-017-0034-z
18
CampbellL. J.CrewsC. M. (2008). Wound epidermis formation and function in urodele amphibian limb regeneration.Cell Mol. Life Sci.6573–79. 10.1007/s00018-007-7433-z
19
CannataS. M.BernardiniS.Di BerardinoR.FiloniS. (1992). Nerve-independent DNA synthesis and mitosis in regenerating hindlimbs of larval Xenopus laevis.Roux’s Arch. Dev. Biol.201128–133. 10.1007/BF00188710
20
CarlsonM. R.BryantS. V.GardinerD. M. (1998). Expression of Msx-2 during development, regeneration, and wound healing in axolotl limbs.J. Exp. Zool.282715–723. 10.1002/(sici)1097-010x(19981215)282:6<715::aid-jez7>3.0.co;2-f
21
CastillaM.TassavaR. A. (1992). Extraction of the WE3 antigen and comparison of reactivities of mAbs WE3 and WE4 in adult newt regenerate epithelium and body tissues.Monogr. Dev. Biol.23116–130.
22
ChoiH. M. T.SchwarzkopfM.FornaceM. E.AcharyaA.ArtavanisG.StegmaierJ.et al (2018). Third-generation in situ hybridization chain reaction: multiplexed, quantitative, sensitive, versatile, robust.Development145:dev165753. 10.1242/dev.165753
23
ChristenB.SlackJ. M. W. (1997). FGF-8Is associated with anteroposterior patterning and limb regeneration inXenopus.Dev. Biol.192455–466. 10.1006/dbio.1997.8732
24
ChristensenR. N.TassavaR. A. (2000). Apical epithelial cap morphology and fibronectin gene expression in regenerating axolotl limbs.Dev. Dyn.217216–224. 10.1002/(SICI)1097-0177(200002)217:2<216::AID-DVDY8>3.0.CO;2-8
25
ChristensenR. N.WeinsteinM.TassavaR. A. (2002). Expression of fibroblast growth factors 4, 8, and 10 in limbs, flanks, and blastemas of Ambystoma.Dev. Dyn.223193–203. 10.1002/dvdy.10049
26
CookA. B.SeifertA. W. (2016). Beryllium nitrate inhibits fibroblast migration to disrupt epimorphic regeneration.Development1433491–3505. 10.1242/dev.134882
27
DawsonL. A.SchanesP. P.MarreroL.JordanK.BrunauerR.ZimmelK. N.et al (2021). Proximal digit tip amputation initiates simultaneous blastema and transient fibrosis formation and results in partial regeneration.Wound Repair Regen.29196–205. 10.1111/wrr.12856
28
Del Rio-TsonisK.WashabaughC. H.TsonisP. A. (1992). The mutant axolotl short toes exhibits impaired limb regeneration and abnormal basement membrane formation.Proc. Natl. Acad. Sci. USA895502–5506. 10.1073/pnas.89.12.5502
29
DentJ. N. (1962). Limb regeneration in larvae and metamorphosing individuals of the South African clawed toad.J. Morphol.11061–77. 10.1002/jmor.1051100105
30
DolanC. P.DawsonL. A.MuneokaK. (2018). Digit tip regeneration: merging regeneration biology with regenerative medicine.Stem Cells Transl. Med.7262–270. 10.1002/sctm.17-0236
31
EndoT.TamuraK.IdeH. (2000). Analysis of gene expressions during xenopus forelimb regeneration.Dev. Biol.220296–306.
32
Fernandez-TeranM.RosM. A. (2008). The apical ectodermal ridge: morphological aspects and signaling pathways.Int. J. Dev. Biol.52857–871. 10.1387/ijdb.072416mf
33
Francis-WestP. H.AntoniL.AnakweK. (2003). Regulation of myogenic differentiation in the developing limb bud.J. Anat.20269–81.
