New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.

BACKGROUND AND AIMS: Copper (Cu) is an essential micronutrient for plants. However, excess amounts of Cu are toxic and result in a wide range of harmful effects on the physiological and biochemical processes of plants. Cell wall has a crucial role in plant defense response to toxic metals. To date,...

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Main Authors: Tingting Liu, Chaofeng Shen, Yi Wang, Canke Huang, Jiyan Shi
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4207692?pdf=render
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spelling doaj-6e24352433a44548968118944afd68392020-11-25T02:33:20ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-01910e10957310.1371/journal.pone.0109573New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.Tingting LiuChaofeng ShenYi WangCanke HuangJiyan ShiBACKGROUND AND AIMS: Copper (Cu) is an essential micronutrient for plants. However, excess amounts of Cu are toxic and result in a wide range of harmful effects on the physiological and biochemical processes of plants. Cell wall has a crucial role in plant defense response to toxic metals. To date, the process of cell wall response to Cu and the detoxification mechanism have not been well documented at the proteomic level. METHODS: An recently developed 6-plex Tandem Mass Tag was used for relative and absolute quantitation methods to achieve a comprehensive understanding of Cu tolerance/detoxification molecular mechanisms in the cell wall. LC-MS/MS approach was performed to analyze the Cu-responsive cell wall proteins and polysaccharides. KEY RESULTS: The majority of the 22 up-regulated proteins were involved in the antioxidant defense pathway, cell wall polysaccharide remodeling, and cell metabolism process. Changes in polysaccharide amount, composition, and distribution could offer more binding sites for Cu ions. The 33 down-regulated proteins were involved in the signal pathway, energy, and protein synthesis. CONCLUSIONS: Based on the abundant changes in proteins and polysaccharides, and their putative functions, a possible protein interaction network can provide new insights into Cu stress response in root cell wall. Cu can facilitate further functional research on target proteins associated with metal response in the cell wall.http://europepmc.org/articles/PMC4207692?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Tingting Liu
Chaofeng Shen
Yi Wang
Canke Huang
Jiyan Shi
spellingShingle Tingting Liu
Chaofeng Shen
Yi Wang
Canke Huang
Jiyan Shi
New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.
PLoS ONE
author_facet Tingting Liu
Chaofeng Shen
Yi Wang
Canke Huang
Jiyan Shi
author_sort Tingting Liu
title New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.
title_short New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.
title_full New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.
title_fullStr New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.
title_full_unstemmed New insights into regulation of proteome and polysaccharide in cell wall of Elsholtzia splendens in response to copper stress.
title_sort new insights into regulation of proteome and polysaccharide in cell wall of elsholtzia splendens in response to copper stress.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description BACKGROUND AND AIMS: Copper (Cu) is an essential micronutrient for plants. However, excess amounts of Cu are toxic and result in a wide range of harmful effects on the physiological and biochemical processes of plants. Cell wall has a crucial role in plant defense response to toxic metals. To date, the process of cell wall response to Cu and the detoxification mechanism have not been well documented at the proteomic level. METHODS: An recently developed 6-plex Tandem Mass Tag was used for relative and absolute quantitation methods to achieve a comprehensive understanding of Cu tolerance/detoxification molecular mechanisms in the cell wall. LC-MS/MS approach was performed to analyze the Cu-responsive cell wall proteins and polysaccharides. KEY RESULTS: The majority of the 22 up-regulated proteins were involved in the antioxidant defense pathway, cell wall polysaccharide remodeling, and cell metabolism process. Changes in polysaccharide amount, composition, and distribution could offer more binding sites for Cu ions. The 33 down-regulated proteins were involved in the signal pathway, energy, and protein synthesis. CONCLUSIONS: Based on the abundant changes in proteins and polysaccharides, and their putative functions, a possible protein interaction network can provide new insights into Cu stress response in root cell wall. Cu can facilitate further functional research on target proteins associated with metal response in the cell wall.
url http://europepmc.org/articles/PMC4207692?pdf=render
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