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Multi-omics characterization of partial chemical reprogramming reveals evidence of cell rejuvenation
Wayne Mitchell, Ludger J.E. Goeminne, Alexander Tyshkovskiy, Sirui Zhang, Julie Y. Chen, João A. Paulo, Kerry A. Pierce, Angelina H. Choy, Clary B. Clish, Steven P. Gygi, Vadim N. Gladyshev
bioRxiv (Cold Spring Harbor Laboratory) · 2023 · ▲ 2 citations
Epigenetic alterations
Mitochondrial dysfunction
Partial reprogramming (OSK)
Cell culture / in vitro
Mouse
Abstract
ABSTRACT Partial reprogramming(definition) by cyclic short-term expression of Yamanaka factors holds promise for shifting cells to younger states and consequently delaying the onset of many diseases of aging. However, the delivery of transgenes and potential risk of teratoma formation present challenges for in vivo applications. Recent advances include the use of cocktails of compounds to reprogram somatic cells, but the characteristics and mechanisms of partial cellular reprogramming by chemicals remain unclear. Here, we report a multi-omics characterization of partial chemical reprogramming in fibroblasts from young and aged mice. We measured the effects of partial chemical reprogramming on the epigenome, transcriptome, proteome, phosphoproteome, and metabolome. At the transcriptome, proteome, and phosphoproteome levels, we saw widescale changes induced by this treatment, with the most notable signature being an upregulation of mitochondrial oxidative phosphorylation. Furthermore, at the metabolome level, we observed a reduction in the accumulation of aging-related metabolites. Using both transcriptomic and epigenetic clock(definition)-based analyses, we show that partial chemical reprogramming reduces the biological age of mouse fibroblasts. We demonstrate that these changes have functional impacts, as evidenced by changes in cellular respiration and mitochondrial membrane potential. Taken together, these results illuminate the potential for chemical reprogramming reagents to rejuvenate aged biological systems and warrant further investigation into adapting these approaches for in vivo age reversal.
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- 10.1101/2023.06.30.546730
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- 2026-06-18 MST
Cite this
APA
Mitchell, W., Goeminne, L.J., Tyshkovskiy, A., Zhang, S., Chen, J.Y., Paulo, J.A., Pierce, K.A., Choy, A.H., Clish, C.B., Gygi, S.P., & Gladyshev, V.N. (2023). Multi-omics characterization of partial chemical reprogramming reveals evidence of cell rejuvenation. <em>bioRxiv (Cold Spring Harbor Laboratory)</em>. https://doi.org/10.1101/2023.06.30.546730
Vancouver
Mitchell W, Goeminne LJ, Tyshkovskiy A, Zhang S, Chen JY, Paulo JA, et al. Multi-omics characterization of partial chemical reprogramming reveals evidence of cell rejuvenation. bioRxiv (Cold Spring Harbor Laboratory). 2023. doi:10.1101/2023.06.30.546730.
BibTeX
@unpublished{wayne2023Multio,
title = {Multi-omics characterization of partial chemical reprogramming reveals evidence of cell rejuvenation},
author = {Wayne Mitchell and Ludger J.E. Goeminne and Alexander Tyshkovskiy and Sirui Zhang and Julie Y. Chen and João A. Paulo and Kerry A. Pierce and Angelina H. Choy and Clary B. Clish and Steven P. Gygi and Vadim N. Gladyshev},
journal = {bioRxiv (Cold Spring Harbor Laboratory)},
year = {2023},
doi = {10.1101/2023.06.30.546730},
}
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