34
GagliardiP. A.DobrzyńskiM.JacquesM.-A.DessaugesC.EnderP.BlumY.et al (2021). Collective ERK/Akt activity waves orchestrate epithelial homeostasis by driving apoptosis-induced survival.Dev. Cell561712–1726.e6. 10.1016/j.devcel.2021.05.007
35
GerberT.MurawalaP.KnappD.MasselinkW.SchuezM.HermannS.et al (2018). Single-cell analysis uncovers convergence of cell identities during axolotl limb regeneration.Science362:eaaq0681. 10.1126/science.aaq0681
36
GhoshS.RoyS.SéguinC.BryantS. V.GardinerD. M. (2008). Analysis of the expression and function of Wnt-5a and Wnt-5b in developing and regenerating axolotl (Ambystoma mexicanum) limbs.Dev. Growth Differ.50289–297. 10.1111/j.1440-169X.2008.01000.x
37
GodwinJ. W.PintoA. R.RosenthalN. A. (2013). Macrophages are required for adult salamander limb regeneration.Proc. Natl. Acad. Sci. U.S.A.1109415–9420.
38
GoldhamerD. J.TomlinsonB. L.TassavaR. A. (1989). A developmentally regulated wound epithelial antigen of the newt limb regenerate is also present in a variety of secretory/transport cell types.Dev. Biol.135392–404. 10.1016/0012-1606(89)90188-7
39
GossR. J. (1956). Regenerative inhibition following limb amputation and immediate insertion into the body cavity.Anat. Rec.12615–27. 10.1002/ar.1091260103
40
Gumpel-PinotM.EdeD. A.FlintO. P. (1984). Myogenic cell movement in the developing avian limb bud in presence and absence of the apical ectodermal ridge (AER).Development80105–125.
41
HanM.-J.AnJ.-Y.KimW.-S. (2001). Expression patterns of Fgf-8 during development and limb regeneration of the axolotl.Dev. Dyn.22040–48. 10.1002/1097-0177(2000)9999:9999<::AID-DVDY1085>3.0.CO;2-8
42
HayE. D.FischmanD. A. (1961). Origin of the blastema in regenerating limbs of the newt Triturus viridescens: an autoradiographic study using tritiated thymidine to follow cell proliferation and migration.Dev. Biol.326–59. 10.1016/0012-1606(61)90009-4
43
HinoN.RossettiL.Marín-LlauradóA.AokiK.TrepatX.MatsudaM.et al (2020). ERK-mediated mechanochemical waves direct collective cell polarization.Dev. Cell53646–660.e8. 10.1016/j.devcel.2020.05.011
44
JovenA.ElewaA.SimonA. (2019). Model systems for regeneration: salamanders.Development146:dev167700.
45
JulierZ.ParkA. J.BriquezP. S.MartinoM. M. (2017). Promoting tissue regeneration by modulating the immune system.Acta Biomater.5313–28.
46
KawakamiY.CapdevilaJ.BüscherD.ItohT.EstebanC. R.BelmonteJ. C. I. (2001). WNT signals control FGF-dependent limb initiation and AER induction in the chick embryo.Cell104891–900. 10.1016/s0092-8674(01)00285-9
47
KawakamiY.Rodriguez EstebanC.RayaM.KawakamiH.MartíM.DubovaI.et al (2006). Wnt/β-catenin signaling regulates vertebrate limb regeneration.Genes Dev.203232–3237. 10.1002/1097-0177(2000)9999:9999<::aid-dvdy1045>3.3.co;2-3
48
KelleyR. O.FallonJ. F. (1976). Ultrastructural analysis of the apical ectodermal ridge during vertebrate limb morphogenesis: i. the human forelimb with special reference to gap junctions.Dev. Biol.51241–256. 10.1016/0012-1606(76)90141-x
49
KishiJ. Y.LapanS. W.BeliveauB. J.WestE. R.ZhuA.SasakiH. M.et al (2019). SABER amplifies FISH: enhanced multiplexed imaging of RNA and DNA in cells and tissues.Nat. Methods16533–544. 10.1038/s41592-019-0404-0
50
KnappD.SchulzH.RasconC. A.VolkmerM.ScholzJ.NacuE.et al (2013). Comparative transcriptional profiling of the axolotl limb identifies a tripartite regeneration-specific gene program.PLoS One8:e61352. 10.1371/journal.pone.0061352
