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Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment

The kinetochore is a proteinaceous complex that is essential for proper chromosome segregation. As a core member of the inner kinetochore, defects of each subunit in the CENP-H/I/K complex cause dysfunction of kinetochore that leads to chromosome mis-segregation and cell death. However, how the CENP...

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Autores principales: Hu, Liqiao, Huang, Hao, Hei, Mohan, Yang, Yang, Li, Sheng, Liu, Yunshan, Dou, Zhen, Wu, Mengying, Li, Jie, Wang, Guang-zhong, Yao, Xuebiao, Liu, Hong, He, Xiaojing, Tian, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6326798/
https://www.ncbi.nlm.nih.gov/pubmed/30407575
http://dx.doi.org/10.1093/nar/gky1108
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author Hu, Liqiao
Huang, Hao
Hei, Mohan
Yang, Yang
Li, Sheng
Liu, Yunshan
Dou, Zhen
Wu, Mengying
Li, Jie
Wang, Guang-zhong
Yao, Xuebiao
Liu, Hong
He, Xiaojing
Tian, Wei
author_facet Hu, Liqiao
Huang, Hao
Hei, Mohan
Yang, Yang
Li, Sheng
Liu, Yunshan
Dou, Zhen
Wu, Mengying
Li, Jie
Wang, Guang-zhong
Yao, Xuebiao
Liu, Hong
He, Xiaojing
Tian, Wei
author_sort Hu, Liqiao
collection PubMed
description The kinetochore is a proteinaceous complex that is essential for proper chromosome segregation. As a core member of the inner kinetochore, defects of each subunit in the CENP-H/I/K complex cause dysfunction of kinetochore that leads to chromosome mis-segregation and cell death. However, how the CENP-H/I/K complex assembles and promotes kinetochore function are poorly understood. We here determined the crystal structures of CENP-I N-terminus alone from Chaetomium thermophilum and its complex with CENP-H/K from Thielavia terrestris, and verified the identified interactions. The structures and biochemical analyses show that CENP-H and CENP-K form a heterodimer through both N- and C-terminal interactions. CENP-I integrates into the CENP-H/K complex by binding to the C-terminus of CENP-H, leading to formation of the ternary complex in which CENP-H is sandwiched between CENP-K and CENP-I. Our sequence comparisons and mutational analyses showed that this architecture of the CENP–H/I/K complex is conserved in human. Mutating the binding interfaces of CENP-H for either CENP-K or CENP-I significantly reduced their localizations at centromeres and induced massive chromosome alignment defects during mitosis, suggesting that the identified interactions are critical for CENP-H/I/K complex assembly at the centromere and kinetochore function. Altogether, our findings unveil the evolutionarily conserved assembly mechanism of the CENP-H/I/K complex that is critical for proper chromosome alignment.
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spelling pubmed-63267982019-01-15 Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment Hu, Liqiao Huang, Hao Hei, Mohan Yang, Yang Li, Sheng Liu, Yunshan Dou, Zhen Wu, Mengying Li, Jie Wang, Guang-zhong Yao, Xuebiao Liu, Hong He, Xiaojing Tian, Wei Nucleic Acids Res Structural Biology The kinetochore is a proteinaceous complex that is essential for proper chromosome segregation. As a core member of the inner kinetochore, defects of each subunit in the CENP-H/I/K complex cause dysfunction of kinetochore that leads to chromosome mis-segregation and cell death. However, how the CENP-H/I/K complex assembles and promotes kinetochore function are poorly understood. We here determined the crystal structures of CENP-I N-terminus alone from Chaetomium thermophilum and its complex with CENP-H/K from Thielavia terrestris, and verified the identified interactions. The structures and biochemical analyses show that CENP-H and CENP-K form a heterodimer through both N- and C-terminal interactions. CENP-I integrates into the CENP-H/K complex by binding to the C-terminus of CENP-H, leading to formation of the ternary complex in which CENP-H is sandwiched between CENP-K and CENP-I. Our sequence comparisons and mutational analyses showed that this architecture of the CENP–H/I/K complex is conserved in human. Mutating the binding interfaces of CENP-H for either CENP-K or CENP-I significantly reduced their localizations at centromeres and induced massive chromosome alignment defects during mitosis, suggesting that the identified interactions are critical for CENP-H/I/K complex assembly at the centromere and kinetochore function. Altogether, our findings unveil the evolutionarily conserved assembly mechanism of the CENP-H/I/K complex that is critical for proper chromosome alignment. Oxford University Press 2019-01-10 2018-11-08 /pmc/articles/PMC6326798/ /pubmed/30407575 http://dx.doi.org/10.1093/nar/gky1108 Text en © The Author(s) 2018. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Structural Biology
Hu, Liqiao
Huang, Hao
Hei, Mohan
Yang, Yang
Li, Sheng
Liu, Yunshan
Dou, Zhen
Wu, Mengying
Li, Jie
Wang, Guang-zhong
Yao, Xuebiao
Liu, Hong
He, Xiaojing
Tian, Wei
Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment
title Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment
title_full Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment
title_fullStr Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment
title_full_unstemmed Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment
title_short Structural analysis of fungal CENP-H/I/K homologs reveals a conserved assembly mechanism underlying proper chromosome alignment
title_sort structural analysis of fungal cenp-h/i/k homologs reveals a conserved assembly mechanism underlying proper chromosome alignment
topic Structural Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6326798/
https://www.ncbi.nlm.nih.gov/pubmed/30407575
http://dx.doi.org/10.1093/nar/gky1108
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