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Identification of HSP90 inhibitors as a novel class of senolytics
Heike Fuhrmann‐Stroissnigg, Yuan Yuan Ling, Jing Zhao, Sara J. McGowan, Yi Zhu, Robert W. Brooks, Diego Grassi, Siobhán Q. Gregg, Jennifer L. Stripay, Akaitz Dorronsoro, Lana Corbo, Priscilla Tang, Christina Bukata, Nadja Ring, Mauro Giacca
Nature Communications · 2017 · ▲ 683 citations
Genomic instability
Loss of proteostasis
Disabled macroautophagy
Cellular senescence
Stem-cell exhaustion
Senolytics
Cell culture / in vitro
Human
Mouse
Abstract
Abstract Aging is the main risk factor for many chronic degenerative diseases and cancer. Increased senescent cell burden in various tissues is a major contributor to aging and age-related diseases. Recently, a new class of drugs termed senolytics(definition) were demonstrated to extending healthspan(definition), reducing frailty and improving stem cell function in multiple murine models of aging. To identify novel and more optimal senotherapeutic drugs and combinations, we established a senescence(definition) associated β-galactosidase assay as a screening platform to rapidly identify drugs that specifically affect senescent cells. We used primary Ercc1 −/− murine embryonic fibroblasts with reduced DNA repair capacity, which senesce rapidly if grown at atmospheric oxygen. This platform was used to screen a small library of compounds that regulate autophagy(definition), identifying two inhibitors of the HSP90 chaperone family as having significant senolytic activity in mouse and human cells. Treatment of Ercc1 −/∆ mice, a mouse model of a human progeroid syndrome, with the HSP90 inhibitor 17-DMAG extended healthspan, delayed the onset of several age-related symptoms and reduced p16 INK4a expression. These results demonstrate the utility of our screening platform to identify senotherapeutic agents as well as identified HSP90 inhibitors as a promising new class of senolytic drugs.
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- 10.1038/s41467-017-00314-z
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- 2026-06-18 MST
Cite this
APA
Fuhrmann‐Stroissnigg, H., Ling, Y.Y., Zhao, J., McGowan, S.J., Zhu, Y., Brooks, R.W., Grassi, D., Gregg, S.Q., Stripay, J.L., Dorronsoro, A., Corbo, L., Tang, P., Bukata, C., Ring, N., Giacca, M., Li, X., Tchkonia, T., Kirkland, J.L., Niedernhofer, L.J., & Robbins, P.D. (2017). Identification of HSP90 inhibitors as a novel class of senolytics. <em>Nature Communications</em>. https://doi.org/10.1038/s41467-017-00314-z
Vancouver
Fuhrmann‐Stroissnigg H, Ling YY, Zhao J, McGowan SJ, Zhu Y, Brooks RW, et al. Identification of HSP90 inhibitors as a novel class of senolytics. Nature Communications. 2017. doi:10.1038/s41467-017-00314-z.
BibTeX
@article{heike2017Identi,
title = {Identification of HSP90 inhibitors as a novel class of senolytics},
author = {Heike Fuhrmann‐Stroissnigg and Yuan Yuan Ling and Jing Zhao and Sara J. McGowan and Yi Zhu and Robert W. Brooks and Diego Grassi and Siobhán Q. Gregg and Jennifer L. Stripay and Akaitz Dorronsoro and Lana Corbo and Priscilla Tang and Christina Bukata and Nadja Ring and Mauro Giacca and Xuesen Li and Tamar Tchkonia and James L. Kirkland and Laura J. Niedernhofer and Paul D. Robbins},
journal = {Nature Communications},
year = {2017},
doi = {10.1038/s41467-017-00314-z},
}
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