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Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity

The involvement of plant immunophilins in multiple essential processes such as development, various ways of adapting to biotic and abiotic stresses, and photosynthesis has already been established. Previously, research has demonstrated the involvement of three immunophilin genes (AtCYP19-1/ROC3, AtF...

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Autores principales: Abdeeva, Inna A., Pogorelko, Gennady V., Maloshenok, Liliya G., Mokrykova, Maria V., Fursova, Oksana V., Bruskin, Sergey A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6017422/
https://www.ncbi.nlm.nih.gov/pubmed/29671793
http://dx.doi.org/10.3390/molecules23040953
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author Abdeeva, Inna A.
Pogorelko, Gennady V.
Maloshenok, Liliya G.
Mokrykova, Maria V.
Fursova, Oksana V.
Bruskin, Sergey A.
author_facet Abdeeva, Inna A.
Pogorelko, Gennady V.
Maloshenok, Liliya G.
Mokrykova, Maria V.
Fursova, Oksana V.
Bruskin, Sergey A.
author_sort Abdeeva, Inna A.
collection PubMed
description The involvement of plant immunophilins in multiple essential processes such as development, various ways of adapting to biotic and abiotic stresses, and photosynthesis has already been established. Previously, research has demonstrated the involvement of three immunophilin genes (AtCYP19-1/ROC3, AtFKBP65/ROF2, and AtCYP57) in the control of plant response to invasion by various pathogens. Current research attempts to identify host target proteins for each of the selected immunophilins. As a result, candidate interactors have been determined and confirmed using a yeast 2-hybrid (Y2H) system for protein–protein interaction assays. The generation of mutant isoforms of ROC3 and AtCYP57 harboring substituted amino acids in the in silico-predicted active sites became essential to achieving significant binding to its target partners. This data shows that ROF2 targets calcium-dependent lipid-binding domain-containing protein (At1g70790; AT1) and putative protein phosphatase (At2g30020; АТ2), whereas ROC3 interacts with GTP-binding protein (At1g30580; ENGD-1) and RmlC-like cupin (At5g39120). The immunophilin AtCYP57 binds to putative pyruvate decarboxylase-1 (Pdc1) and clathrin adaptor complex-related protein (At5g05010). Identified interactors confirm our previous findings that immunophilins ROC3, ROF2, and AtCYP57 are directly involved with stress response control. Further, these findings extend our understanding of the molecular functional pathways of these immunophilins.
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spelling pubmed-60174222018-11-13 Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity Abdeeva, Inna A. Pogorelko, Gennady V. Maloshenok, Liliya G. Mokrykova, Maria V. Fursova, Oksana V. Bruskin, Sergey A. Molecules Article The involvement of plant immunophilins in multiple essential processes such as development, various ways of adapting to biotic and abiotic stresses, and photosynthesis has already been established. Previously, research has demonstrated the involvement of three immunophilin genes (AtCYP19-1/ROC3, AtFKBP65/ROF2, and AtCYP57) in the control of plant response to invasion by various pathogens. Current research attempts to identify host target proteins for each of the selected immunophilins. As a result, candidate interactors have been determined and confirmed using a yeast 2-hybrid (Y2H) system for protein–protein interaction assays. The generation of mutant isoforms of ROC3 and AtCYP57 harboring substituted amino acids in the in silico-predicted active sites became essential to achieving significant binding to its target partners. This data shows that ROF2 targets calcium-dependent lipid-binding domain-containing protein (At1g70790; AT1) and putative protein phosphatase (At2g30020; АТ2), whereas ROC3 interacts with GTP-binding protein (At1g30580; ENGD-1) and RmlC-like cupin (At5g39120). The immunophilin AtCYP57 binds to putative pyruvate decarboxylase-1 (Pdc1) and clathrin adaptor complex-related protein (At5g05010). Identified interactors confirm our previous findings that immunophilins ROC3, ROF2, and AtCYP57 are directly involved with stress response control. Further, these findings extend our understanding of the molecular functional pathways of these immunophilins. MDPI 2018-04-19 /pmc/articles/PMC6017422/ /pubmed/29671793 http://dx.doi.org/10.3390/molecules23040953 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Abdeeva, Inna A.
Pogorelko, Gennady V.
Maloshenok, Liliya G.
Mokrykova, Maria V.
Fursova, Oksana V.
Bruskin, Sergey A.
Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity
title Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity
title_full Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity
title_fullStr Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity
title_full_unstemmed Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity
title_short Search for Partner Proteins of A. thaliana Immunophilins Involved in the Control of Plant Immunity
title_sort search for partner proteins of a. thaliana immunophilins involved in the control of plant immunity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6017422/
https://www.ncbi.nlm.nih.gov/pubmed/29671793
http://dx.doi.org/10.3390/molecules23040953
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