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Initiation phase cellular reprogramming ameliorates DNA damage in the ERCC1 mouse model of premature aging
Patrick Paine, Cheyenne Rechsteiner, Francesco Morandini, Gabriela Desdín-Micó, Calida Mrabti, Alberto Parras, Amin Haghani, Robert T. Brooke, Steve Horvath, Andrei Seluanov, Vera Gorbunova, Alejandro Ocampo
bioRxiv (Cold Spring Harbor Laboratory) · 2023 · ▲ 3 citations
Genomic instability
Epigenetic alterations
Cellular senescence
Stem-cell exhaustion
Partial reprogramming (OSK)
Mouse
Abstract
Abstract Unlike aged somatic cells, which exhibit a decline in molecular fidelity and eventually reach a state of replicative senescence(definition), pluripotent stem cells can indefinitely replenish themselves while retaining full homeostatic capacity. The conferment of beneficial-pluripotency related traits via in vivo partial cellular reprogramming (IVPR) significantly extends lifespan and restores aging phenotypes in mouse models. Although the phases of cellular reprogramming are well characterized, details of the rejuvenation processes are poorly defined. To understand whether epigenetic reprogramming can ameliorate DNA damage, we created reprogrammable accelerated aging mouse model with an ERCC1 mutation. Importantly, using enhanced partial reprogramming(definition) by combining small molecules with the Yamanaka factors, we observed potent reversion of DNA damage, significant upregulation of multiple DNA damage repair processes, and restoration of the epigenetic clock(definition). In addition, we present evidence that pharmacological inhibition of ALK5 and ALK2 receptors in TGFb pathway is able to phenocopy some benefits including epigenetic clock restoration suggesting a role in the mechanism of rejuvenation by partial reprogramming.
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- DOI
- 10.1101/2023.05.12.540500
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- 2026-06-18 MST
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APA
Paine, P., Rechsteiner, C., Morandini, F., Desdín-Micó, G., Mrabti, C., Parras, A., Haghani, A., Brooke, R.T., Horvath, S., Seluanov, A., Gorbunova, V., & Ocampo, A. (2023). Initiation phase cellular reprogramming ameliorates DNA damage in the ERCC1 mouse model of premature aging. <em>bioRxiv (Cold Spring Harbor Laboratory)</em>. https://doi.org/10.1101/2023.05.12.540500
Vancouver
Paine P, Rechsteiner C, Morandini F, Desdín-Micó G, Mrabti C, Parras A, et al. Initiation phase cellular reprogramming ameliorates DNA damage in the ERCC1 mouse model of premature aging. bioRxiv (Cold Spring Harbor Laboratory). 2023. doi:10.1101/2023.05.12.540500.
BibTeX
@unpublished{patrick2023Initia,
title = {Initiation phase cellular reprogramming ameliorates DNA damage in the ERCC1 mouse model of premature aging},
author = {Patrick Paine and Cheyenne Rechsteiner and Francesco Morandini and Gabriela Desdín-Micó and Calida Mrabti and Alberto Parras and Amin Haghani and Robert T. Brooke and Steve Horvath and Andrei Seluanov and Vera Gorbunova and Alejandro Ocampo},
journal = {bioRxiv (Cold Spring Harbor Laboratory)},
year = {2023},
doi = {10.1101/2023.05.12.540500},
}
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