The etiology and molecular genetics of human pigmentation disorders

被引:40
作者
Baxter, Laura L. [1 ]
Pavan, William J. [1 ]
机构
[1] NHGRI, Mouse Embryol Sect, Genet Dis Res Branch, NIH, Bethesda, MD 20892 USA
关键词
D O I
10.1002/wdev.72
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Pigmentation, defined as the placement of pigment in skin, hair, and eyes for coloration, is distinctive because the location, amount, and type of pigmentation provides a visual manifestation of genetic heterogeneity in pathways regulating the pigment-producing cells, melanocytes. The scope of this genetic heterogeneity in humans ranges from normal to pathological pigmentation phenotypes. Clinically, normal human pigmentation encompasses a variety of skin and hair color as well as punctate pigmentation such as melanocytic nevi (moles) or ephelides (freckles), while abnormal human pigmentation exhibits markedly reduced or increased pigment levels, known as hypopigmentation and hyperpigmentation, respectively. Elucidation of the molecular genetics underlying pigmentation has revealed genes important for melanocyte development and function. Furthermore, many pigmentation disorders show additional defects in cells other than melanocytes, and identification of the genetic insults in these disorders has revealed pleiotropic genes, where a single gene is required for various functions in different cell types. Thus, unravelling the genetics of easily visualized pigmentation disorders has identified molecular similarities between melanocytes and less visible cell types/tissues, arising from a common developmental origin and/or shared genetic regulatory pathways. Herein we discuss notable human pigmentation disorders and their associated genetic alterations, focusing on the fact that the developmental genetics of pigmentation abnormalities are instructive for understanding normal pathways governing development and function of melanocytes. (C) 2012 Wiley Periodicals, Inc.
引用
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页码:379 / 392
页数:14
相关论文
共 83 条
[1]  
Thomas I., Kihiczak G.G., Fox M.D., Janniger C.K., Schwartz R.A., Piebaldism: an update., Int J Dermatol, 43, pp. 716-719, (2004)
[2]  
Thomas A.J., Erickson C.A., The making of a melanocyte: the specification of melanoblasts from the neural crest., Pigment Cell Melanoma Res, 21, pp. 598-610, (2008)
[3]  
Adameyko I., Lallemend F., Aquino J.B., Pereira J.A., Topilko P., Muller T., Fritz N., Beljajeva A., Mochii M., Liste I., Et al., Schwann cell precursors from nerve innervation are a cellular origin of melanocytes in skin., Cell, 139, pp. 366-379, (2009)
[4]  
Kelsh R.N., Harris M.L., Colanesi S., Erickson C.A., Stripes and belly-spots-a review of pigment cell morphogenesis in vertebrates., Semin Cell Dev Biol, 20, pp. 90-104, (2009)
[5]  
Luciani F., Champeval D., Herbette A., Denat L., Aylaj B., Martinozzi S., Ballotti R., Kemler R., Goding C.R., De Vuyst F., Et al., Biological and mathematical modeling of melanocyte development., Development, 138, pp. 3943-3954, (2011)
[6]  
Sturm R.A., Molecular genetics of human pigmentation diversity., Hum Mol Genet, 18, (2009)
[7]  
Valverde P., Healy E., Jackson I., Rees J.L., Thody A.J., Variants of the melanocyte-stimulating hormone receptor gene are associated with red hair and fair skin in humans., Nat Genet, 11, pp. 328-330, (1995)
[8]  
Beaumont K.A., Shekar S.N., Cook A.L., Duffy D.L., Sturm R.A., Red hair is the null phenotype of MC1R., Hum Mutat, 29, (2008)
[9]  
Bharti K., Nguyen M.-T., Skuntz S., Bertuzzi S., Arnheiter H., The other pigment cell: specification and development of the pigmented epithelium of the vertebrate eye., Pigment Cell Res, 19, pp. 380-394, (2006)
[10]  
Hennekam R.C., Gorlin R.J., Confirmation of the Yemenite (Warburg) deaf-blind hypopigmentation syndrome., Am J Med Genet, 65, pp. 146-148, (1996)