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Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector

Cultured mammalian cells have been shown to respond to microgravity (μG), but the molecular mechanism is still unknown. The study we report here is focused on molecular and cellular events that occur within a short period of time, which may be related to gravity sensing by cells. Our assumption is t...

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Autores principales: Ju, Zhenlin, Thomas, Tamlyn N., Chiu, Yi-Jen, Yamanouchi, Sakuya, Yoshida, Yukari, Abe, Jun-ichi, Takahashi, Akihisa, Wang, Jing, Fujiwara, Keigi, Hada, Megumi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9181735/
https://www.ncbi.nlm.nih.gov/pubmed/35682810
http://dx.doi.org/10.3390/ijms23116127
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author Ju, Zhenlin
Thomas, Tamlyn N.
Chiu, Yi-Jen
Yamanouchi, Sakuya
Yoshida, Yukari
Abe, Jun-ichi
Takahashi, Akihisa
Wang, Jing
Fujiwara, Keigi
Hada, Megumi
author_facet Ju, Zhenlin
Thomas, Tamlyn N.
Chiu, Yi-Jen
Yamanouchi, Sakuya
Yoshida, Yukari
Abe, Jun-ichi
Takahashi, Akihisa
Wang, Jing
Fujiwara, Keigi
Hada, Megumi
author_sort Ju, Zhenlin
collection PubMed
description Cultured mammalian cells have been shown to respond to microgravity (μG), but the molecular mechanism is still unknown. The study we report here is focused on molecular and cellular events that occur within a short period of time, which may be related to gravity sensing by cells. Our assumption is that the gravity-sensing mechanism is activated as soon as cells are exposed to any new gravitational environment. To study the molecular events, we exposed cells to simulated μG (SμG) for 15 min, 30 min, 1 h, 2 h, 4 h, and 8 h using a three-dimensional clinostat and made cell lysates, which were then analyzed by reverse phase protein arrays (RPPAs) using a panel of 453 different antibodies. By comparing the RPPA data from cells cultured at 1G with those of cells under SμG, we identified a total of 35 proteomic changes in the SμG samples and found that 20 of these changes took place, mostly transiently, within 30 min. In the 4 h and 8 h samples, there were only two RPPA changes, suggesting that the physiology of these cells is practically indistinguishable from that of cells cultured at 1 G. Among the proteins involved in the early proteomic changes were those that regulate cell motility and cytoskeletal organization. To see whether changes in gravitational environment indeed activate cell motility, we flipped the culture dish upside down (directional change in gravity vector) and studied cell migration and actin cytoskeletal organization. We found that compared with cells grown right-side up, upside-down cells transiently lost stress fibers and rapidly developed lamellipodia, which was supported by increased activity of Ras-related C3 botulinum toxin substrate 1 (Rac1). The upside-down cells also increased their migratory activity. It is possible that these early molecular and cellular events play roles in gravity sensing by mammalian cells. Our study also indicated that these early responses are transient, suggesting that cells appear to adapt physiologically to a new gravitational environment.
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spelling pubmed-91817352022-06-10 Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector Ju, Zhenlin Thomas, Tamlyn N. Chiu, Yi-Jen Yamanouchi, Sakuya Yoshida, Yukari Abe, Jun-ichi Takahashi, Akihisa Wang, Jing Fujiwara, Keigi Hada, Megumi Int J Mol Sci Article Cultured mammalian cells have been shown to respond to microgravity (μG), but the molecular mechanism is still unknown. The study we report here is focused on molecular and cellular events that occur within a short period of time, which may be related to gravity sensing by cells. Our assumption is that the gravity-sensing mechanism is activated as soon as cells are exposed to any new gravitational environment. To study the molecular events, we exposed cells to simulated μG (SμG) for 15 min, 30 min, 1 h, 2 h, 4 h, and 8 h using a three-dimensional clinostat and made cell lysates, which were then analyzed by reverse phase protein arrays (RPPAs) using a panel of 453 different antibodies. By comparing the RPPA data from cells cultured at 1G with those of cells under SμG, we identified a total of 35 proteomic changes in the SμG samples and found that 20 of these changes took place, mostly transiently, within 30 min. In the 4 h and 8 h samples, there were only two RPPA changes, suggesting that the physiology of these cells is practically indistinguishable from that of cells cultured at 1 G. Among the proteins involved in the early proteomic changes were those that regulate cell motility and cytoskeletal organization. To see whether changes in gravitational environment indeed activate cell motility, we flipped the culture dish upside down (directional change in gravity vector) and studied cell migration and actin cytoskeletal organization. We found that compared with cells grown right-side up, upside-down cells transiently lost stress fibers and rapidly developed lamellipodia, which was supported by increased activity of Ras-related C3 botulinum toxin substrate 1 (Rac1). The upside-down cells also increased their migratory activity. It is possible that these early molecular and cellular events play roles in gravity sensing by mammalian cells. Our study also indicated that these early responses are transient, suggesting that cells appear to adapt physiologically to a new gravitational environment. MDPI 2022-05-30 /pmc/articles/PMC9181735/ /pubmed/35682810 http://dx.doi.org/10.3390/ijms23116127 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ju, Zhenlin
Thomas, Tamlyn N.
Chiu, Yi-Jen
Yamanouchi, Sakuya
Yoshida, Yukari
Abe, Jun-ichi
Takahashi, Akihisa
Wang, Jing
Fujiwara, Keigi
Hada, Megumi
Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector
title Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector
title_full Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector
title_fullStr Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector
title_full_unstemmed Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector
title_short Adaptation and Changes in Actin Dynamics and Cell Motility as Early Responses of Cultured Mammalian Cells to Altered Gravitational Vector
title_sort adaptation and changes in actin dynamics and cell motility as early responses of cultured mammalian cells to altered gravitational vector
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9181735/
https://www.ncbi.nlm.nih.gov/pubmed/35682810
http://dx.doi.org/10.3390/ijms23116127
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