Basal Cells in the Epidermis and Epidermal Differentiation.

Basal cells in the epidermis Basal keratinocytes Epidermal differentiation Epidermal stem cells Epidermis Hair follicle Hair follicle stem cells LGR5 LGR6 Lrig1 Stochastic epidermis Wnt signaling

Journal

Stem cell reviews and reports
ISSN: 2629-3277
Titre abrégé: Stem Cell Rev Rep
Pays: United States
ID NLM: 101752767

Informations de publication

Date de publication:
08 2022
Historique:
accepted: 27 08 2021
pubmed: 27 1 2022
medline: 24 8 2022
entrez: 26 1 2022
Statut: ppublish

Résumé

A definite identification of epidermal stem cells is not known and the mechanism of epidermal differentiation is not fully understood. Toward both of these quests, considerable information is available from the research on lineage tracing and clonal growth analysis in the basal layer of the epidermis, on the hair follicle and the interfollicular epidermal stem cells, and on Wnt signaling along with its role in the developmental patterning and cell differentiation. In this paper, literature on the aforementioned research has been collated and analyzed. In addition, models of the basal layer cellular composition and the epidermal differentiation have been presented. Graphical Abstract.

Identifiants

pubmed: 35080747
doi: 10.1007/s12015-021-10256-1
pii: 10.1007/s12015-021-10256-1
doi:

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

1883-1891

Informations de copyright

© 2021. The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.

