4.7 Article

ADAR1-Dependent RNA Editing Promotes MET and iPSC Reprogramming by Alleviating ER Stress

Journal

CELL STEM CELL
Volume 27, Issue 2, Pages 300-+

Publisher

CELL PRESS
DOI: 10.1016/j.stem.2020.04.016

Keywords

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Funding

  1. FEDER Program of the EU [BFU2016-80899-P, RTI2018-096708-J-I00]
  2. Xunta de GaliciaConselleria de Cultura, Educacion e Ordenacion Universitaria [ED431F 2016/016]
  3. Fundacion Ramon Areces [2016-PO025]
  4. New York State Department of Health [C32583GG, C32569GG]
  5. National Institutes of Health (NIH) [GM129157, HD095938, HD097268]
  6. National Health and Medical Research Council (NHMRC) [APP1102006/APP1144049]
  7. Australian Research Council [DP180103989]
  8. Victorian Cancer Agency research fellowship [MCRF15015]
  9. Xunta de Galicia [ED481A-2017/166]
  10. Ministerio de Economi'a y Competitividad (MINECO) - FEDER Program of the EU [RTI2018-101840-B-I00]
  11. Atresmedia - Guangzhou Health-Medical Collaborative Innovation Project [201400000004-5]
  12. Ramon y Cajal awards [RYC-2014-16779, RYC-2012-10835]
  13. MINECO of Spain
  14. Weill-Caulier Trusts Career Scientist Award [BES-2017-082007]
  15. Ministerio de Ciencia, Innovacion y Universidades [FPU2018/01246, FPU17/01131]
  16. CIBER de Fisiopatologia de la Obesidad y Nutricion is an initiative of ISCIII
  17. Spanish Agencia Estatal de Investigacion

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RNA editing of adenosine to inosine (A to I) is catalyzed by ADAR1 and dramatically alters the cellular transcriptome, although its functional roles in somatic cell reprogramming are largely unexplored. Here, we show that loss of ADAR1-mediated A-to-I editing disrupts mesenchymal-to-epithelial transition (MET) during induced pluripotent stem cell (iPSC) reprogramming and impedes acquisition of induced pluripotency. Using chemical and genetic approaches, we show that absence of ADAR1-dependent RNA editing induces aberrant innate immune responses through the double-stranded RNA (dsRNA) sensor MDA5, unleashing endoplasmic reticulum (ER) stress and hindering epithelial fate acquisition. We found that A-to-I editing impedes MDA5 sensing and sequestration of dsRNAs encoding membrane proteins, which promote ER homeostasis by activating the PERK-dependent unfolded protein response pathway to consequently facilitate MET. This study therefore establishes a critical role for ADAR1 and its A-to-I editing activity during cell fate transitions and delineates a key regulatory layer underlying MET to control efficient reprogramming.

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