Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.

Scaffold proteins are known as important cellular regulators that can interact with multiple proteins to modulate diverse signal transduction pathways. RACK1 (Receptor for Activated C Kinase 1) is a WD-40 type scaffold protein, conserved in eukaryotes, from Chlamydymonas to plants and humans, plays...

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Main Authors: Mercy eSabila, Nabanita eKundu, Deana eSmalls, Hemayet eUllah
Format: Article
Language:English
Published: Frontiers Media S.A. 2016-02-01
Series:Frontiers in Plant Science
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fpls.2016.00176/full
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spelling doaj-89ac2abfad2147379f1ae48e8d2bab3e2020-11-24T22:47:16ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2016-02-01710.3389/fpls.2016.00176168703Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.Mercy eSabila0Nabanita eKundu1Deana eSmalls2Hemayet eUllah3Howard UniversityHoward UniversityHoward UniversityHoward UniversityScaffold proteins are known as important cellular regulators that can interact with multiple proteins to modulate diverse signal transduction pathways. RACK1 (Receptor for Activated C Kinase 1) is a WD-40 type scaffold protein, conserved in eukaryotes, from Chlamydymonas to plants and humans, plays regulatory roles in diverse signal transduction and stress response pathways. RACK1 in humans has been implicated in myriads of neuropathological diseases including Alzheimer and alcohol addictions. Model plant Arabidopsis thaliana genome maintains three different RACK1 genes termed RACK1A, RACK1B, and RACK1C with a very high (85-93%) sequence identity between them. Loss of function mutant in Arabidopsis indicates that RACK1 proteins regulate diverse environmental stress signaling pathways including drought and salt stress resistance pathway. Recently deduced crystal structure of Arabidopsis RACK1A- very first among all of the RACK1 proteins, indicates that it can potentially be regulated by post-translational modifications, like tyrosine phosphorylations and sumoylation at key residues. Here we show evidence that RACK1A proteins, depending on diverse environmental stresses, are tyrosine phosphorylated. Utilizing site-directed mutagenesis of key tyrosine residues, it is found that tyrosine phosphorylation can potentially dictate the homo-dimerization of RACK1A proteins. The homo-dimerized RACK1A proteins play a role in providing UV-B induced oxidative stress resistance. It is proposed that RACK1A proteins ability to function as scaffold protein may potentially be regulated by the homo-dimerized RACK1A proteins to mediate diverse stress signaling pathways.http://journal.frontiersin.org/Journal/10.3389/fpls.2016.00176/fullArabidopsisOxidative StressUV-ByeastSplit-ubiquitinRACK1A
collection DOAJ
language English
format Article
sources DOAJ
author Mercy eSabila
Nabanita eKundu
Deana eSmalls
Hemayet eUllah
spellingShingle Mercy eSabila
Nabanita eKundu
Deana eSmalls
Hemayet eUllah
Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.
Frontiers in Plant Science
Arabidopsis
Oxidative Stress
UV-B
yeast
Split-ubiquitin
RACK1A
author_facet Mercy eSabila
Nabanita eKundu
Deana eSmalls
Hemayet eUllah
author_sort Mercy eSabila
title Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.
title_short Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.
title_full Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.
title_fullStr Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.
title_full_unstemmed Tyrosine Phosphorylation Based Homo-dimerization of Arabidopsis RACK1A Proteins Regulates Oxidative Stress Signaling Pathways in yeast.
title_sort tyrosine phosphorylation based homo-dimerization of arabidopsis rack1a proteins regulates oxidative stress signaling pathways in yeast.
publisher Frontiers Media S.A.
series Frontiers in Plant Science
issn 1664-462X
publishDate 2016-02-01
description Scaffold proteins are known as important cellular regulators that can interact with multiple proteins to modulate diverse signal transduction pathways. RACK1 (Receptor for Activated C Kinase 1) is a WD-40 type scaffold protein, conserved in eukaryotes, from Chlamydymonas to plants and humans, plays regulatory roles in diverse signal transduction and stress response pathways. RACK1 in humans has been implicated in myriads of neuropathological diseases including Alzheimer and alcohol addictions. Model plant Arabidopsis thaliana genome maintains three different RACK1 genes termed RACK1A, RACK1B, and RACK1C with a very high (85-93%) sequence identity between them. Loss of function mutant in Arabidopsis indicates that RACK1 proteins regulate diverse environmental stress signaling pathways including drought and salt stress resistance pathway. Recently deduced crystal structure of Arabidopsis RACK1A- very first among all of the RACK1 proteins, indicates that it can potentially be regulated by post-translational modifications, like tyrosine phosphorylations and sumoylation at key residues. Here we show evidence that RACK1A proteins, depending on diverse environmental stresses, are tyrosine phosphorylated. Utilizing site-directed mutagenesis of key tyrosine residues, it is found that tyrosine phosphorylation can potentially dictate the homo-dimerization of RACK1A proteins. The homo-dimerized RACK1A proteins play a role in providing UV-B induced oxidative stress resistance. It is proposed that RACK1A proteins ability to function as scaffold protein may potentially be regulated by the homo-dimerized RACK1A proteins to mediate diverse stress signaling pathways.
topic Arabidopsis
Oxidative Stress
UV-B
yeast
Split-ubiquitin
RACK1A
url http://journal.frontiersin.org/Journal/10.3389/fpls.2016.00176/full
work_keys_str_mv AT mercyesabila tyrosinephosphorylationbasedhomodimerizationofarabidopsisrack1aproteinsregulatesoxidativestresssignalingpathwaysinyeast
AT nabanitaekundu tyrosinephosphorylationbasedhomodimerizationofarabidopsisrack1aproteinsregulatesoxidativestresssignalingpathwaysinyeast
AT deanaesmalls tyrosinephosphorylationbasedhomodimerizationofarabidopsisrack1aproteinsregulatesoxidativestresssignalingpathwaysinyeast
AT hemayeteullah tyrosinephosphorylationbasedhomodimerizationofarabidopsisrack1aproteinsregulatesoxidativestresssignalingpathwaysinyeast
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