51
LashJ. W. (1955). Studies on wound closure in urodeles.J. Exp. Zool.12813–28. 10.1002/ar.b.20082
52
LehoczkyJ. A.RobertB.TabinC. J. (2011). Mouse digit tip regeneration is mediated by fate-restricted progenitor cells.Proc. Natl. Acad. Sci. U.S.A.10820609–20614. 10.1073/pnas.1118017108
53
LeighN. D.DunlapG. S.JohnsonK.MarianoR.OshiroR.WongA. Y.et al (2018). Transcriptomic landscape of the blastema niche in regenerating adult axolotl limbs at single-cell resolution.Nat. Commun.9:5153. 10.1038/s41467-018-07604-0
54
LiC.YangF.LiG.GaoX.XingX.WeiH.et al (2007). Antler regeneration: a dependent process of stem tissue primed via interaction with its enveloping skin.J. Exp. Zool. Part A Ecol. Genet. Physiol.307A95–105. 10.1002/jez.a.352
55
LiC.ZhaoH.LiuZ.McMahonC. (2014). Deer antler – a novel model for studying organ regeneration in mammals.Int. J. Biochem. Cell Biol.56111–122. 10.1016/j.biocel.2014.07.007
56
LiH.WeiX.ZhouL.ZhangW.WangC.GuoY.et al (2020). Dynamic cell transition and immune response landscapes of axolotl limb regeneration revealed by single-cell analysis.Protein Cell1257–66. 10.1007/s13238-020-00763-1
57
LinG.SlackJ. M. W. (2008). Requirement for Wnt and FGF signaling in Xenopus tadpole tail regeneration.Dev. Biol.316323–335.
58
MarianiF. V.AhnC. P.MartinG. R. (2008). Genetic evidence that FGFs have an instructive role in limb proximal–distal patterning.Nature453401–405. 10.1038/nature06876
59
MateusR.PereiraT.SousaS.LimaJ. E.PascoalS.SaúdeL.et al (2012). In vivo cell and tissue dynamics underlying zebrafish fin fold regeneration.PLoS One7:e51766. 10.1371/journal.pone.0051766
60
McKinleyK. L.Castillo-AzofeifaD.KleinO. D. (2020). Tools and concepts for interrogating and defining cellular identity.Cell Stem Cell26632–656. 10.1016/j.stem.2020.03.015
61
McQueenC.TowersM. (2020). Establishing the pattern of the vertebrate limb.Development147:dev177956.
62
McQueeneyK.SouferR.DealyC. N. (2002). β-Catenin-dependent Wnt signaling in apical ectodermal ridge induction and FGF8 expression in normal and limbless mutant chick limbs.Dev. Growth Differ.44315–325. 10.1046/j.1440-169x.2002.00647.x
63
MescherA. L. (1976). Effects on adult newt limb regeneration of partial and complete skin flaps over the amputation surface.J. Exp. Zool.195117–127. 10.1002/jez.1401950111
64
MescherA. L.NeffA. W.KingM. W. (2013). Changes in the inflammatory response to injury and its resolution during the loss of regenerative capacity in developing xenopus limbs.PLoS One8:e80477. 10.1371/journal.pone.0080477
65
MonaghanJ. R.AthippozhyA.SeifertA. W.PuttaS.StrombergA. J.MadenM.et al (2012). Gene expression patterns specific to the regenerating limb of the Mexican axolotl.Biol. Open1937–948. 10.1242/bio.20121594
66
MonaghanJ. R.StierA. C.MichonneauF.SmithM. D.PaschB.MadenM.et al (2014). Experimentally induced metamorphosis in axolotls reduces regenerative rate and fidelity.Regeneration12–14. 10.1002/reg2.8
67
MoriyasuM.MakanaeA.SatohA. (2012). Spatiotemporal regulation of keratin 5 and 17 in the axolotl limb.Dev. Dyn.2411616–1624. 10.1002/dvdy.23839
68
MorosowJ. (1938). The inhibition and restoration of the regeneration process of the extremities in the axolotl.C. R. Acad. Sci. URSS20207–210.
