NuRD Blocks Reprogramming of Mouse Somatic Cells into Pluripotent Stem Cells

Author:

Luo Min12,Ling Te34,Xie Wenbing4,Sun He1,Zhou Yonggang5,Zhu Qiaoyun4,Shen Meili4,Zong Le4,Lyu Guoliang4,Zhao Yun6,Ye Tao7,Gu Jun4,Tao Wei4,Lu Zhigang1,Grummt Ingrid8

Affiliation:

1. Laboratory of Chemical Genomics, School of Chemical Biology and Biotechnology, Shenzhen Graduate School of Peking University, Shenzhen, China

2. Shenzhen Center for Disease Control and Prevention, Shenzhen, China

3. College of Life Sciences, Capital Normal University, Beijing, China

4. Key Laboratory of Cell Proliferation and Differentiation of the Ministry of Education, National Key Laboratory of Protein Engineering and Plant Gene Engineering, School of Life Science, Peking University, Beijing, China

5. Department of Cardiac Development and Remodeling, Max Planck Institute for Heart and Lung Research, Bad Nauheim, Germany

6. Institute of Biochemistry and Cell Biology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, China

7. Department of Applied Biology & Chemical Technology, The Hong Kong Polytechnic University, Hong Kong

8. Division of Molecular Biology of the Cell II, DKFZ-ZMBH Alliance, German Cancer Research Center, Heidelberg, Germany

Abstract

Abstract Reprogramming of somatic cells into induced pluripotent stem cells (iPSCs) by overexpression of a defined set of transcription factors requires epigenetic changes in pluripotency genes. Nuclear reprogramming is an inefficient process and the molecular mechanisms that reset the epigenetic state during iPSC generation are largely unknown. Here, we show that downregulation of the nucleosome remodeling and deacetylation (NuRD) complex is required for efficient reprogramming. Overexpression of Mbd3, a subunit of NuRD, inhibits induction of iPSCs by establishing heterochromatic features and silencing embryonic stem cell-specific marker genes, including Oct4 and Nanog. Depletion of Mbd3, on the other hand, improves reprogramming efficiency and facilitates the formation of pluripotent stem cells that are capable of generating viable chimeric mice, even in the absence of c-Myc or Sox2. The results establish Mbd3/NuRD as an important epigenetic regulator that restricts the expression of key pluripotency genes, suggesting that drug-induced downregulation of Mbd3/NuRD may be a powerful means to improve the efficiency and fidelity of reprogramming.

Funder

National Natural Science Foundation of China

National Basic Research Program of China

Shenzhen Bureau of Science Technology and Information

Chinese Academy of Sciences

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Molecular Medicine

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