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The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2

Race-specific disease resistance in plants depends on the presence of resistance (R) genes. Most R genes encode NB-ARC-LRR proteins that carry a C-terminal leucine-rich repeat (LRR). Of the few proteins found to interact with the LRR domain, most have proposed (co)chaperone activity. Here, we report...

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Autores principales: van Ooijen, Gerben, Lukasik, Ewa, van den Burg, Harrold A, Vossen, Jack H, Cornelissen, Ben J C, Takken, Frank L W
Formato: Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2988412/
https://www.ncbi.nlm.nih.gov/pubmed/20497382
http://dx.doi.org/10.1111/j.1365-313X.2010.04260.x
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author van Ooijen, Gerben
Lukasik, Ewa
van den Burg, Harrold A
Vossen, Jack H
Cornelissen, Ben J C
Takken, Frank L W
author_facet van Ooijen, Gerben
Lukasik, Ewa
van den Burg, Harrold A
Vossen, Jack H
Cornelissen, Ben J C
Takken, Frank L W
author_sort van Ooijen, Gerben
collection PubMed
description Race-specific disease resistance in plants depends on the presence of resistance (R) genes. Most R genes encode NB-ARC-LRR proteins that carry a C-terminal leucine-rich repeat (LRR). Of the few proteins found to interact with the LRR domain, most have proposed (co)chaperone activity. Here, we report the identification of RSI2 (Required for Stability of I-2) as a protein that interacts with the LRR domain of the tomato R protein I-2. RSI2 belongs to the family of small heat shock proteins (sHSPs or HSP20s). HSP20s are ATP-independent chaperones that form oligomeric complexes with client proteins to prevent unfolding and subsequent aggregation. Silencing of RSI2-related HSP20s in Nicotiana benthamiana compromised the hypersensitive response that is normally induced by auto-active variants of I-2 and Mi-1, a second tomato R protein. As many HSP20s have chaperone properties, the involvement of RSI2 and other R protein (co)chaperones in I-2 and Mi-1 protein stability was examined. RSI2 silencing compromised the accumulation of full-length I-2 in planta, but did not affect Mi-1 levels. Silencing of heat shock protein 90 (HSP90) and SGT1 led to an almost complete loss of full-length I-2 accumulation and a reduction in Mi-1 protein levels. In contrast to SGT1 and HSP90, RSI2 silencing led to accumulation of I-2 breakdown products. This difference suggests that RSI2 and HSP90/SGT1 chaperone the I-2 protein using different molecular mechanisms. We conclude that I-2 protein function requires RSI2, either through direct interaction with, and stabilization of I-2 protein or by affecting signalling components involved in initiation of the hypersensitive response.
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spelling pubmed-29884122010-12-06 The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2 van Ooijen, Gerben Lukasik, Ewa van den Burg, Harrold A Vossen, Jack H Cornelissen, Ben J C Takken, Frank L W Plant J Original Articles Race-specific disease resistance in plants depends on the presence of resistance (R) genes. Most R genes encode NB-ARC-LRR proteins that carry a C-terminal leucine-rich repeat (LRR). Of the few proteins found to interact with the LRR domain, most have proposed (co)chaperone activity. Here, we report the identification of RSI2 (Required for Stability of I-2) as a protein that interacts with the LRR domain of the tomato R protein I-2. RSI2 belongs to the family of small heat shock proteins (sHSPs or HSP20s). HSP20s are ATP-independent chaperones that form oligomeric complexes with client proteins to prevent unfolding and subsequent aggregation. Silencing of RSI2-related HSP20s in Nicotiana benthamiana compromised the hypersensitive response that is normally induced by auto-active variants of I-2 and Mi-1, a second tomato R protein. As many HSP20s have chaperone properties, the involvement of RSI2 and other R protein (co)chaperones in I-2 and Mi-1 protein stability was examined. RSI2 silencing compromised the accumulation of full-length I-2 in planta, but did not affect Mi-1 levels. Silencing of heat shock protein 90 (HSP90) and SGT1 led to an almost complete loss of full-length I-2 accumulation and a reduction in Mi-1 protein levels. In contrast to SGT1 and HSP90, RSI2 silencing led to accumulation of I-2 breakdown products. This difference suggests that RSI2 and HSP90/SGT1 chaperone the I-2 protein using different molecular mechanisms. We conclude that I-2 protein function requires RSI2, either through direct interaction with, and stabilization of I-2 protein or by affecting signalling components involved in initiation of the hypersensitive response. Blackwell Publishing Ltd 2010-08 2010-06-16 /pmc/articles/PMC2988412/ /pubmed/20497382 http://dx.doi.org/10.1111/j.1365-313X.2010.04260.x Text en Journal compilation © 2010 Blackwell Publishing Ltd and the Society for Experimental Biology http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Original Articles
van Ooijen, Gerben
Lukasik, Ewa
van den Burg, Harrold A
Vossen, Jack H
Cornelissen, Ben J C
Takken, Frank L W
The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2
title The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2
title_full The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2
title_fullStr The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2
title_full_unstemmed The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2
title_short The small heat shock protein 20 RSI2 interacts with and is required for stability and function of tomato resistance protein I-2
title_sort small heat shock protein 20 rsi2 interacts with and is required for stability and function of tomato resistance protein i-2
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2988412/
https://www.ncbi.nlm.nih.gov/pubmed/20497382
http://dx.doi.org/10.1111/j.1365-313X.2010.04260.x
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