69
MullenL. M.BryantS. V.TorokM. A.BlumbergB.GardinerD. M. (1996). Nerve dependency of regeneration: the role of Distal-less and FGF signaling in amphibian limb regeneration.Development1223487–3497. 10.1242/dev.122.11.3487
70
NacuE.GrombergE.OliveiraC. R.DrechselD.TanakaE. M. (2016). FGF8 and SHH substitute for anterior–posterior tissue interactions to induce limb regeneration.Nature533407–410. 10.1038/nature17972
71
NakamuraH.YasudaM. (1979). An electron microscopic study of periderm cell development in mouse limb buds.Anat. Embryol.157121–132. 10.1007/bf00305153
72
NeufeldD. A.DayF. A.SettlesH. E. (1996). Stabilizing role of the basement membrane and dermal fibers during newt limb regeneration.Anat. Rec.245122–127. 10.1002/(SICI)1097-0185(199605)245:1<122::AID-AR17>3.0.CO;2-R
73
OhuchiH.NakagawaT.ItohN.NojiS. (1999). FGF10 can induce Fgf8 expression concomitantly with En1 and R-fng expression in chick limb ectoderm, independent of its dorsoventral specification.Dev. Growth Differ.41665–673. 10.1046/j.1440-169x.1999.00466.x
74
OhuchiH.NakagawaT.YamamotoA.AragaA.OhataT.IshimaruY.et al (1997). The mesenchymal factor, FGF10, initiates and maintains the outgrowth of the chick limb bud through interaction with FGF8, an apical ectodermal factor.Development1242235–2244. 10.1242/dev.124.11.2235
75
OkumuraA.HayashiT.EbisawaM.YoshimuraM.SasagawaY.NikaidoI.et al (2019). Cell type-specific transcriptome analysis unveils secreted signaling molecule genes expressed in apical epithelial cap during appendage regeneration.Dev. Growth Differ.61447–456. 10.1111/dgd.12635
76
PearlE. J.BarkerD.DayR. C.BeckC. W. (2008). Identification of genes associated with regenerative success of Xenopus laevis hindlimbs.BMC Dev. Biol.8:66. 10.1186/1471-213X-8-66
77
PfefferliC.JaźwińskaA. (2015). The art of fin regeneration in zebrafish.Regeneration272–83. 10.1002/reg2.33
78
PickeringJ.RichC. A.StaintonH.AceitunoC.ChinnaiyaK.Saiz-LopezP.et al (2018). An intrinsic cell cycle timer terminates limb bud outgrowth.ELife7:e37429. 10.7554/eLife.37429
79
PossK. D.ShenJ.KeatingM. T. (2000). Induction of lef1 during zebrafish fin regeneration.Dev. Dyn.219282–286.
80
PurushothamanS.ElewaA.SeifertA. W. (2019). Fgf-signaling is compartmentalized within the mesenchyme and controls proliferation during salamander limb development.ELife8:e48507.
81
QinT.FanC.-M.WangT.-Z.SunH.ZhaoY.-Y.YanR.-J.et al (2020). Single-cell RNA-seq reveals novel mitochondria-related musculoskeletal cell populations during adult axolotl limb regeneration process.Cell Death Differ.28111–1125. 10.1038/s41418-020-00640-8
82
RepeshL. A.OberprillerJ. C. (1978). Scanning electron microscopy of epidermal cell migration in wound healing during limb regeneration in the adult newt, Notophthalmus viridescens.Am. J. Anat.151539–555.
