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In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells

Autophagy has been shown to play essential roles in the growth, development and survival of eukaryotic cells. However, simple methods for quantification and visualization of autophagic flux remain to be developed in living plant cells. Here, we analyzed the autophagic flux in transgenic tobacco BY-2...

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Autores principales: Hanamata, Shigeru, Kurusu, Takamitsu, Okada, Masaaki, Suda, Akiko, Kawamura, Koki, Tsukada, Emi, Kuchitsu, Kazuyuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Landes Bioscience 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3745557/
https://www.ncbi.nlm.nih.gov/pubmed/23123450
http://dx.doi.org/10.4161/psb.22510
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author Hanamata, Shigeru
Kurusu, Takamitsu
Okada, Masaaki
Suda, Akiko
Kawamura, Koki
Tsukada, Emi
Kuchitsu, Kazuyuki
author_facet Hanamata, Shigeru
Kurusu, Takamitsu
Okada, Masaaki
Suda, Akiko
Kawamura, Koki
Tsukada, Emi
Kuchitsu, Kazuyuki
author_sort Hanamata, Shigeru
collection PubMed
description Autophagy has been shown to play essential roles in the growth, development and survival of eukaryotic cells. However, simple methods for quantification and visualization of autophagic flux remain to be developed in living plant cells. Here, we analyzed the autophagic flux in transgenic tobacco BY-2 cell lines expressing fluorescence-tagged NtATG8a as a marker for autophagosome formation. Under sucrose-starved conditions, the number of punctate signals of YFP-NtATG8a increased, and the fluorescence intensity of the cytoplasm and nucleoplasm decreased. Conversely, these changes were not observed in BY-2 cells expressing a C-terminal glycine deletion mutant of the NtATG8a protein (NtATG8aΔG). To monitor the autophagic flux more easily, we generated a transgenic BY-2 cell line expressing NtATG8a fused to a pH-sensitive fluorescent tag, a tandem fusion of the acid-insensitive RFP and the acid-sensitive YFP. In sucrose-rich conditions, both fluorescent signals were detected in the cytoplasm and only weakly in the vacuole. In contrast, under sucrose-starved conditions, the fluorescence intensity of the cytoplasm decreased, and the RFP signal clearly increased in the vacuole, corresponding to the fusion of the autophagosome to the vacuole and translocation of ATG8 from the cytoplasm to the vacuole. Moreover, we introduce a novel simple easy way to monitor the autophagic flux non-invasively by only measuring the ratio of fluorescence of RFP and YFP in the cell suspension using a fluorescent image analyzer without microscopy. The present in vivo quantitative monitoring system for the autophagic flux offers a powerful tool for determining the physiological functions and molecular mechanisms of plant autophagy induced by environmental stimuli.
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spelling pubmed-37455572013-08-29 In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells Hanamata, Shigeru Kurusu, Takamitsu Okada, Masaaki Suda, Akiko Kawamura, Koki Tsukada, Emi Kuchitsu, Kazuyuki Plant Signal Behav Research Paper Autophagy has been shown to play essential roles in the growth, development and survival of eukaryotic cells. However, simple methods for quantification and visualization of autophagic flux remain to be developed in living plant cells. Here, we analyzed the autophagic flux in transgenic tobacco BY-2 cell lines expressing fluorescence-tagged NtATG8a as a marker for autophagosome formation. Under sucrose-starved conditions, the number of punctate signals of YFP-NtATG8a increased, and the fluorescence intensity of the cytoplasm and nucleoplasm decreased. Conversely, these changes were not observed in BY-2 cells expressing a C-terminal glycine deletion mutant of the NtATG8a protein (NtATG8aΔG). To monitor the autophagic flux more easily, we generated a transgenic BY-2 cell line expressing NtATG8a fused to a pH-sensitive fluorescent tag, a tandem fusion of the acid-insensitive RFP and the acid-sensitive YFP. In sucrose-rich conditions, both fluorescent signals were detected in the cytoplasm and only weakly in the vacuole. In contrast, under sucrose-starved conditions, the fluorescence intensity of the cytoplasm decreased, and the RFP signal clearly increased in the vacuole, corresponding to the fusion of the autophagosome to the vacuole and translocation of ATG8 from the cytoplasm to the vacuole. Moreover, we introduce a novel simple easy way to monitor the autophagic flux non-invasively by only measuring the ratio of fluorescence of RFP and YFP in the cell suspension using a fluorescent image analyzer without microscopy. The present in vivo quantitative monitoring system for the autophagic flux offers a powerful tool for determining the physiological functions and molecular mechanisms of plant autophagy induced by environmental stimuli. Landes Bioscience 2013-01-01 2012-11-03 /pmc/articles/PMC3745557/ /pubmed/23123450 http://dx.doi.org/10.4161/psb.22510 Text en Copyright © 2013 Landes Bioscience http://creativecommons.org/licenses/by-nc/3.0/ This is an open-access article licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported License. The article may be redistributed, reproduced, and reused for non-commercial purposes, provided the original source is properly cited.
spellingShingle Research Paper
Hanamata, Shigeru
Kurusu, Takamitsu
Okada, Masaaki
Suda, Akiko
Kawamura, Koki
Tsukada, Emi
Kuchitsu, Kazuyuki
In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells
title In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells
title_full In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells
title_fullStr In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells
title_full_unstemmed In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells
title_short In vivo imaging and quantitative monitoring of autophagic flux in tobacco BY-2 cells
title_sort in vivo imaging and quantitative monitoring of autophagic flux in tobacco by-2 cells
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3745557/
https://www.ncbi.nlm.nih.gov/pubmed/23123450
http://dx.doi.org/10.4161/psb.22510
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