OCT4 cooperates with distinct ATP-dependent chromatin remodelers in naïve and primed pluripotent states in human

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作者
Xin Huang
Kyoung-mi Park
Paul Gontarz
Bo Zhang
Joshua Pan
Zachary McKenzie
Laura A. Fischer
Chen Dong
Sabine Dietmann
Xiaoyun Xing
Pavel V. Shliaha
Jihong Yang
Dan Li
Junjun Ding
Tenzin Lungjangwa
Maya Mitalipova
Shafqat A. Khan
Sumeth Imsoonthornruksa
Nick Jensen
Ting Wang
Cigall Kadoch
Rudolf Jaenisch
Jianlong Wang
Thorold W. Theunissen
机构
[1] Columbia University Irving Medical Center,Department of Medicine, Columbia Center for Human Development, Columbia Stem Cell Initiative
[2] Washington University School of Medicine,Department of Developmental Biology
[3] Washington University School of Medicine,Center of Regenerative Medicine
[4] Dana-Farber Cancer Institute,Department of Pediatric Oncology
[5] Broad Institute of Harvard and MIT,Institute of Informatics (I2)
[6] Washington University School of Medicine,Department of Genetics, Center for Genome Sciences & Systems Biology
[7] Washington University School of Medicine,Department of Cell, Developmental and Regenerative Biology, Black Family Stem Cell Institute
[8] Memorial Sloan Kettering Cancer Center,Department of Cell Biology, Zhongshan School of Medicine
[9] Icahn School of Medicine at Mount Sinai,Center for Biomolecular Structure Function and Application, School of Biotechnology
[10] Sun Yat-sen University,Department of Biology
[11] Whitehead Institute for Biomedical Research,undefined
[12] Suranaree University of Technology,undefined
[13] Massachusetts Institute of Technology,undefined
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摘要
Understanding the molecular underpinnings of pluripotency is a prerequisite for optimal maintenance and application of embryonic stem cells (ESCs). While the protein-protein interactions of core pluripotency factors have been identified in mouse ESCs, their interactome in human ESCs (hESCs) has not to date been explored. Here we mapped the OCT4 interactomes in naïve and primed hESCs, revealing extensive connections to mammalian ATP-dependent nucleosome remodeling complexes. In naïve hESCs, OCT4 is associated with both BRG1 and BRM, the two paralog ATPases of the BAF complex. Genome-wide location analyses and genetic studies reveal that these two enzymes cooperate in a functionally redundant manner in the transcriptional regulation of blastocyst-specific genes. In contrast, in primed hESCs, OCT4 cooperates with BRG1 and SOX2 to promote chromatin accessibility at ectodermal genes. This work reveals how a common transcription factor utilizes differential BAF complexes to control distinct transcriptional programs in naïve and primed hESCs.
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