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Rapid manipulation of mitochondrial morphology in a living cell with iCMM

Engineered synthetic biomolecular devices that integrate elaborate information processing and precisely regulate living cell behavior have potential in various applications. Although devices that directly regulate key biomolecules constituting inherent biological systems exist, no devices have been...

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Autores principales: Miyamoto, Takafumi, Uosaki, Hideki, Mizunoe, Yuhei, Han, Song-Iee, Goto, Satoi, Yamanaka, Daisuke, Masuda, Masato, Yoneyama, Yosuke, Nakamura, Hideki, Hattori, Naoko, Takeuchi, Yoshinori, Ohno, Hiroshi, Sekiya, Motohiro, Matsuzaka, Takashi, Hakuno, Fumihiko, Takahashi, Shin-Ichiro, Yahagi, Naoya, Ito, Koichi, Shimano, Hitoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9017203/
https://www.ncbi.nlm.nih.gov/pubmed/35475143
http://dx.doi.org/10.1016/j.crmeth.2021.100052
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author Miyamoto, Takafumi
Uosaki, Hideki
Mizunoe, Yuhei
Han, Song-Iee
Goto, Satoi
Yamanaka, Daisuke
Masuda, Masato
Yoneyama, Yosuke
Nakamura, Hideki
Hattori, Naoko
Takeuchi, Yoshinori
Ohno, Hiroshi
Sekiya, Motohiro
Matsuzaka, Takashi
Hakuno, Fumihiko
Takahashi, Shin-Ichiro
Yahagi, Naoya
Ito, Koichi
Shimano, Hitoshi
author_facet Miyamoto, Takafumi
Uosaki, Hideki
Mizunoe, Yuhei
Han, Song-Iee
Goto, Satoi
Yamanaka, Daisuke
Masuda, Masato
Yoneyama, Yosuke
Nakamura, Hideki
Hattori, Naoko
Takeuchi, Yoshinori
Ohno, Hiroshi
Sekiya, Motohiro
Matsuzaka, Takashi
Hakuno, Fumihiko
Takahashi, Shin-Ichiro
Yahagi, Naoya
Ito, Koichi
Shimano, Hitoshi
author_sort Miyamoto, Takafumi
collection PubMed
description Engineered synthetic biomolecular devices that integrate elaborate information processing and precisely regulate living cell behavior have potential in various applications. Although devices that directly regulate key biomolecules constituting inherent biological systems exist, no devices have been developed to control intracellular membrane architecture, contributing to the spatiotemporal functions of these biomolecules. This study developed a synthetic biomolecular device, termed inducible counter mitochondrial morphology (iCMM), to manipulate mitochondrial morphology, an emerging informative property for understanding physiopathological cellular behaviors, on a minute timescale by using a chemically inducible dimerization system. Using iCMM, we determined cellular changes by altering mitochondrial morphology in an unprecedented manner. This approach serves as a platform for developing more sophisticated synthetic biomolecular devices to regulate biological systems by extending manipulation targets from conventional biomolecules to mitochondria. Furthermore, iCMM might serve as a tool for uncovering the biological significance of mitochondrial morphology in various physiopathological cellular processes.
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spelling pubmed-90172032022-04-25 Rapid manipulation of mitochondrial morphology in a living cell with iCMM Miyamoto, Takafumi Uosaki, Hideki Mizunoe, Yuhei Han, Song-Iee Goto, Satoi Yamanaka, Daisuke Masuda, Masato Yoneyama, Yosuke Nakamura, Hideki Hattori, Naoko Takeuchi, Yoshinori Ohno, Hiroshi Sekiya, Motohiro Matsuzaka, Takashi Hakuno, Fumihiko Takahashi, Shin-Ichiro Yahagi, Naoya Ito, Koichi Shimano, Hitoshi Cell Rep Methods Article Engineered synthetic biomolecular devices that integrate elaborate information processing and precisely regulate living cell behavior have potential in various applications. Although devices that directly regulate key biomolecules constituting inherent biological systems exist, no devices have been developed to control intracellular membrane architecture, contributing to the spatiotemporal functions of these biomolecules. This study developed a synthetic biomolecular device, termed inducible counter mitochondrial morphology (iCMM), to manipulate mitochondrial morphology, an emerging informative property for understanding physiopathological cellular behaviors, on a minute timescale by using a chemically inducible dimerization system. Using iCMM, we determined cellular changes by altering mitochondrial morphology in an unprecedented manner. This approach serves as a platform for developing more sophisticated synthetic biomolecular devices to regulate biological systems by extending manipulation targets from conventional biomolecules to mitochondria. Furthermore, iCMM might serve as a tool for uncovering the biological significance of mitochondrial morphology in various physiopathological cellular processes. Elsevier 2021-07-22 /pmc/articles/PMC9017203/ /pubmed/35475143 http://dx.doi.org/10.1016/j.crmeth.2021.100052 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Miyamoto, Takafumi
Uosaki, Hideki
Mizunoe, Yuhei
Han, Song-Iee
Goto, Satoi
Yamanaka, Daisuke
Masuda, Masato
Yoneyama, Yosuke
Nakamura, Hideki
Hattori, Naoko
Takeuchi, Yoshinori
Ohno, Hiroshi
Sekiya, Motohiro
Matsuzaka, Takashi
Hakuno, Fumihiko
Takahashi, Shin-Ichiro
Yahagi, Naoya
Ito, Koichi
Shimano, Hitoshi
Rapid manipulation of mitochondrial morphology in a living cell with iCMM
title Rapid manipulation of mitochondrial morphology in a living cell with iCMM
title_full Rapid manipulation of mitochondrial morphology in a living cell with iCMM
title_fullStr Rapid manipulation of mitochondrial morphology in a living cell with iCMM
title_full_unstemmed Rapid manipulation of mitochondrial morphology in a living cell with iCMM
title_short Rapid manipulation of mitochondrial morphology in a living cell with iCMM
title_sort rapid manipulation of mitochondrial morphology in a living cell with icmm
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9017203/
https://www.ncbi.nlm.nih.gov/pubmed/35475143
http://dx.doi.org/10.1016/j.crmeth.2021.100052
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