Références

Ito, M., Liu, Y., Yang, Z., Nguyen, J., Liang, F., Morris, R. J., & Cotsarelis, G. (2005). Stem cells in the hair follicle bulge contribute to wound repair but not to homeostasis of the epidermis. Nature Medicine, 11, 1351–1354.
pubmed: 16288281 doi: 10.1038/nm1328
Dekoninck, S., & Blanpain, C. (2019). Stem cell dynamics, migration and plasticity during wound healing. Nature Cell Biology, 21, 18–24.
pubmed: 30602767 doi: 10.1038/s41556-018-0237-6
Page, M. E., Lombard, P., Ng, F., Gottgens, B., & Jensen, K. B. (2013). The epidermis comprises autonomous compartments maintained by distinct stem cell populations. Cell Stem Cell, 13, 471–482.
pubmed: 23954751 pmcid: 3793873 doi: 10.1016/j.stem.2013.07.010
Potten, C. S. (1981). Cell replacement in epidermis (keratopoiesis) via discrete units of proliferation. International Review of Cytology, 69, 271–318.
pubmed: 6163744 doi: 10.1016/S0074-7696(08)62326-8
Watt, F. M., & Jensen, K. B. (2009). Epidermal stem cell diversity and quiescence. EMBO Molecular Medicine, 1, 260–267.
pubmed: 20049729 pmcid: 2850061 doi: 10.1002/emmm.200900033
Jones, P. H., Harper, S., & Watt, F. M. (1995). Stem cell patterning and fate in human epidermis. Cell, 80, 83–93.
pubmed: 7813021 doi: 10.1016/0092-8674(95)90453-0
Watt, F. M. (1998). Epidermal stem cells: Markers, patterning and the control of stem cell fate. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 353, 831–837.
pubmed: 9684280 pmcid: 1692275 doi: 10.1098/rstb.1998.0247
Clayton, E., Doupe, D. P., Klein, A. M., Winton, D. J., Simons, B. D., et al. (2007). A single type of progenitor cell maintains normal epidermis. Nature, 446, 185–189.
pubmed: 17330052 doi: 10.1038/nature05574
Jones, P. H., & Watt, F. M. (1993). Separation of human epidermal stem cells from transit amplifying cells on the basis of differences in integrin function and expression. Cell, 73, 713–724.
pubmed: 8500165 doi: 10.1016/0092-8674(93)90251-K
Li, A., Simmons, P. J., & Kaur, P. (1998). Identification and isolation of candidate human keratinocyte stem cells based on cell surface phenotype. Proceedings of the National Academy of Sciences of the United States of America, 95, 3902–3907.
pubmed: 9520465 pmcid: 19935 doi: 10.1073/pnas.95.7.3902
Lowell, S., Jones, P., Le Roux, I., Dunne, J., & Watt, F. M. (2000). Stimulation of human epidermal differentiation by delta-notch signalling at the boundaries of stem-cell clusters. Current Biology, 10, 491–500.
pubmed: 10801437 doi: 10.1016/S0960-9822(00)00451-6
Wan, H., Stone, M. G., Simpson, C., Reynolds, L. E., Marshall, J. F., Hart, I. R., Hodivala-Dilke, K. M., & Eady, R. A. J. (2003). Desmosomal proteins, including desmoglein 3, serve as novel negative markers for epidermal stem cell-containing population of keratinocytes. Journal of Cell Science, 116, 4239–4248.
pubmed: 12953062 doi: 10.1242/jcs.00701
Fortunel, N. O., Hatzfeld, J. A., Rosemary, P. A., Ferraris, C., Monier, M. N., et al. (2003). Long-term expansion of human functional epidermal precursor cells: Promotion of extensive amplification by low TGF-beta1 concentrations. Journal of Cell Science, 116, 4043–4052.
pubmed: 12953061 doi: 10.1242/jcs.00702
Jensen, K. B., & Watt, F. M. (2006). Single-cell expression profiling of human epidermal stem and transit-amplifying cells: Lrig1 is a regulator of stem cell quiescence. Proceedings of the National Academy of Sciences of the United States of America, 103, 11958–11963.
pubmed: 16877544 pmcid: 1567680 doi: 10.1073/pnas.0601886103
Niemann, C., & Watt, F. M. (2002). Designer skin: Lineage commitment in postnatal epidermis. Trends in Cell Biology, 12, 185–192.
