An Iterative Genetic and Dynamical Modelling Approach Identifies Novel Features of the Gene Regulatory Network Underlying Melanocyte Development

被引:54
作者
Greenhill, Emma R. [1 ,2 ]
Rocco, Andrea [3 ]
Vibert, Laura [1 ,2 ]
Nikaido, Masataka [1 ,2 ]
Kelsh, Robert N. [1 ,2 ]
机构
[1] Univ Bath, Dept Biol & Biochem, Bath BA2 7AY, Avon, England
[2] Univ Bath, Ctr Regenerat Med, Bath BA2 7AY, Avon, England
[3] Univ Bath, Dept Math, Bath BA2 7AY, Avon, England
基金
英国生物技术与生命科学研究理事会; 英国惠康基金;
关键词
NEURAL CREST DEVELOPMENT; WAARDENBURG-SYNDROME; TRANSCRIPTION FACTOR; ZEBRAFISH EMBRYOS; MELANOPHORE DEVELOPMENT; DOPACHROME-TAUTOMERASE; OVERLAPPING FUNCTIONS; CELL FATE; SOX10; EXPRESSION;
D O I
10.1371/journal.pgen.1002265
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The mechanisms generating stably differentiated cell-types from multipotent precursors are key to understanding normal development and have implications for treatment of cancer and the therapeutic use of stem cells. Pigment cells are a major derivative of neural crest stem cells and a key model cell-type for our understanding of the genetics of cell differentiation. Several factors driving melanocyte fate specification have been identified, including the transcription factor and master regulator of melanocyte development, Mitf, and Wnt signalling and the multipotency and fate specification factor, Sox10, which drive mitf expression. While these factors together drive multipotent neural crest cells to become specified melanoblasts, the mechanisms stabilising melanocyte differentiation remain unclear. Furthermore, there is controversy over whether Sox10 has an ongoing role in melanocyte differentiation. Here we use zebrafish to explore in vivo the gene regulatory network (GRN) underlying melanocyte specification and differentiation. We use an iterative process of mathematical modelling and experimental observation to explore methodically the core melanocyte GRN we have defined. We show that Sox10 is not required for ongoing differentiation and expression is downregulated in differentiating cells, in response to Mitfa and Hdac1. Unexpectedly, we find that Sox10 represses Mitf-dependent expression of melanocyte differentiation genes. Our systems biology approach allowed us to predict two novel features of the melanocyte GRN, which we then validate experimentally. Specifically, we show that maintenance of mitfa expression is Mitfa-dependent, and identify Sox9b as providing an Mitfa-independent input to melanocyte differentiation. Our data supports our previous suggestion that Sox10 only functions transiently in regulation of mitfa and cannot be responsible for long-term maintenance of mitfa expression; indeed, Sox10 is likely to slow melanocyte differentiation in the zebrafish embryo. More generally, this novel approach to understanding melanocyte differentiation provides a basis for systematic modelling of differentiation in this and other cell-types.
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页数:18
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共 76 条
  • [61] α-melanocyte-stimulating hormone signaling regulates expression of microphthalmia, a gene deficient in Waardenburg syndrome
    Price, ER
    Horstmann, MA
    Wells, AG
    Weilbaecher, KN
    Takemoto, CM
    Landis, MW
    Fisher, DE
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (49) : 33042 - 33047
  • [62] SEGREGATION AND EARLY DISPERSAL OF NEURAL CREST CELLS IN THE EMBRYONIC ZEBRAFISH
    RAIBLE, DW
    WOOD, A
    HODSDON, W
    HENION, PD
    WESTON, JA
    EISEN, JS
    [J]. DEVELOPMENTAL DYNAMICS, 1992, 195 (01) : 29 - 42
  • [63] ORIGIN OF PIGMENT CELLS FROM THE NEURAL CREST IN THE MOUSE EMBRYO
    RAWLES, ME
    [J]. PHYSIOLOGICAL ZOOLOGY, 1947, 20 (03): : 248 - 265
  • [64] mc1r Pathway Regulation of Zebrafish Melanosome Dispersion
    Richardson, Jennifer
    Lundegaard, Pia Rengtved
    Reynolds, Natalie L.
    Dorin, Julia R.
    Porteous, David J.
    Jackson, Ian J.
    Patton, E. Elizabeth
    [J]. ZEBRAFISH, 2008, 5 (04) : 289 - 295
  • [65] Melanocyte-specific microphthalmia-associated transcription factor isoform activates its own gene promoter through physical interaction with lymphoid-enhancing factor 1
    Saito, H
    Yasumoto, K
    Takeda, K
    Takahashi, K
    Fukuzaki, A
    Orikasa, S
    Shibahara, S
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (32) : 28787 - 28794
  • [66] SCHILLING TF, 1994, DEVELOPMENT, V120, P483
  • [67] Thisse B., 2001, EXPRESSION ZEBRAFISH
  • [68] THISSE C, 1993, DEVELOPMENT, V119, P1203
  • [69] Hedgehog signaling is directly required for the development of zebrafish dorsal root ganglia neurons
    Ungos, JM
    Karlstrom, RO
    Raible, DW
    [J]. DEVELOPMENT, 2003, 130 (22): : 5351 - 5362
  • [70] The transcription network regulating melanocyte development and melanoma
    Vance, KW
    Goding, CR
    [J]. PIGMENT CELL RESEARCH, 2004, 17 (04): : 318 - 325