...
首页> 外文期刊>BMC Plant Biology >Drought tolerance of the grapevine, Vitis champinii cv. Ramsey, is associated with higher photosynthesis and greater transcriptomic responsiveness of abscisic acid biosynthesis and signaling
【24h】

Drought tolerance of the grapevine, Vitis champinii cv. Ramsey, is associated with higher photosynthesis and greater transcriptomic responsiveness of abscisic acid biosynthesis and signaling

机译:葡萄葡萄树的耐旱性,血管冠军CV。 Ramsey,具有较高的光合作用和脱落酸生物合成和信号传导的更高的转录组反应性。

获取原文
   

获取外文期刊封面封底 >>

       

摘要

Grapevine is an economically important crop for which yield and berry quality is strongly affected by climate change. Large variations in drought tolerance exist across Vitis species. Some of these species are used as rootstock to enhance abiotic and biotic stress tolerance. In this study, we investigated the physiological and transcriptomic responses to water deficit of four different genotypes that differ in drought tolerance: Ramsey (Vitis champinii), Riparia Gloire (Vitis riparia), Cabernet Sauvignon (Vitis vinifera), and SC2 (Vitis vinifera x Vitis girdiana). Ramsey was particularly more drought tolerant than the other three genotypes. Ramsey maintained a higher stomatal conductance and photosynthesis at equivalent levels of moderate water deficit. We identified specific and common transcriptomic responses shared among the four different Vitis species using RNA sequencing analysis. A weighted gene co-expression analysis identified a water deficit core gene set with the ABA biosynthesis and signaling genes, NCED3, RD29B and ABI1 as potential hub genes. The transcript abundance of many abscisic acid metabolism and signaling genes was strongly increased by water deficit along with genes associated with lipid metabolism, galactinol synthases and MIP family proteins. This response occurred at smaller water deficits in Ramsey and with higher transcript abundance than the other genotypes. A number of aquaporin genes displayed differential and unique responses to water deficit in Ramsey leaves. Genes involved in cysteine biosynthesis and metabolism were constitutively higher in the roots of Ramsey; thus, linking the gene expression of a known factor that influences ABA biosynthesis to this genotype’s increased NCED3 transcript abundance. The drought tolerant Ramsey maintained higher photosynthesis at equivalent water deficit than the three other grapevine genotypes. Ramsey was more responsive to water deficit; its transcriptome responded at smaller water deficits, whereas the other genotypes did not respond until more severe water deficits were reached. There was a common core gene network responding to water deficit for all genotypes that included ABA metabolism and signaling. The gene clusters and sub-networks identified in this work represent interesting gene lists to explore and to better understand drought tolerance molecular mechanisms.
机译:葡萄藤是一种经济上重要的作物,其产量和浆果质量受到气候变化的强烈影响。血管型耐旱性存在大的耐受性。其中一些物种用作砧木以增强非生物和生物应激耐受性。在这项研究中,我们调查了对耐旱性不同的四种不同基因型的生理和转录组的反应:Ramsey(血管蘑菇),Riparia Gloire(血管藻藻),赤霞珠(血管vinifera)和sc2(血管血管血管牙龈)。 Ramsey比其他三种基因型耐受耐受性更大。 Ramsey在等效水平的中度水缺水水平保持较高的气孔电导和光合作用。我们使用RNA测序分析确定了四种不同血管炎物种中共用的特定和常见的转录组反应。加权基因共表达分析鉴定了与ABA生物合成和信号转向基因,NCED3,RD29B和ABI1的水缺陷核心基因作为潜在的轮毂基因。通过水赤字和与脂质代谢,半乳糖醇合成酶和MIP家族蛋白相关的基因强烈地增加了许多脱落酸代谢和信号传导基因的转录性丰富。这种反应发生在Ramsey中的较小水缺陷处,并且具有比其他基因型更高的转录性丰富。许多Aquaporin基因对Ramsey叶片的水赤字显示差异和独特的反应。参与半胱氨酸生物合成和代谢的基因在Ramsey的根系中形成了较高的;因此,将已知因素的基因表达与影响ABA生物合成对该基因型的增加的NCED3转录性丰度的基因表达。耐旱性Ramsey在相同的水赤字中保持着更高的光合作用,而不是其他三种葡萄基因型。 Ramsey对水资源赤字更加敏感;它的转录组在较小的水缺陷处反应,而另一种基因型在达到更严重的水缺陷之前没有作出反应。存在常见的核心基因网络,响应于包括ABA代谢和信号传导的所有基因型的水赤字。本作作品中鉴定的基因集群和子网代表了有趣的基因列表,以探索和更好地理解耐旱性分子机制。

著录项

相似文献

  • 外文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号