pubmed: 11978538 doi: 10.1016/S0962-8924(02)02263-8
Potten, C. S., & Loeffler, M. (1990). Stem cells: Attributes, cycles, spirals, pitfalls and uncertainties. Lessons for and from the crypt. Development, 110, 1001–1020.
pubmed: 2100251 doi: 10.1242/dev.110.4.1001
Wang, S., Drummond, M. L., Guerrero-Juarez, C. F., Tarapore, E., MacLean, A. L., et al. (2020). Single cell transcriptomics of human epidermis identifies basal stem cell transition states. Nature Communications, 11, 4239.
pubmed: 32843640 pmcid: 7447770 doi: 10.1038/s41467-020-18075-7
Haensel, D., Jin, S., Sun, P., Cinco, R., Dragan, M., et al. (2020). Defining epidermal basal cell states during skin homeostasis and wound healing using single-cell transcriptomics. Cell Reports, 30(3932–3947), e3936.
Jaks, V., Barker, N., Kasper, M., van Es, J. H., Snippert, H. J., Clevers, H., & Toftgård, R. (2008). Lgr5 marks cycling, yet long-lived, hair follicle stem cells. Nature Genetics, 40, 1291–1299.
pubmed: 18849992 doi: 10.1038/ng.239
Snippert, H. J., Haegebarth, A., Kasper, M., Jaks, V., van Es, J. H., Barker, N., van de Wetering, M., van den Born, M., Begthel, H., Vries, R. G., Stange, D. E., Toftgard, R., & Clevers, H. (2010). Lgr6 marks stem cells in the hair follicle that generate all cell lineages of the skin. Science, 327, 1385–1389.
pubmed: 20223988 doi: 10.1126/science.1184733
Lim, X., Tan, S. H., Koh, W. L., Chau, R. M., Yan, K. S., et al. (2013). Interfollicular epidermal stem cells self-renew via autocrine Wnt signaling. Science, 342, 1226–1230.
pubmed: 24311688 pmcid: 4081860 doi: 10.1126/science.1239730
Horsley, V., Aliprantis, A. O., Polak, L., Glimcher, L. H., & Fuchs, E. (2008). NFATc1 balances quiescence and proliferation of skin stem cells. Cell, 132, 299–310.
pubmed: 18243104 pmcid: 2546702 doi: 10.1016/j.cell.2007.11.047
Jensen, K. B., Collins, C. A., Nascimento, E., Tan, D. W., Frye, M., Itami, S., & Watt, F. M. (2009). Lrig1 expression defines a distinct multipotent stem cell population in mammalian epidermis. Cell Stem Cell, 4, 427–439.
pubmed: 19427292 pmcid: 2698066 doi: 10.1016/j.stem.2009.04.014
Fuchs, E. (2009). Finding one's niche in the skin. Cell Stem Cell, 4, 499–502.
pubmed: 19497277 pmcid: 2716125 doi: 10.1016/j.stem.2009.05.001
Wong, V. W., Stange, D. E., Page, M. E., Buczacki, S., Wabik, A., et al. (2012). Lrig1 controls intestinal stem-cell homeostasis by negative regulation of ErbB signalling. Nature Cell Biology, 14, 401–408.
pubmed: 22388892 pmcid: 3378643 doi: 10.1038/ncb2464
Arnold, I., & Watt, F. M. (2001). C-Myc activation in transgenic mouse epidermis results in mobilization of stem cells and differentiation of their progeny. Current Biology, 11, 558–568.
pubmed: 11369200 doi: 10.1016/S0960-9822(01)00154-3
Gandarillas, A., & Watt, F. M. (1997). C-Myc promotes differentiation of human epidermal stem cells. Genes & Development, 11, 2869–2882.
doi: 10.1101/gad.11.21.2869
Watt, F. M., Frye, M., & Benitah, S. A. (2008). MYC in mammalian epidermis: How can an oncogene stimulate differentiation? Nature Reviews. Cancer, 8, 234–242.
pubmed: 18292777 pmcid: 2494614 doi: 10.1038/nrc2328
Frye, M., Gardner, C., Li, E. R., Arnold, I., & Watt, F. M. (2003). Evidence that Myc activation depletes the epidermal stem cell compartment by modulating adhesive interactions with the local microenvironment. Development, 130, 2793–2808.
pubmed: 12736221 doi: 10.1242/dev.00462
Waikel, R. L., Kawachi, Y., Waikel, P. A., Wang, X. J., & Roop, D. R. (2001). Deregulated expression of c-Myc depletes epidermal stem cells. Nature Genetics, 28, 165–168.
