Laboratory of Molecular Carcinogenesis, National Institute of Environmental Health Sciences, Research Triangle Park, NC 27709, USA.
Nucleic Acids Res. 2014 Mar;42(5):2958-75. doi: 10.1093/nar/gkt1232. Epub 2013 Dec 13.
The regulatory networks of differentiation programs and the molecular mechanisms of lineage-specific gene regulation in mammalian embryos remain only partially defined. We document differential expression and temporal switching of BRG1-associated factor (BAF) subunits, core pluripotency factors and cardiac-specific genes during post-implantation development and subsequent early organogenesis. Using affinity purification of BRG1 ATPase coupled to mass spectrometry, we characterized the cardiac-enriched remodeling complexes present in E8.5 mouse embryos. The relative abundance and combinatorial assembly of the BAF subunits provides functional specificity to Switch/Sucrose NonFermentable (SWI/SNF) complexes resulting in a unique gene expression profile in the developing heart. Remarkably, the specific depletion of the BAF250a subunit demonstrated differential effects on cardiac-specific gene expression and resulted in arrhythmic contracting cardiomyocytes in vitro. Indeed, the BAF250a physically interacts and functionally cooperates with Nucleosome Remodeling and Histone Deacetylase (NURD) complex subunits to repressively regulate chromatin structure of the cardiac genes by switching open and poised chromatin marks associated with active and repressed gene expression. Finally, BAF250a expression modulates BRG1 occupancy at the loci of cardiac genes regulatory regions in P19 cell differentiation. These findings reveal specialized and novel cardiac-enriched SWI/SNF chromatin-remodeling complexes, which are required for heart formation and critical for cardiac gene expression regulation at the early stages of heart development.
哺乳动物胚胎中分化程序的调控网络和谱系特异性基因调控的分子机制仍只部分定义。我们记录了 BRG1 相关因子(BAF)亚基、核心多能性因子和心脏特异性基因在植入后发育和随后的早期器官发生过程中的差异表达和时空切换。通过与质谱联用的 BRG1 ATP 酶的亲和纯化,我们描述了 E8.5 期小鼠胚胎中存在的心脏富集重塑复合物。BAF 亚基的相对丰度和组合组装为 Switch/Sucrose NonFermentable (SWI/SNF) 复合物提供了功能特异性,从而导致心脏发育中的独特基因表达谱。值得注意的是,BAF250a 亚基的特异性耗竭对心脏特异性基因表达产生了不同的影响,并导致体外心律失常收缩的心肌细胞。事实上,BAF250a 与核小体重塑和组蛋白去乙酰化酶(NURD)复合物亚基物理相互作用并协同作用,通过切换与活跃和受抑制基因表达相关的开放和势基因表达标记,抑制性地调节心脏基因的染色质结构。最后,BAF250a 的表达在 P19 细胞分化过程中调节心脏基因调控区 BRG1 的占据。这些发现揭示了特化的和新颖的心脏富集的 SWI/SNF 染色质重塑复合物,它们是心脏形成所必需的,并且对心脏发育早期的心脏基因表达调控至关重要。