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VvNAC17,一种新型的应激响应葡萄(Vitis vinifera L.)NAC 转录因子,增加了对脱落酸的敏感性,并提高了转基因拟南芥的耐盐性、耐冻性和耐旱性。

VvNAC17, a novel stress-responsive grapevine (Vitis vinifera L.) NAC transcription factor, increases sensitivity to abscisic acid and enhances salinity, freezing, and drought tolerance in transgenic Arabidopsis.

机构信息

College of Enology, Northwest A & F University, Yangling, Shaanxi, 712100, China.

Department of Brewing Engineering, Moutai University, Renhuai, Guizhou, 564507, China.

出版信息

Plant Physiol Biochem. 2020 Jan;146:98-111. doi: 10.1016/j.plaphy.2019.11.002. Epub 2019 Nov 5.

Abstract

Drought stress is the primary factor limiting the growth and fruit quality of grapevines worldwide. However, the biological function of the NAC [No apical meristem (NAM), Arabidopsis transcription activation factor (ATAF), Cup-shaped cotyledon (CUC)] transcription factor (TF) in grapevine is not clear. In this study, we reported that VvNAC17, a novel NAC transcription factor, was expressed in various tissues following drought, high temperature (45 °C), freezing (4 °C), salicylic acid (SA), and abscisic acid (ABA) treatments in grapevine. The VvNAC17 protein was localized in the nucleus of Arabidopsis thaliana protoplasts and demonstrated transcriptional activation activities at its C-terminus in yeast. The VvNAC17 gene was overexpressed in Arabidopsis thaliana. Under mannitol and salt stress, the germination rates of the VvNAC17-overexpression lines were higher than those of the wild-type plants, as were the root lengths. The VvNAC17-overexpression lines showed greater tolerance to freezing stress along with a higher survival rate. Following ABA treatment, the seed germination rate and the root length of the VvNAC17-overexpression lines were inhibited, and the stomatal opening and stomatal density were reduced. When subjected to drought and dehydration stress, the VvNAC17-overexpression lines showed improved survival and reduced water loss rates in comparison to the wild-type plants. Under drought conditions, the VvNAC17-overexpression lines had lower malondialdehyde and HO contents, but higher peroxidase, superoxide dismutase, and catalase activities as well as higher proline content. Moreover, the expression of marker genes, including ABI5, AREB1, COR15A, COR47, P5CS, RD22, and RD29A, was up-regulated in the VvNAC17-overexpression lines when subjected to ABA and drought treatments. The results suggest that in transgenic Arabidopsis over-expression of VvNAC17 enhances resistance to drought while up-regulating the expression of ABA- and stress-related genes.

摘要

干旱胁迫是限制全球范围内葡萄生长和果实品质的主要因素。然而,葡萄中的 NAC [无顶端分生组织(NAM)、拟南芥转录激活因子(ATAF)、杯状子叶(CUC)]转录因子(TF)的生物学功能尚不清楚。在本研究中,我们报道了一个新的 NAC 转录因子 VvNAC17,它在葡萄中受到干旱、高温(45°C)、冷冻(4°C)、水杨酸(SA)和脱落酸(ABA)处理后在各种组织中表达。VvNAC17 蛋白定位于拟南芥原生质体的核内,并在酵母中显示其 C 端具有转录激活活性。VvNAC17 基因在拟南芥中过表达。在甘露醇和盐胁迫下,VvNAC17 过表达系的萌发率高于野生型植物,根长也更长。VvNAC17 过表达系对冷冻胁迫的耐受性更强,存活率更高。经 ABA 处理后,VvNAC17 过表达系的种子萌发率和根长受到抑制,气孔开度和气孔密度降低。在干旱和脱水胁迫下,VvNAC17 过表达系的存活率提高,水分损失率降低。在干旱条件下,VvNAC17 过表达系的丙二醛和 HO 含量较低,但过氧化物酶、超氧化物歧化酶和过氧化氢酶活性以及脯氨酸含量较高。此外,在 ABA 和干旱处理下,VvNAC17 过表达系的 ABI5、AREB1、COR15A、COR47、P5CS、RD22 和 RD29A 等标记基因的表达上调。结果表明,在转基因拟南芥中过表达 VvNAC17 增强了对干旱的抗性,同时上调了 ABA 和应激相关基因的表达。

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