pubmed: 11381265 doi: 10.1038/88889
Fullgrabe, A., Joost, S., Are, A., Jacob, T., Sivan, U., et al. (2015). Dynamics of Lgr6(+) progenitor cells in the hair follicle, sebaceous gland, and Interfollicular epidermis. Stem Cell Reports, 5, 843–855.
pubmed: 26607954 pmcid: 4649262 doi: 10.1016/j.stemcr.2015.09.013
Kretzschmar, K., Weber, C., Driskell, R. R., Calonje, E., & Watt, F. M. (2016). Compartmentalized epidermal activation of beta-catenin differentially affects lineage reprogramming and underlies tumor heterogeneity. Cell Reports, 14, 269–281.
pubmed: 26771241 doi: 10.1016/j.celrep.2015.12.041
Gunnarsson, A. P., Christensen, R., Li, J., & Jensen, U. B. (2016). Global gene expression and comparison between multiple populations in the mouse epidermis. Stem Cell Research, 17, 191–202.
pubmed: 27450539 doi: 10.1016/j.scr.2016.06.002
Liu, Y., Lyle, S., Yang, Z., & Cotsarelis, G. (2003). Keratin 15 promoter targets putative epithelial stem cells in the hair follicle bulge. The Journal of Investigative Dermatology, 121, 963–968.
pubmed: 14708593 doi: 10.1046/j.1523-1747.2003.12600.x
Trempus, C. S., Morris, R. J., Bortner, C. D., Cotsarelis, G., Faircloth, R. S., Reece, J. M., & Tennant, R. W. (2003). Enrichment for living murine keratinocytes from the hair follicle bulge with the cell surface marker CD34. The Journal of Investigative Dermatology, 120, 501–511.
pubmed: 12648211
Hsu, S. Y., Kudo, M., Chen, T., Nakabayashi, K., Bhalla, A., van der Spek, P. J., van Duin, M., & Hsueh, A. J. W. (2000). The three subfamilies of leucine-rich repeat-containing G protein-coupled receptors (LGR): Identification of LGR6 and LGR7 and the signaling mechanism for LGR7. Molecular Endocrinology, 14, 1257–1271.
pubmed: 10935549 doi: 10.1210/mend.14.8.0510
Horsley, V., O'Carroll, D., Tooze, R., Ohinata, Y., Saitou, M., Obukhanych, T., Nussenzweig, M., Tarakhovsky, A., & Fuchs, E. (2006). Blimp1 defines a progenitor population that governs cellular input to the sebaceous gland. Cell, 126, 597–609.
pubmed: 16901790 pmcid: 2424190 doi: 10.1016/j.cell.2006.06.048
Lee, J. H., Tammela, T., Hofree, M., Choi, J., Marjanovic, N. D., et al. (2017). Anatomically and functionally distinct lung mesenchymal populations marked by Lgr5 and Lgr6. Cell, 170(1149–1163), e1112.
Xie, H. T., Sullivan, D. A., Chen, D., Hatton, M. P., Kam, W. R., & Liu, Y. (2018). Biomarkers for progenitor and differentiated epithelial cells in the human Meibomian gland. Stem Cells Translational Medicine, 7, 887–892.
pubmed: 30251359 pmcid: 6265637 doi: 10.1002/sctm.18-0037
Sonnenberg, A., Calafat, J., Janssen, H., Daams, H., van der Raaij-Helmer, L. M., Falcioni, R., Kennel, S. J., Aplin, J. D., Baker, J., & Loizidou, M. (1991). Integrin alpha 6/beta 4 complex is located in hemidesmosomes, suggesting a major role in epidermal cell-basement membrane adhesion. The Journal of Cell Biology, 113, 907–917.
pubmed: 2026654 doi: 10.1083/jcb.113.4.907
Alonso, L., & Fuchs, E. (2003). Stem cells of the skin epithelium. Proceedings of the National Academy of Sciences of the United States of America, 100(Suppl 1), 11830–11835.
pubmed: 12913119 pmcid: 304094 doi: 10.1073/pnas.1734203100
Potten, C. S., & Morris, R. J. (1988). Epithelial stem cells in vivo. Journal of Cell Science. Supplement, 10, 45–62.
pubmed: 3077942 doi: 10.1242/jcs.1988.Supplement_10.4
de Lau, W., Peng, W. C., Gros, P., & Clevers, H. (2014). The R-spondin/Lgr5/Rnf43 module: Regulator of Wnt signal strength. Genes & Development, 28, 305–316.
doi: 10.1101/gad.235473.113
