Dissecting dual roles of MyoD during lineage conversion to mature myocytes and myogenic stem cells

MyoD公司 肌发生 生物 重编程 细胞生物学 肌生成素 心肌细胞 转录因子 干细胞 肌动蛋白 DNA甲基化 细胞分化 骨骼肌 肌源性调节因子 皮特x2 C2C12型 五年期 再生(生物学) 遗传学 细胞 基因表达 基因
作者
Masahide Yagi,Fei Ji,Jocelyn Charlton,Simona Cristea,Kathleen Messemer,Naftali Horwitz,Bruno Di Stefano,Nikolaos Tsopoulidis,Michael S. Hoetker,Aaron J. Huebner,Ori Bar‐Nur,Albert E. Almada,Masakazu Yamamoto,Anthony Patelunas,David J. Goldhamer,Amy J. Wagers,Franziska Michor,Alexander Meissner,Ruslan I. Sadreyev,Konrad Hochedlinger
出处
期刊:Genes & Development [Cold Spring Harbor Laboratory Press]
卷期号:35 (17-18): 1209-1228 被引量:18
标识
DOI:10.1101/gad.348678.121
摘要

The generation of myotubes from fibroblasts upon forced MyoD expression is a classic example of transcription factor-induced reprogramming. We recently discovered that additional modulation of signaling pathways with small molecules facilitates reprogramming to more primitive induced myogenic progenitor cells (iMPCs). Here, we dissected the transcriptional and epigenetic dynamics of mouse fibroblasts undergoing reprogramming to either myotubes or iMPCs using a MyoD-inducible transgenic model. Induction of MyoD in fibroblasts combined with small molecules generated Pax7+ iMPCs with high similarity to primary muscle stem cells. Analysis of intermediate stages of iMPC induction revealed that extinction of the fibroblast program preceded induction of the stem cell program. Moreover, key stem cell genes gained chromatin accessibility prior to their transcriptional activation, and these regions exhibited a marked loss of DNA methylation dependent on the Tet enzymes. In contrast, myotube generation was associated with few methylation changes, incomplete and unstable reprogramming, and an insensitivity to Tet depletion. Finally, we showed that MyoD's ability to bind to unique bHLH targets was crucial for generating iMPCs but dispensable for generating myotubes. Collectively, our analyses elucidate the role of MyoD in myogenic reprogramming and derive general principles by which transcription factors and signaling pathways cooperate to rewire cell identity.

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