83
RodgersA. K.SmithJ. J.VossS. R. (2020). Identification of immune and non-immune cells in regenerating axolotl limbs by single-cell sequencing.Exp. Cell Res.394:112149. 10.1016/j.yexcr.2020.112149
84
SatohA.GrahamG. M. C.BryantS. V.GardinerD. M. (2008). Neurotrophic regulation of epidermal dedifferentiation during wound healing and limb regeneration in the axolotl (Ambystoma mexicanum).Dev. Biol.319321–335. 10.1016/j.ydbio.2008.04.030
85
SatohA.IdeH.TamuraK. (2005). Muscle formation in regenerating Xenopus froglet limb.Dev. Dyn.233337–346. 10.1002/dvdy.20349
86
SatohA.MitogawaK.SaitoN.SuzukiM.SuzukiK. T.OchiH.et al (2017). Reactivation of larval keratin gene (krt62.L) in blastema epithelium during Xenopus froglet limb regeneration.Dev. Biol.432265–272. 10.1016/j.ydbio.2017.10.015
87
SaundersJ. W. (1948). The proximo-distal sequence of origin of the parts of the chick wing and the role of the ectoderm.J. Exp. Zool.108363–403. 10.1002/jez.1401080304
88
ScherzP. J.HarfeB. D.McMahonA. P.TabinC. J. (2004). The limb bud Shh-Fgf feedback loop is terminated by expansion of former ZPA cells.Science305396–399. 10.1126/science.1096966
89
SchreiberA. M.BrownD. D. (2003). Tadpole skin dies autonomously in response to thyroid hormone at metamorphosis.Proc. Natl. Acad. Sci. U.S.A.1001769–1774. 10.1073/pnas.252774999
90
ScottC. A.CarneyT. J.AmayaE. (2021). Aerobic glycolysis is important for zebrafish larval wound closure and tail regeneration.BioRxiv Available Online at: https://doi.org/10.1101/2021.04.23.441208(accessed September 2, 2021).
91
SeifertA. W.CookA. B.ShawD. (2019). Inhibiting fibroblast aggregation in skin wounds unlocks developmental pathway to regeneration.Dev. Biol.45560–72. 10.1016/j.ydbio.2019.07.001
92
SeifertA. W.MonaghanJ. R.VossS. R.MadenM. (2012). Skin regeneration in adult axolotls: a blueprint for scar-free healing in vertebrates.PLoS One7:e32875. 10.1371/journal.pone.0032875
93
ShibataE.YokotaY.HoritaN.KudoA.AbeG.KawakamiK.et al (2016). Fgf signalling controls diverse aspects of fin regeneration.Development1432920–2929. 10.1242/dev.140699
94
Shimizu-NishikawaK.TazawaI.UchiyamaK.YoshizatoK. (1999). Expression of helix-loop-helix type negative regulators of differentiation during limb regeneration in urodeles and anurans.Dev. Growth Differ.41731–743. 10.1046/j.1440-169x.1999.00477.x
95
ShimokawaT.YasutakaS.KominamiR.ShinoharaH. (2012). Wound epithelium function in axolotl limb regeneration.Okajimas Folia Anat. Jpn.8975–81. 10.2535/ofaj.89.75
96
SimkinJ.SammarcoM. C.DawsonL. A.TuckerC.TaylorL. J.Van MeterK.et al (2015). Epidermal closure regulates histolysis during mammalian (Mus) digit regeneration.Regeneration2106–119. 10.1002/reg2.34
97
StocumD. L. (2019). Nerves and proliferation of progenitor cells in limb regeneration.Dev. Neurobiol.79468–478. 10.1002/dneu.22643
98
StopperG. F.WagnerG. P. (2005). Of chicken wings and frog legs: a smorgasbord of evolutionary variation in mechanisms of tetrapod limb development.Dev. Biol.28821–39.