de Lau, W., Barker, N., Low, T. Y., Koo, B. K., Li, V. S., et al. (2011). Lgr5 homologues associate with Wnt receptors and mediate R-spondin signalling. Nature, 476, 293–297.
pubmed: 21727895 doi: 10.1038/nature10337
Hsu, H. C., Liu, Y. S., Tseng, K. C., Tan, B. C., Chen, S. J., et al. (2014). LGR5 regulates survival through mitochondria-mediated apoptosis and by targeting the Wnt/beta-catenin signaling pathway in colorectal cancer cells. Cellular Signalling, 26, 2333–2342.
pubmed: 25025569 doi: 10.1016/j.cellsig.2014.07.004
Carmon, K. S., Lin, Q., Gong, X., Thomas, A., & Liu, Q. (2012). LGR5 interacts and cointernalizes with Wnt receptors to modulate Wnt/beta-catenin signaling. Molecular and Cellular Biology, 32, 2054–2064.
pubmed: 22473993 pmcid: 3372227 doi: 10.1128/MCB.00272-12
Carmon, K. S., Gong, X., Lin, Q., Thomas, A., & Liu, Q. (2011). R-spondins function as ligands of the orphan receptors LGR4 and LGR5 to regulate Wnt/beta-catenin signaling. Proceedings of the National Academy of Sciences of the United States of America, 108, 11452–11457.
pubmed: 21693646 pmcid: 3136304 doi: 10.1073/pnas.1106083108
Niida, A., Hiroko, T., Kasai, M., Furukawa, Y., Nakamura, Y., Suzuki, Y., Sugano, S., & Akiyama, T. (2004). DKK1, a negative regulator of Wnt signaling, is a target of the beta-catenin/TCF pathway. Oncogene, 23, 8520–8526.
pubmed: 15378020 doi: 10.1038/sj.onc.1207892
Smith, S., & Dalchau, N. (2018). Model reduction enables Turing instability analysis of large reaction - diffusion models. Journal of the Royal Society Interface, 15, 20170805.
pubmed: 29540540 pmcid: 5908523 doi: 10.1098/rsif.2017.0805
Niehrs, C. (2006). Function and biological roles of the Dickkopf family of Wnt modulators. Oncogene, 25, 7469–7481.
pubmed: 17143291 doi: 10.1038/sj.onc.1210054
Glinka, A., Wu, W., Delius, H., Monaghan, A. P., Blumenstock, C., & Niehrs, C. (1998). Dickkopf-1 is a member of a new family of secreted proteins and functions in head induction. Nature, 391, 357–362.
pubmed: 9450748 doi: 10.1038/34848
Shinya, M., Eschbach, C., Clark, M., Lehrach, H., & Furutani-Seiki, M. (2000). Zebrafish Dkk1, induced by the pre-MBT Wnt signaling, is secreted from the prechordal plate and patterns the anterior neural plate. Mechanisms of Development, 98, 3–17.
pubmed: 11044603 doi: 10.1016/S0925-4773(00)00433-0
Kawamura, N., Takaoka, K., Hamada, H., Hadjantonakis, A. K., Sun-Wada, G. H., & Wada, Y. (2020). Rab7-mediated endocytosis establishes patterning of Wnt activity through inactivation of Dkk antagonism. Cell Reports, 31, 107733.
pubmed: 32521258 doi: 10.1016/j.celrep.2020.107733
Sick, S., Reinker, S., Timmer, J., & Schlake, T. (2006). WNT and DKK determine hair follicle spacing through a reaction-diffusion mechanism. Science, 314, 1447–1450.
pubmed: 17082421 doi: 10.1126/science.1130088
Wada, H., Ghysen, A., Asakawa, K., Abe, G., Ishitani, T., & Kawakami, K. (2013). Wnt/Dkk negative feedback regulates sensory organ size in zebrafish. Current Biology, 23, 1559–1565.
pubmed: 23891113 doi: 10.1016/j.cub.2013.06.035
Gonzalez-Sancho, J. M., Aguilera, O., Garcia, J. M., Pendas-Franco, N., Pena, C., et al. (2005). The Wnt antagonist DICKKOPF-1 gene is a downstream target of beta-catenin/TCF and is downregulated in human colon cancer. Oncogene, 24, 1098–1103.
pubmed: 15592505 doi: 10.1038/sj.onc.1208303
Aguilera, O., Pena, C., Garcia, J. M., Larriba, M. J., Ordonez-Moran, P., Navarro, D., Barbachano, A., Lopez de Silanes, I., Ballestar, E., Fraga, M. F., Esteller, M., Gamallo, C., Bonilla, F., Gonzalez-Sancho, J. M., & Munoz, A. (2007). The Wnt antagonist DICKKOPF-1 gene is induced by 1alpha,25-dihydroxyvitamin D3 associated to the differentiation of human colon cancer cells. Carcinogenesis, 28, 1877–1884.
