TY - JOUR
T1 - An Integrative Developmental Genomics and Systems Biology Approach to Identify an in Vivo Sox Trio-Mediated Gene Regulatory Network in Murine Embryos
AU - Lee, Wenqing Jean
AU - Chatterjee, Sumantra
AU - Yap, Sook Peng
AU - Lim, Siew Lan
AU - Xing, Xing
AU - Kraus, Petra
AU - Sun, Wenjie
AU - Hu, Xiaoming
AU - Sivakamasundari, V.
AU - Chan, Hsiao Yun
AU - Kolatkar, Prasanna R.
AU - Prabhakar, Shyam
AU - Lufkin, Thomas
N1 - Publisher Copyright:
© 2017 Wenqing Jean Lee et al.
PY - 2017
Y1 - 2017
N2 - Embryogenesis is an intricate process involving multiple genes and pathways. Some of the key transcription factors controlling specific cell types are the Sox trio, namely, Sox5, Sox6, and Sox9, which play crucial roles in organogenesis working in a concerted manner. Much however still needs to be learned about their combinatorial roles during this process. A developmental genomics and systems biology approach offers to complement the reductionist methodology of current developmental biology and provide a more comprehensive and integrated view of the interrelationships of complex regulatory networks that occur during organogenesis. By combining cell type-specific transcriptome analysis and in vivo ChIP-Seq of the Sox trio using mouse embryos, we provide evidence for the direct control of Sox5 and Sox6 by the transcriptional trio in the murine model and by Morpholino knockdown in zebrafish and demonstrate the novel role of Tgfb2, Fbxl18, and Tle3 in formation of Sox5, Sox6, and Sox9 dependent tissues. Concurrently, a complete embryonic gene regulatory network has been generated, identifying a wide repertoire of genes involved and controlled by the Sox trio in the intricate process of normal embryogenesis.
AB - Embryogenesis is an intricate process involving multiple genes and pathways. Some of the key transcription factors controlling specific cell types are the Sox trio, namely, Sox5, Sox6, and Sox9, which play crucial roles in organogenesis working in a concerted manner. Much however still needs to be learned about their combinatorial roles during this process. A developmental genomics and systems biology approach offers to complement the reductionist methodology of current developmental biology and provide a more comprehensive and integrated view of the interrelationships of complex regulatory networks that occur during organogenesis. By combining cell type-specific transcriptome analysis and in vivo ChIP-Seq of the Sox trio using mouse embryos, we provide evidence for the direct control of Sox5 and Sox6 by the transcriptional trio in the murine model and by Morpholino knockdown in zebrafish and demonstrate the novel role of Tgfb2, Fbxl18, and Tle3 in formation of Sox5, Sox6, and Sox9 dependent tissues. Concurrently, a complete embryonic gene regulatory network has been generated, identifying a wide repertoire of genes involved and controlled by the Sox trio in the intricate process of normal embryogenesis.
UR - http://www.scopus.com/inward/record.url?scp=85021682002&partnerID=8YFLogxK
U2 - 10.1155/2017/8932583
DO - 10.1155/2017/8932583
M3 - Article
C2 - 28630873
AN - SCOPUS:85021682002
SN - 2314-6133
VL - 2017
JO - BioMed Research International
JF - BioMed Research International
M1 - 8932583
ER -