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Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion

Amoebae are found all around the world and play an essential role in the carbon cycle in the environment. Therefore, the behavior of amoebae is a crucial factor when considering the global environment. Amoebae change their distribution through amoeboid locomotion, which are classified into several m...

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Autores principales: Taniguchi, Atsushi, Nishigami, Yukinori, Kajiura-Kobayashi, Hiroko, Takao, Daisuke, Tamaoki, Daisuke, Nakagaki, Toshiyuki, Nonaka, Shigenori, Sonobe, Seiji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9986612/
https://www.ncbi.nlm.nih.gov/pubmed/36716104
http://dx.doi.org/10.1242/bio.059671
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author Taniguchi, Atsushi
Nishigami, Yukinori
Kajiura-Kobayashi, Hiroko
Takao, Daisuke
Tamaoki, Daisuke
Nakagaki, Toshiyuki
Nonaka, Shigenori
Sonobe, Seiji
author_facet Taniguchi, Atsushi
Nishigami, Yukinori
Kajiura-Kobayashi, Hiroko
Takao, Daisuke
Tamaoki, Daisuke
Nakagaki, Toshiyuki
Nonaka, Shigenori
Sonobe, Seiji
author_sort Taniguchi, Atsushi
collection PubMed
description Amoebae are found all around the world and play an essential role in the carbon cycle in the environment. Therefore, the behavior of amoebae is a crucial factor when considering the global environment. Amoebae change their distribution through amoeboid locomotion, which are classified into several modes. In the pressure-driven mode, intracellular hydrostatic pressure generated by the contraction of cellular cortex actomyosin causes the pseudopod to extend. During amoeboid locomotion, the cellular surface exhibits dynamic deformation. Therefore, to understand the mechanism of amoeboid locomotion, it is important to characterize cellular membrane dynamics. Here, to clarify membrane dynamics during pressure-driven amoeboid locomotion, we developed a polkadot membrane staining method and performed light-sheet microscopy in Amoeba proteus, which exhibits typical pressure-driven amoeboid locomotion. It was observed that the whole cell membrane moved in the direction of movement, and the dorsal cell membrane in the posterior part of the cell moved more slowly than the other membrane. In addition, membrane complexity varied depending on the focused characteristic size of the membrane structure, and in general, the dorsal side was more complex than the ventral side. In summary, the membrane dynamics of Amoeba proteus during pressure-driven locomotion are asymmetric between the dorsal and ventral sides. This article has an associated interview with the co-first authors of the paper.
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spelling pubmed-99866122023-03-07 Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion Taniguchi, Atsushi Nishigami, Yukinori Kajiura-Kobayashi, Hiroko Takao, Daisuke Tamaoki, Daisuke Nakagaki, Toshiyuki Nonaka, Shigenori Sonobe, Seiji Biol Open Research Article Amoebae are found all around the world and play an essential role in the carbon cycle in the environment. Therefore, the behavior of amoebae is a crucial factor when considering the global environment. Amoebae change their distribution through amoeboid locomotion, which are classified into several modes. In the pressure-driven mode, intracellular hydrostatic pressure generated by the contraction of cellular cortex actomyosin causes the pseudopod to extend. During amoeboid locomotion, the cellular surface exhibits dynamic deformation. Therefore, to understand the mechanism of amoeboid locomotion, it is important to characterize cellular membrane dynamics. Here, to clarify membrane dynamics during pressure-driven amoeboid locomotion, we developed a polkadot membrane staining method and performed light-sheet microscopy in Amoeba proteus, which exhibits typical pressure-driven amoeboid locomotion. It was observed that the whole cell membrane moved in the direction of movement, and the dorsal cell membrane in the posterior part of the cell moved more slowly than the other membrane. In addition, membrane complexity varied depending on the focused characteristic size of the membrane structure, and in general, the dorsal side was more complex than the ventral side. In summary, the membrane dynamics of Amoeba proteus during pressure-driven locomotion are asymmetric between the dorsal and ventral sides. This article has an associated interview with the co-first authors of the paper. The Company of Biologists Ltd 2023-02-23 /pmc/articles/PMC9986612/ /pubmed/36716104 http://dx.doi.org/10.1242/bio.059671 Text en © 2023. Published by The Company of Biologists Ltd https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Taniguchi, Atsushi
Nishigami, Yukinori
Kajiura-Kobayashi, Hiroko
Takao, Daisuke
Tamaoki, Daisuke
Nakagaki, Toshiyuki
Nonaka, Shigenori
Sonobe, Seiji
Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion
title Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion
title_full Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion
title_fullStr Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion
title_full_unstemmed Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion
title_short Light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of Amoeba proteus during pressure-driven locomotion
title_sort light-sheet microscopy reveals dorsoventral asymmetric membrane dynamics of amoeba proteus during pressure-driven locomotion
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9986612/
https://www.ncbi.nlm.nih.gov/pubmed/36716104
http://dx.doi.org/10.1242/bio.059671
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