Ma Yuanchun, Wang Jiaoyang, Zhong Yan, Geng Fang, Cramer Grant R, Cheng Zong-Ming Max
The Laboratory of Fruit Crop Systems Biology, College of Horticulture, Nanjing Agricultural University , Nanjing, Jiangsu Province 210095, The People's Republic of China.
Department of Biochemistry and Molecular Biology, University of Nevada , Reno, NV 89557, USA.
Hortic Res. 2015 Jul 15;2:15031. doi: 10.1038/hortres.2015.31. eCollection 2015.
Cation/proton antiporter 1 (CPA1) proteins function as regulators of monovalent ions, pH homeostasis, and other developmental processes in plants. Better understanding of the expression and regulation of CPA1 in plant responses to salinity would help the development of scientific practices in crops worldwide. In this report, we characterized all seven CPA1 family genes in grapevine (Vitis vinifera) in response to short-term osmotic and NaCl stresses. We found that two of the seven genes have subfunctionalized to be differentially expressed in response to NaCl stress in the early stage in different organs, whereas the other five members seem to play little or no role in this response. Specifically, VIT_19s0090g01480 may control Na(+) compartmentalization in grapevine roots; and VIT_05s0020g01960 may influence Na(+) transfer in stems. Based on the dynamics of ion concentrations, electrolyte leakage rates, and CPA1 gene expression in root, stem, and leaf tissues under osmotic and NaCl stresses, we suggest how grapevine responds physiologically and molecularly to the osmotic and ion toxicity of NaCl stress in the short term. This work lays a foundation for future research on the CPA1 gene family regarding its evolutionary history and biological functions for modulating salt responses in grapevine.
阳离子/质子反向转运蛋白1(CPA1)在植物中作为单价离子、pH稳态及其他发育过程的调节因子发挥作用。深入了解CPA1在植物对盐胁迫响应中的表达及调控,将有助于全球农作物科学种植实践的发展。在本报告中,我们对葡萄(Vitis vinifera)中所有7个CPA1家族基因在短期渗透胁迫和NaCl胁迫下的情况进行了表征。我们发现,7个基因中的2个已发生亚功能化,在不同器官早期对NaCl胁迫的响应中差异表达,而其他5个成员在此响应中似乎作用很小或没有作用。具体而言,VIT_19s0090g01480可能控制葡萄根中Na⁺的区室化;VIT_05s0020g01960可能影响茎中Na⁺的转运。基于渗透胁迫和NaCl胁迫下根、茎、叶组织中离子浓度、电解质渗漏率及CPA1基因表达的动态变化,我们提出了葡萄在短期内对NaCl胁迫的渗透和离子毒性的生理及分子响应方式。这项工作为未来关于CPA1基因家族在葡萄中调节盐响应的进化历史和生物学功能的研究奠定了基础。