pubmed: 17449905 doi: 10.1093/carcin/bgm094
David, R., Brenner, C., Stieber, J., Schwarz, F., Brunner, S., Vollmer, M., Mentele, E., Müller-Höcker, J., Kitajima, S., Lickert, H., Rupp, R., & Franz, W. M. (2008). MesP1 drives vertebrate cardiovascular differentiation through Dkk-1-mediated blockade of Wnt-signalling. Nature Cell Biology, 10, 338–345.
pubmed: 18297060 doi: 10.1038/ncb1696
Fujita, K., & Janz, S. (2007). Attenuation of WNT signaling by DKK-1 and -2 regulates BMP2-induced osteoblast differentiation and expression of OPG, RANKL and M-CSF. Molecular Cancer, 6, 71.
pubmed: 17971207 pmcid: 2173906 doi: 10.1186/1476-4598-6-71
van der Horst, G., van der Werf, S. M., Farih-Sips, H., van Bezooijen, R. L., Lowik, C. W., et al. (2005). Downregulation of Wnt signaling by increased expression of Dickkopf-1 and -2 is a prerequisite for late-stage osteoblast differentiation of KS483 cells. Journal of Bone and Mineral Research, 20, 1867–1877.
pubmed: 16160745 doi: 10.1359/JBMR.050614
Li, X., Liu, P., Liu, W., Maye, P., Zhang, J., Zhang, Y., Hurley, M., Guo, C., Boskey, A., Sun, L., Harris, S. E., Rowe, D. W., Ke, H. Z., & Wu, D. (2005). Dkk2 has a role in terminal osteoblast differentiation and mineralized matrix formation. Nature Genetics, 37, 945–952.
pubmed: 16056226 doi: 10.1038/ng1614
Amantea, C. M., Kim, W. K., Meliton, V., Tetradis, S., & Parhami, F. (2008). Oxysterol-induced osteogenic differentiation of marrow stromal cells is regulated by Dkk-1 inhibitable and PI3-kinase mediated signaling. Journal of Cellular Biochemistry, 105, 424–436.
pubmed: 18613030 pmcid: 2574814 doi: 10.1002/jcb.21840
Kataoka, K., Du, G., Maehara, N., Murata, H., Sakaguchi, M., et al. (2012). Expression pattern of REIC/Dkk-3 in mouse squamous epithelia. Clinical and Experimental Dermatology, 37, 428–431.
pubmed: 22329665 doi: 10.1111/j.1365-2230.2011.04301.x
Du, G., Kataoka, K., Sakaguchi, M., Abarzua, F., Than, S. S., et al. (2011). Expression of REIC/Dkk-3 in normal and hyperproliferative epidermis. Experimental Dermatology, 20, 273–277.
pubmed: 21323747 doi: 10.1111/j.1600-0625.2010.01244.x
DasGupta, R., & Fuchs, E. (1999). Multiple roles for activated LEF/TCF transcription complexes during hair follicle development and differentiation. Development, 126, 4557–4568.
pubmed: 10498690 doi: 10.1242/dev.126.20.4557
Chen, D., Jarrell, A., Guo, C., Lang, R., & Atit, R. (2012). Dermal beta-catenin activity in response to epidermal Wnt ligands is required for fibroblast proliferation and hair follicle initiation. Development, 139, 1522–1533.
pubmed: 22434869 pmcid: 3308184 doi: 10.1242/dev.076463
Gat, U., DasGupta, R., Degenstein, L., & Fuchs, E. (1998). De novo hair follicle morphogenesis and hair tumors in mice expressing a truncated beta-catenin in skin. Cell, 95, 605–614.
pubmed: 9845363 doi: 10.1016/S0092-8674(00)81631-1

Auteurs

Raghvendra Singh (R)

Department of Chemical Engineering, Indian Institute of Technology Kanpur, Kanpur, 208016, India. raghvend@iitk.ac.in.

Articles similaires

A key role for P2RX5 in brown adipocyte differentiation and energy homeostasis.

Maria Razzoli, Seth McGonigle, Bhavani Shankar Sahu et al.
1.00
Animals Adipocytes, Brown Mice Cell Differentiation Male
Curcumin Spinal Cord Injuries Humans Animals Neural Stem Cells

Identification of CD141

Gabee Park, Dae Yeon Hwang, Do Young Kim et al.
1.00
Humans Mesenchymal Stem Cells Animals Mice Mesenchymal Stem Cell Transplantation
Wnt-5a Protein Animals Cell Differentiation Odontogenesis Humans

Classifications MeSH