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Responses of chromosome segregation machinery to mechanical perturbations

For genome stability, the proper segregation of chromosomes is required. The exquisite process of chromosome segregation has charmed a lot of cell- and molecular biologists into watching what happens inside a mitotic cell and how each molecule contributes to this process for the accomplishment of ac...

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Autores principales: Itabashi, Takeshi, Takagi, Jun, Suzuki, Kazuya, Ishiwata, Shin’ichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society of Japan (BSJ) 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629676/
https://www.ncbi.nlm.nih.gov/pubmed/27493543
http://dx.doi.org/10.2142/biophysics.9.73
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author Itabashi, Takeshi
Takagi, Jun
Suzuki, Kazuya
Ishiwata, Shin’ichi
author_facet Itabashi, Takeshi
Takagi, Jun
Suzuki, Kazuya
Ishiwata, Shin’ichi
author_sort Itabashi, Takeshi
collection PubMed
description For genome stability, the proper segregation of chromosomes is required. The exquisite process of chromosome segregation has charmed a lot of cell- and molecular biologists into watching what happens inside a mitotic cell and how each molecule contributes to this process for the accomplishment of accurate cell division1. The process to partition the duplicated genome to the daughter cells in each cell division is mediated by a self-organized structure called the mitotic spindle. It is well known that the mitotic spindle is a multi-component macromolecular machine composed of microtubules, molecular motors (kinesins, cytoplasmic dynein), and other regulatory molecules (microtubule-associated proteins, kinases, etc.). In recent years, most of the protein components of the mitotic spindle have been identified and the functions of these proteins have been characterized using molecular perturbations2,3. Thus, the mechanisms for spindle assembly and chromosome segregation are being revealed rapidly. However, the chromosome segregation machinery is poorly understood from the mechanical point of view, such as how the mitotic spindle within a cell responds to a variety of mechanical forces, originating from cell–cell interactions or environmental fluctuations. Recent advances in the controlled mechanical perturbation have indicated that the mitotic spindle possesses a structural pliability, size adaptability to the applied external forces, and a strong self-organizing ability. Mechanical perturbations revealed also the mechanochemical regulation of chromosome segregation machinery, which responds to the applied forces. Here, we discuss the current progress in the biophysical research on the architectural and functional dynamics of the mitotic spindle.
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spelling pubmed-46296762016-08-04 Responses of chromosome segregation machinery to mechanical perturbations Itabashi, Takeshi Takagi, Jun Suzuki, Kazuya Ishiwata, Shin’ichi Biophysics (Nagoya-shi) Review Article For genome stability, the proper segregation of chromosomes is required. The exquisite process of chromosome segregation has charmed a lot of cell- and molecular biologists into watching what happens inside a mitotic cell and how each molecule contributes to this process for the accomplishment of accurate cell division1. The process to partition the duplicated genome to the daughter cells in each cell division is mediated by a self-organized structure called the mitotic spindle. It is well known that the mitotic spindle is a multi-component macromolecular machine composed of microtubules, molecular motors (kinesins, cytoplasmic dynein), and other regulatory molecules (microtubule-associated proteins, kinases, etc.). In recent years, most of the protein components of the mitotic spindle have been identified and the functions of these proteins have been characterized using molecular perturbations2,3. Thus, the mechanisms for spindle assembly and chromosome segregation are being revealed rapidly. However, the chromosome segregation machinery is poorly understood from the mechanical point of view, such as how the mitotic spindle within a cell responds to a variety of mechanical forces, originating from cell–cell interactions or environmental fluctuations. Recent advances in the controlled mechanical perturbation have indicated that the mitotic spindle possesses a structural pliability, size adaptability to the applied external forces, and a strong self-organizing ability. Mechanical perturbations revealed also the mechanochemical regulation of chromosome segregation machinery, which responds to the applied forces. Here, we discuss the current progress in the biophysical research on the architectural and functional dynamics of the mitotic spindle. The Biophysical Society of Japan (BSJ) 2013-06-08 /pmc/articles/PMC4629676/ /pubmed/27493543 http://dx.doi.org/10.2142/biophysics.9.73 Text en ©2013 THE BIOPHYSICAL SOCIETY OF JAPAN
spellingShingle Review Article
Itabashi, Takeshi
Takagi, Jun
Suzuki, Kazuya
Ishiwata, Shin’ichi
Responses of chromosome segregation machinery to mechanical perturbations
title Responses of chromosome segregation machinery to mechanical perturbations
title_full Responses of chromosome segregation machinery to mechanical perturbations
title_fullStr Responses of chromosome segregation machinery to mechanical perturbations
title_full_unstemmed Responses of chromosome segregation machinery to mechanical perturbations
title_short Responses of chromosome segregation machinery to mechanical perturbations
title_sort responses of chromosome segregation machinery to mechanical perturbations
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4629676/
https://www.ncbi.nlm.nih.gov/pubmed/27493543
http://dx.doi.org/10.2142/biophysics.9.73
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