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Thioredoxin Reductase Type C (NTRC) Orchestrates Enhanced Thermotolerance to Arabidopsis by Its Redox-Dependent Holdase Chaperone Functionopen access

Authors
Chae, Ho ByoungMoon, Jeong ChanShin, Mi RimChi, Yong HunJung, Young JunLee, Sun YongNawkar, Ganesh M.Jung, Hyun SukHyun, Jae KyungKim, Woe YeonKang, Chang HoYun, Dae-JinLee, Kyun OhLee, Sang Yeol
Issue Date
Mar-2013
Publisher
CELL PRESS
Keywords
NADPH-thioredoxin reductase type C (NTRC); oligomeric complexes; disulfide reductase; foldase and holdase chaperone functions; redox; thermotolerance
Citation
MOLECULAR PLANT, v.6, no.2, pp 323 - 336
Pages
14
Indexed
SCIE
SCOPUS
Journal Title
MOLECULAR PLANT
Volume
6
Number
2
Start Page
323
End Page
336
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/20791
DOI
10.1093/mp/sss105
ISSN
1674-2052
1752-9867
Abstract
Genevestigator analysis has indicated heat shock induction of transcripts for NADPH-thioredoxin reductase, type C (NTRC) in the light. Here we show overexpression of NTRC in Arabidopsis (NTRCE) resulting in enhanced tolerance to heat shock, whereas NTRC knockout mutant plants (ntrc1) exhibit a temperature sensitive phenotype. To investigate the underlying mechanism of this phenotype, we analyzed the proteins biochemical properties and protein structure. NTRC assembles into homopolymeric structures of varying complexity with functions as a disulfide reductase, a foldase chaperone, and as a holdase chaperone. The multiple functions of NTRC are closely correlated with protein structure. Complexes of higher molecular weight (HMW) showed stronger activity as a holdase chaperone, while low molecular weight (LMW) species exhibited weaker holdase chaperone activity but stronger disulfide reductase and foldase chaperone activities. Heat shock converted LMW proteins into HMW complexes. Mutations of the two active site Cys residues of NTRC into Ser (C217/454S-NTRC) led to a complete inactivation of its disulfide reductase and foldase chaperone functions, but conferred only a slight decrease in its holdase chaperone function. The overexpression of the mutated C217/454S-NTRC provided Arabidopsis with a similar degree of thermotolerance compared with that of NTRCE plants. However, after prolonged incubation under heat shock, NTRCE plants tolerated the stress to a higher degree than C217/454S-NTRCE plants. The results suggest that the heat shock-mediated holdase chaperone function of NTRC is responsible for the increased thermotolerance of Arabidopsis and the activity is significantly supported by NADPH.
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