4.7 Article

Transcriptional states and chromatin accessibility during bovine myoblasts proliferation and myogenic differentiation

期刊

CELL PROLIFERATION
卷 55, 期 5, 页码 -

出版社

WILEY
DOI: 10.1111/cpr.13219

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资金

  1. Agricultural Science and Technology Innovation Program in the Chinese Academy of Agricultural Sciences [ASTIP-IAS03, CAAS-ZDRW202102]
  2. China Agriculture Research System of MOF
  3. China Agriculture Research System of MARA
  4. National Beef Cattle Industrial Technology System [CARS-37]
  5. Science and Technology Project of Inner Mongolia Autonomous Region [2020GG0210, KJXM2020002-01]
  6. Pingliang Science and Technology Planned Project [27, 29]
  7. National Natural Science Foundation of China [31672384]

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This study investigates the epigenetic changes and gene expression patterns during the development of skeletal muscle in bovine fetuses. Through in vitro culturing and induction, the researchers observed the dynamic changes of chromatin accessibility and gene expression at different stages of myoblast differentiation. The study also identified key transcriptional regulators and cis-regulatory regions involved in bovine skeletal muscle development. By combining the findings with genomic data, the researchers provide insights for a more accurate annotation of genetic variants related to bovine growth traits.
Objectives Although major advances have been made in bovine epigenome study, the epigenetic basis for fetal skeletal muscle development still remains poorly understood. The aim is to recapitulated the time course of fetal skeletal muscle development in vitro, and explore the dynamic changes of chromatin accessibility and gene expression during bovine myoblasts proliferation and differentiation. Methods PDGFR- cells were isolated from bovine fetal skeletal muscle, then cultured and induced myogenic differentiation in vitro in a time-course study (P, D0, D2,and D4). The assay for transposase-accessible chromatin sequencing (ATAC-seq) and RNA sequencing (RNA-seq) were performed. Results Among the enriched transcriptional factors with high variability, we determined the effects of MAFF, ZNF384, and KLF6 in myogenesis using RNA interference (RNAi). In addition, we identified both stage-specific genes and chromatin accessibility regions to reveal the sequential order of gene expression, transcriptional regulatory, and signal pathways involved in bovine skeletal muscle development. Further investigation integrating chromatin accessibility and transcriptome data was conducted to explore cis-regulatory regions in line with gene expression. Moreover, we combined bovine GWAS results of growth traits with regulatory regions defined by chromatin accessibility, providing a suggestive means for a more precise annotation of genetic variants of bovine growth traits. Conclusion Overall, these findings provide valuable information for understanding the stepwise regulatory mechanisms in skeletal muscle development and conducting beef cattle genetic improvement programs.

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