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Dimethyl sulfoxide (DMSO) enhances direct cardiac reprogramming by inhibiting the bromodomain of coactivators CBP/p300.
Lim, Choon Kiat; Efthymios, Motakis; Tan, Wilson; Autio, Matias Ilmari; Tiang, Zenia; Li, Peter Yiqing; Foo, Roger Sik Yin.
Affiliation
  • Lim CK; Cardiovascular Research Institute, Yong Loo Lin School of Medicine, National University of Singapore, Centre for Translational Medicine, 14 Medical Drive, Singapore 117599, Singapore; Genome Institute of Singapore, 60 Biopolis Street, Singapore 138672, Singapore; NUS Graduate School of Integrative S
  • Efthymios M; Cardiovascular Research Institute, Yong Loo Lin School of Medicine, National University of Singapore, Centre for Translational Medicine, 14 Medical Drive, Singapore 117599, Singapore; Genome Institute of Singapore, 60 Biopolis Street, Singapore 138672, Singapore.
  • Tan W; Cardiovascular Research Institute, Yong Loo Lin School of Medicine, National University of Singapore, Centre for Translational Medicine, 14 Medical Drive, Singapore 117599, Singapore; Genome Institute of Singapore, 60 Biopolis Street, Singapore 138672, Singapore.
  • Autio MI; Genome Institute of Singapore, 60 Biopolis Street, Singapore 138672, Singapore.
  • Tiang Z; Cardiovascular Research Institute, Yong Loo Lin School of Medicine, National University of Singapore, Centre for Translational Medicine, 14 Medical Drive, Singapore 117599, Singapore; Genome Institute of Singapore, 60 Biopolis Street, Singapore 138672, Singapore.
  • Li PY; Cardiovascular Research Institute, Yong Loo Lin School of Medicine, National University of Singapore, Centre for Translational Medicine, 14 Medical Drive, Singapore 117599, Singapore.
  • Foo RSY; Cardiovascular Research Institute, Yong Loo Lin School of Medicine, National University of Singapore, Centre for Translational Medicine, 14 Medical Drive, Singapore 117599, Singapore; Genome Institute of Singapore, 60 Biopolis Street, Singapore 138672, Singapore. Electronic address: roger.foo@nus.ed
J Mol Cell Cardiol ; 160: 15-26, 2021 11.
Article in En | MEDLINE | ID: mdl-34146546
AIMS: Direct cardiac reprogramming represents an attractive way to reversing heart damage caused by myocardial infarction because it removes fibroblasts, while also generating new functional cardiomyocytes. Yet, the main hurdle for bringing this technique to the clinic is the lack of efficacy with current reprogramming protocols. Here, we describe our unexpected discovery that DMSO is capable of significantly augmenting direct cardiac reprogramming in vitro. METHODS AND RESULTS: Upon induction with cardiac transcription factors- Gata4, Hand2, Mef2c and Tbx5 (GHMT), the treatment of mouse embryonic fibroblasts (MEFs) with 1% DMSO induced ~5 fold increase in Myh6-mCherry+ cells, and significantly upregulated global expression of cardiac genes, including Myh6, Ttn, Nppa, Myh7 and Ryr2. RNA-seq confirmed upregulation of cardiac gene programmes and downregulation of extracellular matrix-related genes. Treatment of TGF-ß1, DMSO, or SB431542, and the combination thereof, revealed that DMSO most likely targets a separate but parallel pathway other than TGF-ß signalling. Subsequent experiments using small molecule screening revealed that DMSO enhances direct cardiac reprogramming through inhibition of the CBP/p300 bromodomain, and not its acetyltransferase property. CONCLUSION: In conclusion, our work points to a direct molecular target of DMSO, which can be used for augmenting GHMT-induced direct cardiac reprogramming and possibly other cell fate conversion processes.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Signal Transduction / Dimethyl Sulfoxide / Myocytes, Cardiac / P300-CBP Transcription Factors / Cellular Reprogramming / Fibroblasts / Protein Domains Type of study: Guideline Limits: Animals / Pregnancy Language: En Journal: J Mol Cell Cardiol Year: 2021 Type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Signal Transduction / Dimethyl Sulfoxide / Myocytes, Cardiac / P300-CBP Transcription Factors / Cellular Reprogramming / Fibroblasts / Protein Domains Type of study: Guideline Limits: Animals / Pregnancy Language: En Journal: J Mol Cell Cardiol Year: 2021 Type: Article