Downregulation of N-terminal acetylation triggers ABA-mediated drought responses in Arabidopsis

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作者
Eric Linster
Iwona Stephan
Willy V. Bienvenut
Jodi Maple-Grødem
Line M. Myklebust
Monika Huber
Michael Reichelt
Carsten Sticht
Simon Geir Møller
Thierry Meinnel
Thomas Arnesen
Carmela Giglione
Rüdiger Hell
Markus Wirtz
机构
[1] Centre for Organismal Studies,Department of Molecular Biology
[2] University of Heidelberg,Department of Biological Sciences
[3] Hartmut Hoffmann-Berling International Graduate School,Department of Surgery
[4] University of Heidelberg,undefined
[5] Institute of Integrative Biology of the Cell (I2BC),undefined
[6] CEA,undefined
[7] CNRS,undefined
[8] Université Paris-Sud,undefined
[9] Center for Organelle Research,undefined
[10] University of Stavanger,undefined
[11] University of Bergen,undefined
[12] Max Planck institute for Chemical Ecology,undefined
[13] Center for Medical Research,undefined
[14] St John’s University,undefined
[15] Norwegian Centre for Movement Disorders,undefined
[16] Stavanger University Hospital,undefined
[17] Haukeland University Hospital,undefined
来源
Nature Communications | / 6卷
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摘要
N-terminal acetylation (NTA) catalysed by N-terminal acetyltransferases (Nats) is among the most common protein modifications in eukaryotes, but its significance is still enigmatic. Here we characterize the plant NatA complex and reveal evolutionary conservation of NatA biochemical properties in higher eukaryotes and uncover specific and essential functions of NatA for development, biosynthetic pathways and stress responses in plants. We show that NTA decreases significantly after drought stress, and NatA abundance is rapidly downregulated by the phytohormone abscisic acid. Accordingly, transgenic downregulation of NatA induces the drought stress response and results in strikingly drought resistant plants. Thus, we propose that NTA by the NatA complex acts as a cellular surveillance mechanism during stress and that imprinting of the proteome by NatA is an important switch for the control of metabolism, development and cellular stress responses downstream of abscisic acid.
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