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bioRxiv · 10.1101/2024.09.25.615081

The Senescence-Associated-Secretory Phenotype constituting HIF-1α activation is independent of micronuclei induction and associated cGAS-mediated interferon response

Abstract

The Senescence-Associated Secretory Phenotype (SASP), characterized by the upregulation of inflammatory cytokines, is triggered during senescence by anti-proliferation stresses, including replicative exhaustion, {gamma}-irradiation, Ras oncogene induction, and centrosome amplification. The elucidation of common signalling pathway(s) activated in SASP, induced by different anti-proliferation stresses, remains an important question. Indeed, micronuclei activation of the cGAS/Sting pathway, which has been thought to drive SASP(Kwon, Leibowitz, and Lee, 2020), remains controversial(Flynn, Koch, and Mitchison, 2021; Sato and Hayashi, 2024; Takaki et al., 2024). In this report, analyses of various cell lines induced to undergo senescence by diverse stressors revealed that HIF-1 is specifically induced in senescence but not in quiescence. Consistent with our previous findings(Wu et al., 2023a), we have further demonstrated how centrosome amplification induces a non-canonical SASP dominated by HIF-1 activation rather than the classical NF{kappa}B signaling. Lastly, we revealed that during SASP, centrosome amplification-generated micronuclei do not activate the cGAS/Sting-mediated interferon response. Together, our findings demonstrate that HIF-1-activation in SASP is a defining feature of the SASP induced by diverse stressors, acting independently of micronuclei generation and cGAS/Sting activation.

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BibTeXRIS

Deng, L., Ho, C., Picone, R., Abderazzaq, F., Flanagan, N., Low, B. C., Wu, S. K.. 2024-09-26. The Senescence-Associated-Secretory Phenotype constituting HIF-1α activation is independent of micronuclei induction and associated cGAS-mediated interferon response. https://doi.org/10.1101/2024.09.25.615081

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