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      Cyclic Stretch Promotes Cellular Reprogramming Process through Cytoskeletal‐Nuclear Mechano‐Coupling and Epigenetic Modification

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          Abstract

          Advancing the technologies for cellular reprogramming with high efficiency has significant impact on regenerative therapy, disease modeling, and drug discovery. Biophysical cues can tune the cell fate, yet the precise role of external physical forces during reprogramming remains elusive. Here the authors show that temporal cyclic‐stretching of fibroblasts significantly enhances the efficiency of induced pluripotent stem cell (iPSC) production. Generated iPSCs are proven to express pluripotency markers and exhibit in vivo functionality. Bulk RNA‐sequencing reveales that cyclic‐stretching enhances biological characteristics required for pluripotency acquisition, including increased cell division and mesenchymal‐epithelial transition. Of note, cyclic‐stretching activates key mechanosensitive molecules (integrins, perinuclear actins, nesprin‐2, and YAP), across the cytoskeletal‐to‐nuclear space. Furthermore, stretch‐mediated cytoskeletal‐nuclear mechano‐coupling leads to altered epigenetic modifications, mainly downregulation in H3K9 methylation, and its global gene occupancy change, as revealed by genome‐wide ChIP‐sequencing and pharmacological inhibition tests. Single cell RNA‐sequencing further identifies subcluster of mechano‐responsive iPSCs and key epigenetic modifier in stretched cells. Collectively, cyclic‐stretching activates iPSC reprogramming through mechanotransduction process and epigenetic changes accompanied by altered occupancy of mechanosensitive genes. This study highlights the strong link between external physical forces with subsequent mechanotransduction process and the epigenetic changes with expression of related genes in cellular reprogramming, holding substantial implications in the field of cell biology, tissue engineering, and regenerative medicine.

          Abstract

          Here, mechanotransduction mechanism underlying the enhanced induced pluripotent stem cell (iPSC) production by cyclic‐stretching is demonatrated. Cyclic‐stretching activates key mechanosensitive molecules (integrins, perinuclear actins, nesprin‐2, and YAP), across the cytoskeletal‐to‐nuclear space, leading to altered epigenetic modifications and cellular reprogramming.

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          Author and article information

          Contributors
          ducous@dankook.ac.kr
          shim@dankook.ac.kr
          kimhw@dku.edu
          Journal
          Adv Sci (Weinh)
          Adv Sci (Weinh)
          10.1002/(ISSN)2198-3844
          ADVS
          Advanced Science
          John Wiley and Sons Inc. (Hoboken )
          2198-3844
          19 September 2023
          November 2023
          : 10
          : 32 ( doiID: 10.1002/advs.v10.32 )
          : 2303395
          Affiliations
          [ 1 ] Institute of Tissue Regeneration Engineering (ITREN) Dankook University Cheonan 31116 Republic of Korea
          [ 2 ] Department of Nanobiomedical Science and BK21 NBM Global Research Center for Regenerative Medicine Dankook University Cheonan 31116 Republic of Korea
          [ 3 ] Mechanobiology Dental Medicine Research Center Dankook University Cheonan 31116 Republic of Korea
          [ 4 ] Department of Biomaterials Science College of Dentistry Dankook University Cheonan 31116 Republic of Korea
          [ 5 ] Department of Regenerative Dental Medicine College of Dentistry Dankook University Cheonan 31116 Republic of Korea
          [ 6 ] Cell & Matter Institute Dankook University Cheonan 31116 Republic of Korea
          [ 7 ] UCL Eastman‐Korea Dental Medicine Innovation Centre Dankook University Cheonan 31116 Republic of Korea
          [ 8 ] Laboratory of Biomedical Genomics Department of Biological Sciences Sookmyung Women's University Seoul 04310 Republic of Korea
          [ 9 ] Department of Integrated Biological Science Pusan National University Pusan 46241 Republic of Korea
          [ 10 ] Department of Biological Sciences Pusan National University Pusan 46241 Republic of Korea
          [ 11 ] Soonchunhyang Institute of Medi‐Bio Science (SIMS) Soonchunhyang University Cheonan 31151 Republic of Korea
          [ 12 ] Department of Biochemistry Inha University School of Medicine Incheon 22212 Republic of Korea
          Author notes
          [†]

          Deceased on 20 November 2022.

          Author information
          https://orcid.org/0000-0001-8678-5459
          Article
          ADVS6477
          10.1002/advs.202303395
          10646259
          37727069
          361c0480-5be8-413d-9cf0-037b63694903
          © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH

          This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

          History
          : 27 July 2023
          : 25 May 2023
          Page count
          Figures: 8, Tables: 0, Pages: 16, Words: 11687
          Funding
          Funded by: Ministry of Education, Science and Technology , doi 10.13039/501100004085;
          Award ID: RS‐2023‐00208339
          Award ID: 2018K1A4A3A01064257
          Award ID: 2019R1A6A1A11034536
          Award ID: 2021R1A5A2022318
          Award ID: RS‐2023‐00220408
          Categories
          Research Article
          Research Articles
          Custom metadata
          2.0
          November 14, 2023
          Converter:WILEY_ML3GV2_TO_JATSPMC version:6.3.4 mode:remove_FC converted:15.11.2023

          cell reprogramming,epigenetic change,induced pluripotent stem cells,mechanotransduction,physical force

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