Cargando…

FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death

Mof4 family associated protein 1 (MRFAP1) is a 14 kDa nuclear protein, which involves in maintaining normal histone modification levels by negatively regulating recruitment of the NuA4 (nucleosome acetyltransferase of H4) histone acetyltransferase complex to chromatin. MRFAP1 has been identified as...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Duan-Zhuo, Liu, Shun-Fang, Zhu, Lan, Wang, Yu-Xing, Chen, Yi-Xiang, Liu, Jie, Hu, Gang, Yu, Xin, Li, Jian, Zhang, Jin, Wu, Zhi-Xiang, Lu, Han, Liu, Wei, Liu, Bin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5722554/
https://www.ncbi.nlm.nih.gov/pubmed/29228602
http://dx.doi.org/10.18632/oncotarget.21843
_version_ 1783285039755165696
author Li, Duan-Zhuo
Liu, Shun-Fang
Zhu, Lan
Wang, Yu-Xing
Chen, Yi-Xiang
Liu, Jie
Hu, Gang
Yu, Xin
Li, Jian
Zhang, Jin
Wu, Zhi-Xiang
Lu, Han
Liu, Wei
Liu, Bin
author_facet Li, Duan-Zhuo
Liu, Shun-Fang
Zhu, Lan
Wang, Yu-Xing
Chen, Yi-Xiang
Liu, Jie
Hu, Gang
Yu, Xin
Li, Jian
Zhang, Jin
Wu, Zhi-Xiang
Lu, Han
Liu, Wei
Liu, Bin
author_sort Li, Duan-Zhuo
collection PubMed
description Mof4 family associated protein 1 (MRFAP1) is a 14 kDa nuclear protein, which involves in maintaining normal histone modification levels by negatively regulating recruitment of the NuA4 (nucleosome acetyltransferase of H4) histone acetyltransferase complex to chromatin. MRFAP1 has been identified as one of the most up-regulated proteins after NEDD8 (neural precursor cell expressed developmentally down-regulated 8) inhibition in multiple human cell lines. However, the biological function of MRFAP1 and the E3 ligase that targets MRFAP1 for destruction remain mysterious. Here we show, by using an immunoprecipitation-based proteomics screen, that MRFAP1 is an interactor of the F-box protein FBXW8. MRFAP1 is degraded by means of the ubiquitin ligase Cul7/FBXW8 during mitotic anaphase-telophase transition and accumulated in mitotic metaphase. Overexpression of FBXW8 increased the polyubiquitination and decreased the stability of MRFAP1, whereas knockdown of FBXW8 prolonged the half-life of MRFAP1. Moreover, forced expression of MRFAP1 in HeLa cells caused growth retardation and genomic instability, leading to severe mitotic cell death. Thus, Cul7/FBXW8-mediated destruction of MRFAP1 is a regulatory component monitoring the anaphase-telophase transition and preventing genomic instability.
format Online
Article
Text
id pubmed-5722554
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Impact Journals LLC
record_format MEDLINE/PubMed
spelling pubmed-57225542017-12-10 FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death Li, Duan-Zhuo Liu, Shun-Fang Zhu, Lan Wang, Yu-Xing Chen, Yi-Xiang Liu, Jie Hu, Gang Yu, Xin Li, Jian Zhang, Jin Wu, Zhi-Xiang Lu, Han Liu, Wei Liu, Bin Oncotarget Research Paper Mof4 family associated protein 1 (MRFAP1) is a 14 kDa nuclear protein, which involves in maintaining normal histone modification levels by negatively regulating recruitment of the NuA4 (nucleosome acetyltransferase of H4) histone acetyltransferase complex to chromatin. MRFAP1 has been identified as one of the most up-regulated proteins after NEDD8 (neural precursor cell expressed developmentally down-regulated 8) inhibition in multiple human cell lines. However, the biological function of MRFAP1 and the E3 ligase that targets MRFAP1 for destruction remain mysterious. Here we show, by using an immunoprecipitation-based proteomics screen, that MRFAP1 is an interactor of the F-box protein FBXW8. MRFAP1 is degraded by means of the ubiquitin ligase Cul7/FBXW8 during mitotic anaphase-telophase transition and accumulated in mitotic metaphase. Overexpression of FBXW8 increased the polyubiquitination and decreased the stability of MRFAP1, whereas knockdown of FBXW8 prolonged the half-life of MRFAP1. Moreover, forced expression of MRFAP1 in HeLa cells caused growth retardation and genomic instability, leading to severe mitotic cell death. Thus, Cul7/FBXW8-mediated destruction of MRFAP1 is a regulatory component monitoring the anaphase-telophase transition and preventing genomic instability. Impact Journals LLC 2017-10-12 /pmc/articles/PMC5722554/ /pubmed/29228602 http://dx.doi.org/10.18632/oncotarget.21843 Text en Copyright: © 2017 Li et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/) 3.0 (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Li, Duan-Zhuo
Liu, Shun-Fang
Zhu, Lan
Wang, Yu-Xing
Chen, Yi-Xiang
Liu, Jie
Hu, Gang
Yu, Xin
Li, Jian
Zhang, Jin
Wu, Zhi-Xiang
Lu, Han
Liu, Wei
Liu, Bin
FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death
title FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death
title_full FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death
title_fullStr FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death
title_full_unstemmed FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death
title_short FBXW8-dependent degradation of MRFAP1 in anaphase controls mitotic cell death
title_sort fbxw8-dependent degradation of mrfap1 in anaphase controls mitotic cell death
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5722554/
https://www.ncbi.nlm.nih.gov/pubmed/29228602
http://dx.doi.org/10.18632/oncotarget.21843
work_keys_str_mv AT liduanzhuo fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT liushunfang fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT zhulan fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT wangyuxing fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT chenyixiang fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT liujie fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT hugang fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT yuxin fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT lijian fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT zhangjin fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT wuzhixiang fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT luhan fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT liuwei fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath
AT liubin fbxw8dependentdegradationofmrfap1inanaphasecontrolsmitoticcelldeath