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Cited 95 time in webofscience Cited 102 time in scopus
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Heat-shock dependent oligomeric status alters the function of a plant-specific thioredoxin-like protein, AtTDXopen access

Authors
Lee, Jung RoLee, Seung SikJang, Ho HeeLee, Young MeePark, Jin HoPark, Seong-CheolMoon, Jeong ChanPark, Soo KwonKim, Sun YoungLee, Sun YongChae, Ho ByoungJung, Young JunKim, Woe YeonShin, Mi RimCheong, Gang-WonKim, Min GabKang, Kee RyeonLee, Kyun OhYun, Dae-JinLee, Sang Yeol
Issue Date
7-Apr-2009
Publisher
NATL ACAD SCIENCES
Keywords
disulfide reductase; foldase chaperone; holdase chaperone; functional switching; Yedox
Citation
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, v.106, no.14, pp 5978 - 5983
Pages
6
Indexed
SCIE
SCOPUS
Journal Title
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
Volume
106
Number
14
Start Page
5978
End Page
5983
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/26324
DOI
10.1073/pnas.0811231106
ISSN
0027-8424
1091-6490
Abstract
We found that Arabidopsis AtTDX, a heat-stable and plant-specific thioredoxin (Trx)-like protein, exhibits multiple functions, acting as a disulfide reductase, foldase chaperone, and holdase chaperone. The activity of AtTDX, which contains 3 tetratricopeptide repeat (TPR) domains and a Trx motif, depends on its oligomeric status. The disulfide reductase and foldase chaperone functions predominate when AtTDX occurs in the low molecular weight (LMW) form, whereas the holdase chaperone function predominates in the high molecular weight (HMW) complexes. Because deletion of the TPR domains results in a significant enhancement of AtTDX disulfide reductase activity and complete loss of the holdase chaperone function, our data suggest that the TPR domains of AtTDX block the active site of Trx and play a critical role in promoting the holdase chaperone function. The oligomerization status of AtTDX is reversibly regulated by heat shock, which causes a transition from LMW to HMW complexes with concomitant functional switching from a disulfide reductase and foldase chaperone to a holdase chaperone. Overexpression of AtTDX in Arabidopsis conferred enhanced heat shock resistance to plants, primarily via its holdase chaperone activity.
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