99
StorerM.MasA.Robert-MorenoA.PecoraroM.OrtellsM. C.Di GiacomoV.et al (2013). Senescence is a developmental mechanism that contributes to embryonic growth and patterning.Cell1551119–1130. 10.1016/j.cell.2013.10.041
100
SugiuraT.WangH.BarsacchiR.SimonA.TanakaE. M. (2016). MARCKS-like protein is an initiating molecule in axolotl appendage regeneration.Nature531237–240. 10.1038/nature16974
101
SuzukiM.SatohA.IdeH.TamuraK. (2005). Nerve-dependent and -independent events in blastema formation during Xenopus froglet limb regeneration.Dev. Biol.286361–375. 10.1016/j.ydbio.2005.08.021
102
TankP. W.CarlsonB. M.ConnellyT. G. (1977). A scanning electron microscopic comparison of the development of embryonic and regenerating limbs in the axolotl.J. Exp. Zool.201417–429. 10.1002/jez.1402010308
103
TassavaR. A.ActonR. D. (1989). Distribution of a wound epithelium antigen in embryonic tissues of newts and salamanders.Ohio J. Sci.8912–15.
104
TassavaR. A.GarlingD. J. (1979). Regenerative responses in larval axolotl limbs with skin grafts over the amputation surface.J. Exp. Zool.20897–109. 10.1002/jez.1402080111
105
TassavaR. A.LoydR. M. (1977). Injury requirement for initiation of regeneration of newt limbs which have whole skin grafts.Nature26849–50. 10.1038/268049a0
106
TassavaR. A.MescherA. L. (1975). The roles of injury, nerves, and the wound epidermis during the initiation of amphibian limb regeneration.Differentiation423–24. 10.1111/j.1432-0436.1975.tb01439.x
107
TassavaR. A.OlsenC. L. (1982). Higher vertebrates do not regenerate digits and legs because the wound epidermis is not functional: a hypothesis.Differentiation22151–155. 10.1111/j.1432-0436.1982.tb01242.x
108
TassavaR. A.CastillaM.ArsantoJ. P.ThouvenyY. (1993). The wound epithelium of regenerating limbs of Pleurodeles waltl and Notophthalmus viridescens: studies with mAbs WE3 and WE4, phalloidin, and DNase 1.J. Exp. Zool.267180–187. 10.1002/jez.1402670211
109
TassavaR. A.Johnson-WintB.GrossJ. (1986). Regenerate epithelium and skin glands of the adult newt react to the same monoclonal antibody.J. Exp. Zool.239229–240. 10.1002/jez.1402390210
110
ThorntonC. S. (1957). The effect of apical cap removal on limb regeneration in Amblystoma larvae.J. Exp. Zool.134357–381. 10.1002/jez.1401340209
111
ThorntonC. S. (1958). The inhibition of limb regeneration in urodele larvae by localized irradiation with ultraviolet light.J. Exp. Zool.137153–179. 10.1002/jez.1401370108
112
ThorntonC. S. (1960). Influence of an eccentric epidermal cap on limb regeneration in Amblystoma larvae.Dev. Biol.2551–569. 10.1016/0012-1606(60)90054-3
113
ThorntonC. S.ThorntonM. T. (1965). The regeneration of accessory limb parts following epidermal cap transplantation in urodeles.Experientia21146–148. 10.1007/BF02141984
114
TrapnellC. (2015). Defining cell types and states with single-cell genomics.Genome Res.251491–1498. 10.1101/gr.190595.115
115
TsaiS. L.Baselga-GarrigaC.MeltonD. A. (2019). Blastemal progenitors modulate immune signaling during early limb regeneration.Development146:dev169128. 10.1242/dev.169128
116
TsaiS. L.Baselga-GarrigaC.MeltonD. A. (2020). Midkine is a dual regulator of wound epidermis development and inflammation during the initiation of limb regeneration.ELife9:e50765. 10.7554/eLife.50765
117
TschumiP. A. (1957). The growth of the hindlimb bud of Xenopus laevis and its dependence upon the epidermis.J. Anat.91(Pt 2)149–173.
