Arid
DOI10.1371/journal.pone.0202808
Conformational plasticity of the intrinsically disordered protein ASR1 modulates its function as a drought stress-responsive gene
Wetzler, Diana E.1,2; Fuchs Wightman, Federico3,4; Bucci, Hernan A.1,2; Rinaldi, Jimena5,6; Caramelo, Julio J.1,5,6; Iusem, Norberto D.3,4; Ricardi, Martiniano M.3,4
通讯作者Wetzler, Diana E. ; Ricardi, Martiniano M.
来源期刊PLOS ONE
ISSN1932-6203
出版年2018
卷号13期号:8
英文摘要

Plants in arid zones are constantly exposed to drought stress. The ASR protein family (Abscisic, Stress, Ripening) -a subgroup of the late embryogenesis abundant superfamily-is involved in the water stress response and adaptation to dry environments. Tomato ASR1, as well as other members of this family, is an intrinsically disordered protein (IDP) that functions as a transcription factor and a chaperone. Here we employed different biophysical techniques to perform a deep in vitro characterization of ASR1 as an IDP and showed how both environmental factors and in vivo targets modulate its folding. We report that ASR1 adopts different conformations such as a-helix or polyproline type II in response to environmental changes. Low temperatures and low pH promote the polyproline type II conformation (PII). While NaCl increases PII content and slightly destabilizes alpha-helix conformation, PEG and glycerol have an important stabilizing effect of a-helix conformation. The binding of Zn2+ in the low micromolar range promotes a-helix folding, while extra Zn2+ results in homodimerization. The ASR1-DNA binding is sequence specific and dependent on Zn2+. ASR1 chaperone activity does not change upon the structure induction triggered by the addition of Zn2+. Furthermore, trehalose, which has no effect on the ASR1 structure by itself, showed a synergistic effect on the ASR1-driven heat shock protection towards the reporter enzyme citrate synthase (CS). These observations prompted the development of a FRET reporter to sense ASR1 folding in vivo. Its performance was confirmed in Escherichia coli under saline and osmotic stress conditions, representing a promising probe to be used in plant cells. Overall, this work supports the notion that ASR1 plasticity is a key feature that facilitates its response to drought stress and its interaction with specific targets.


类型Article
语种英语
国家Argentina
收录类别SCI-E
WOS记录号WOS:000442800100131
WOS关键词PLANT-SPECIFIC PROTEIN ; DNA-BINDING ; CIRCULAR-DICHROISM ; SENSOR ; HELIX ; POLYPEPTIDES ; REGIONS ; ROLES ; STATE ; SHOCK
WOS类目Multidisciplinary Sciences
WOS研究方向Science & Technology - Other Topics
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/212293
作者单位1.Univ Buenos Aires, Fac Ciencias Exactas & Nat, Dept Quim Biol, Buenos Aires, DF, Argentina;
2.Univ Buenos Aires, Inst Quim Biol, CONICET, Fac Ciencias Exactas & Nat IQUIBICEN, Buenos Aires, DF, Argentina;
3.Univ Buenos Aires, Fac Ciencias Exactas & Nat, Dept Fisiol & Biol Mol & Celular FBMC, Buenos Aires, DF, Argentina;
4.Univ Buenos Aires, CONICET, Inst Fisiol Biol Mol & Neurociencias IFIBYNE, Buenos Aires, DF, Argentina;
5.Fdn Inst Leloir, Buenos Aires, DF, Argentina;
6.Consejo Nacl Invest Cient & Tecn, IIBBA, Buenos Aires, DF, Argentina
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GB/T 7714
Wetzler, Diana E.,Fuchs Wightman, Federico,Bucci, Hernan A.,et al. Conformational plasticity of the intrinsically disordered protein ASR1 modulates its function as a drought stress-responsive gene[J],2018,13(8).
APA Wetzler, Diana E..,Fuchs Wightman, Federico.,Bucci, Hernan A..,Rinaldi, Jimena.,Caramelo, Julio J..,...&Ricardi, Martiniano M..(2018).Conformational plasticity of the intrinsically disordered protein ASR1 modulates its function as a drought stress-responsive gene.PLOS ONE,13(8).
MLA Wetzler, Diana E.,et al."Conformational plasticity of the intrinsically disordered protein ASR1 modulates its function as a drought stress-responsive gene".PLOS ONE 13.8(2018).
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