b1 sox coordinate cell specification with patterning and morphogenesis in the early zebrafish embryob1袜协调细胞规范模式和形态发生在斑马鱼早期胚胎.pdf
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B1 SOX Coordinate Cell Specification with Patterning
and Morphogenesis in the Early Zebrafish Embryo
Yuichi Okuda, Eri Ogura, Hisato Kondoh, Yusuke Kamachi*
Graduate School of Frontier Biosciences, Osaka University, Suita, Japan
Abstract
The B1 SOX transcription factors SOX1/2/3/19 have been implicated in various processes of early embryogenesis. However, their
regulatory functions in stages from the blastula to early neurula remain largely unknown, primarily because loss-of-function
studies have not been informative to date. In our present study, we systematically knocked down the B1 sox genes in zebrafish.
Only the quadruple knockdown of the four B1 sox genes sox2/3/19a/19b resulted in very severe developmental abnormalities,
confirming that the B1 sox genes are functionally redundant. We characterized the sox2/3/19a/19b quadruple knockdown
embryos in detail by examining the changes in gene expression through in situ hybridization, RT–PCR, and microarray analyses.
Importantly, these phenotypic analyses revealed that the B1 SOX proteins regulate the following distinct processes: (1) early
dorsoventral patterning by controlling bmp2b/7; (2) gastrulation movements via the regulation of pcdh18a/18b and wnt11, a
non-canonical Wnt ligand gene; (3) neural differentiation by regulating the Hes-class bHLH gene her3 and the proneural-class
bHLH genes neurog1 (positively) and ascl1a (negatively), and regional transcription factor genes, e.g., hesx1, zic1, and rx3; and (4)
neural patterning by regulating signaling pathway genes, cyp26a1 in RA signaling, oep in Nodal signaling, shh, and mdkb.
Chromatin immunoprecipitation analysis of the her3, hesx1, neurog1, pcdh18a, and cyp26a1 genes further suggests a direct
regulation of these genes by B1 SOX. We also found an interesting overlap between the early phenotypes of the B1 sox
quadruple knockdown embry
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