118
VerheydenJ. M.SunX. (2008). An Fgf/gremlin inhibitory feedback loop triggers termination of limb bud outgrowth.Nature454638–641. 10.1038/nature07085
119
VinarskyV.AtkinsonD. L.StevensonT. J.KeatingM. T.OdelbergS. J. (2005). Normal newt limb regeneration requires matrix metalloproteinase function.Dev. Biol.27986–98. 10.1016/j.ydbio.2004.12.003
120
VincentE.VilliardE.SaderF.DhakalS.KwokB. H.RoyS. (2020). BMP signaling is essential for sustaining proximo-distal progression in regenerating axolotl limbs.Development147:dev170829. 10.1242/dev.170829
121
VituloN.Dalla ValleL.SkoboT.ValleG.AlibardiL. (2017). Transcriptome analysis of the regenerating tail vs. the scarring limb in lizard reveals pathways leading to successful vs. unsuccessful organ regeneration in amniotes: tail and limb transcriptome in regenerating lizard.Dev. Dyn.246116–134. 10.1002/dvdy.24474
122
WangY.-H.BeckC. W. (2014). Distal expression of sprouty (spry) genes during Xenopus laevis limb development and regeneration.Gene Expr. Patterns1561–66. 10.1016/j.gep.2014.04.004
123
WatanabeA.OhsugiK.IdeH. (1993). Formation of distal structures from stumps of chick wing buds at stages 24-25 following the grafting of quail tissue from X-irradiated distal limb buds.J. Exp. Zool.267447–453. 10.1002/jez.1402670410
124
WeiY.YangE. V.KlattK. P.TassavaR. A. (1995). Monoclonal antibody MT2 identifies the urodele alpha 1 chain of type XII collagen, a developmentally regulated extracellular matrix protein in regenerating newt limbs.Dev. Biol.168503–513. 10.1006/dbio.1995.1098
125
WhitedJ. L.LehoczkyJ. A.AustinC. A.TabinC. J. (2011). Dynamic expression of two thrombospondins during axolotl limb regeneration.Dev. Dyn.2401249–1258. 10.1002/dvdy.22548
126
YangE. V.GardinerD. M.CarlsonM. R.NugasC. A.BryantS. V. (1999). Expression of Mmp-9 and related matrix metalloproteinase genes during axolotl limb regeneration.Dev. Dyn.2162–9. 10.1002/(SICI)1097-0177(199909)216:1<2::AID-DVDY2>3.0.CO;2-P
127
YokoyamaH.IdeH.TamuraK. (2001). FGF-10 stimulates limb regeneration ability in Xenopus laevis.Dev. Biol.23372–79. 10.1006/dbio.2001.0180
128
Yonei-TamuraS.EndoT.YajimaH.OhuchiH.IdeH.TamuraK. (1999). FGF7 and FGF10 directly induce the apical ectodermal ridge in chick embryos.Dev. Biol.211133–143. 10.1006/dbio.1999.9290
129
YoshidaK.KawakamiK.AbeG.TamuraK. (2020). Zebrafish can regenerate endoskeleton in larval pectoral fin but the regenerative ability declines.Dev. Biol.463110–123. 10.1016/j.ydbio.2020.04.010
Summary
Keywords
wound epidermis, specialized wound epidermis, AEC, single-cell transcriptomics, appendage regeneration, limb regeneration
Citation
Aztekin C (2021) Tissues and Cell Types of Appendage Regeneration: A Detailed Look at the Wound Epidermis and Its Specialized Forms. Front. Physiol. 12:771040. doi: 10.3389/fphys.2021.771040
Received
05 September 2021
Accepted
25 October 2021
Published
23 November 2021
Volume
12 - 2021
Edited by
Marcia Gaete, Pontificia Universidad Católica de Chile, Chile
Reviewed by
Michelle M. Collins, University of Saskatchewan, Canada; Gaynor Spencer, Brock University, Canada
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© 2021 Aztekin.
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*Correspondence: Can Aztekin, can.aztekin@epfl.ch
This article was submitted to Developmental Physiology, a section of the journal Frontiers in Physiology
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