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The deacetylation-phosphorylation regulation of SIRT2-SMC1A axis as a mechanism of antimitotic catastrophe in early tumorigenesis

Improper distribution of chromosomes during mitosis can contribute to malignant transformation. Higher eukaryotes have evolved a mitotic catastrophe mechanism for eliminating mitosis-incompetent cells; however, the signaling cascade and its epigenetic regulation are poorly understood. Our analyses o...

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Detalles Bibliográficos
Autores principales: Yi, Fei, Zhang, Ying, Wang, Zhijun, Wang, Zhuo, Li, Ziwei, Zhou, Tingting, Xu, Hongde, Liu, Jingwei, Jiang, Bo, Li, Xiaoman, Wang, Liang, Bai, Ning, Guo, Qiqiang, Guan, Yi, Feng, Yanling, Mao, Zhiyong, Fan, Guangjian, Zhang, Shengping, Wang, Chuangui, Cao, Longyue, O’Rourke, Brian P., Wang, Yang, Wu, Yanmei, Wu, Boquan, You, Shilong, Zhang, Naijin, Guan, Junlin, Song, Xiaoyu, Sun, Yingxian, Wei, Shi, Cao, Liu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7904255/
https://www.ncbi.nlm.nih.gov/pubmed/33627431
http://dx.doi.org/10.1126/sciadv.abe5518
Descripción
Sumario:Improper distribution of chromosomes during mitosis can contribute to malignant transformation. Higher eukaryotes have evolved a mitotic catastrophe mechanism for eliminating mitosis-incompetent cells; however, the signaling cascade and its epigenetic regulation are poorly understood. Our analyses of human cancerous tissue revealed that the NAD-dependent deacetylase SIRT2 is up-regulated in early-stage carcinomas of various organs. Mass spectrometry analysis revealed that SIRT2 interacts with and deacetylates the structural maintenance of chromosomes protein 1 (SMC1A), which then promotes SMC1A phosphorylation to properly drive mitosis. We have further demonstrated that inhibition of SIRT2 activity or continuously increasing SMC1A-K579 acetylation causes abnormal chromosome segregation, which, in turn, induces mitotic catastrophe in cancer cells and enhances their vulnerability to chemotherapeutic agents. These findings suggest that regulation of the SIRT2-SMC1A axis through deacetylation-phosphorylation permits escape from mitotic catastrophe, thus allowing early precursor lesions to overcome oncogenic stress.