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拟南芥 G 蛋白 γ 亚基 3(AGG3)组成型或种子特异性过表达导致荠籽油产量和种子产量增加,并提高了荠的耐逆性。

Constitutive or seed-specific overexpression of Arabidopsis G-protein γ subunit 3 (AGG3) results in increased seed and oil production and improved stress tolerance in Camelina sativa.

机构信息

Donald Danforth Plant Science Center, St. Louis, MO, USA.

出版信息

Plant Biotechnol J. 2014 Jan;12(1):49-59. doi: 10.1111/pbi.12115. