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Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction

[Image: see text] Terrestrial cyanobacteria, originated from aquatic cyanobacteria, exhibit a unique mechanism for drought adaptation during long-term evolution. To elucidate this diverse adaptive mechanism exhibited by terrestrial cyanobacteria from the post-translation modification aspect, we perf...

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Autores principales: Liang, Wenyu, Yan, Fengkun, Wang, Meng, Li, Xiaoxu, Zhang, Zheng, Ma, Xiaorong, Hu, Jinhong, Wang, Jun, Wang, Lingxia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8173544/
https://www.ncbi.nlm.nih.gov/pubmed/34095650
http://dx.doi.org/10.1021/acsomega.0c06111
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author Liang, Wenyu
Yan, Fengkun
Wang, Meng
Li, Xiaoxu
Zhang, Zheng
Ma, Xiaorong
Hu, Jinhong
Wang, Jun
Wang, Lingxia
author_facet Liang, Wenyu
Yan, Fengkun
Wang, Meng
Li, Xiaoxu
Zhang, Zheng
Ma, Xiaorong
Hu, Jinhong
Wang, Jun
Wang, Lingxia
author_sort Liang, Wenyu
collection PubMed
description [Image: see text] Terrestrial cyanobacteria, originated from aquatic cyanobacteria, exhibit a unique mechanism for drought adaptation during long-term evolution. To elucidate this diverse adaptive mechanism exhibited by terrestrial cyanobacteria from the post-translation modification aspect, we performed a global phosphoproteome analysis on the abundance of phosphoproteins in response to dehydration using Nostoc flagelliforme, a kind of terrestrial cyanobacteria having strong ecological adaptability to xeric environments. A total of 329 phosphopeptides from 271 phosphoproteins with 1168 phosphorylation sites were identified. Among these, 76 differentially expressed phosphorylated proteins (DEPPs) were identified for each dehydration treatment (30, 75, and 100% water loss), compared to control. The identified DEPPs were functionally categorized to be mainly involved in a two-component signaling pathway, photosynthesis, energy and carbohydrate metabolism, and an antioxidant system. We concluded that protein phosphorylation modifications related to the reactive oxygen species (ROS) signaling pathway might play an important role in coordinating enzyme activity involved in the antioxidant system in N. flagelliforme to adapt to dehydration stress. This study provides deep insights into the extensive modification of phosphorylation in terrestrial cyanobacteria using a phosphoproteomic approach, which may help to better understand the role of protein phosphorylation in key cellular mechanisms in terrestrial cyanobacteria in response to dehydration.
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spelling pubmed-81735442021-06-04 Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction Liang, Wenyu Yan, Fengkun Wang, Meng Li, Xiaoxu Zhang, Zheng Ma, Xiaorong Hu, Jinhong Wang, Jun Wang, Lingxia ACS Omega [Image: see text] Terrestrial cyanobacteria, originated from aquatic cyanobacteria, exhibit a unique mechanism for drought adaptation during long-term evolution. To elucidate this diverse adaptive mechanism exhibited by terrestrial cyanobacteria from the post-translation modification aspect, we performed a global phosphoproteome analysis on the abundance of phosphoproteins in response to dehydration using Nostoc flagelliforme, a kind of terrestrial cyanobacteria having strong ecological adaptability to xeric environments. A total of 329 phosphopeptides from 271 phosphoproteins with 1168 phosphorylation sites were identified. Among these, 76 differentially expressed phosphorylated proteins (DEPPs) were identified for each dehydration treatment (30, 75, and 100% water loss), compared to control. The identified DEPPs were functionally categorized to be mainly involved in a two-component signaling pathway, photosynthesis, energy and carbohydrate metabolism, and an antioxidant system. We concluded that protein phosphorylation modifications related to the reactive oxygen species (ROS) signaling pathway might play an important role in coordinating enzyme activity involved in the antioxidant system in N. flagelliforme to adapt to dehydration stress. This study provides deep insights into the extensive modification of phosphorylation in terrestrial cyanobacteria using a phosphoproteomic approach, which may help to better understand the role of protein phosphorylation in key cellular mechanisms in terrestrial cyanobacteria in response to dehydration. American Chemical Society 2021-05-17 /pmc/articles/PMC8173544/ /pubmed/34095650 http://dx.doi.org/10.1021/acsomega.0c06111 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Liang, Wenyu
Yan, Fengkun
Wang, Meng
Li, Xiaoxu
Zhang, Zheng
Ma, Xiaorong
Hu, Jinhong
Wang, Jun
Wang, Lingxia
Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction
title Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction
title_full Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction
title_fullStr Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction
title_full_unstemmed Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction
title_short Comprehensive Phosphoproteomic Analysis of Nostoc flagelliforme in Response to Dehydration Provides Insights into Plant ROS Signaling Transduction
title_sort comprehensive phosphoproteomic analysis of nostoc flagelliforme in response to dehydration provides insights into plant ros signaling transduction
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8173544/
https://www.ncbi.nlm.nih.gov/pubmed/34095650
http://dx.doi.org/10.1021/acsomega.0c06111
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