Transcription Elongation Factor Tcea3 Regulates the Pluripotent Differentiation Potential of Mouse Embryonic Stem Cells Via the Lefty1-Nodal-Smad2 Pathway

Author:

Park Kyung-Soon12,Cha Young1234,Kim Chun-Hyung34,Ahn Hee-Jin12,Kim Dohoon34,Ko Sanghyeok34,Kim Kyeoung-Hwa12,Chang Mi-Yoon34,Ko Jong-Hyun5,Noh Yoo-Sun5,Han Yong-Mahn6,Kim Jonghwan7,Song Jihwan12,Kim Jin Young8,Tesar Paul J.9,Lanza Robert10,Lee Kyung-Ah12,Kim Kwang-Soo234

Affiliation:

1. Department of Biomedical Science, College of Life Science and Seoul, Korea

2. CHA Stem Cell Institute, CHA University, Seoul, Korea

3. Molecular Neurobiology Laboratory, McLean Hospital, Harvard Medical School, Belmont, Massachusetts, USA

4. Harvard Stem Cell Institute, Boston, Massachusetts, USA

5. Department of Biological Sciences, Seoul National University, Seoul, Korea

6. Department of Biological Sciences and Center for Stem Cell Differentiation, KAIST, Daejeon, Korea

7. Section of Molecular Cell and Developmental Biology and Institute for Cellular and Molecular Biology, The University of Texas at Austin, Texas, USA

8. Division of Mass Spectrometry, Korea Basic Science Institute, Chungbuk, Korea

9. Department of Genetics, Case Western Reserve University School of Medicine, Cleveland, Ohio, USA

10. Advanced Cell Technology, Marlborough, Massachusetts, USA

Abstract

Abstract Self-renewal and pluripotency are hallmark properties of pluripotent stem cells, including embryonic stem cells (ESCs) and iPS cells. Previous studies revealed the ESC-specific core transcription circuitry and showed that these core factors (e.g., Oct3/4, Sox2, and Nanog) regulate not only self-renewal but also pluripotent differentiation. However, it remains elusive how these two cell states are regulated and balanced during in vitro replication and differentiation. Here, we report that the transcription elongation factor Tcea3 is highly enriched in mouse ESCs (mESCs) and plays important roles in regulating the differentiation. Strikingly, altering Tcea3 expression in mESCs did not affect self-renewal under nondifferentiating condition; however, upon exposure to differentiating cues, its overexpression impaired in vitro differentiation capacity, and its knockdown biased differentiation toward mesodermal and endodermal fates. Furthermore, we identified Lefty1 as a downstream target of Tcea3 and showed that the Tcea3-Lefty1-Nodal-Smad2 pathway is an innate program critically regulating cell fate choices between self-replication and differentiation commitment. Together, we propose that Tcea3 critically regulates pluripotent differentiation of mESCs as a molecular rheostat of Nodal-Smad2/3 signaling.

Funder

Korea Science and Engineering Foundation

Korean government

Priority Research Centers Program through the National Research Foundation of Korea

Ministry of Education, Science, and Technology

National Institute of Health

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Molecular Medicine

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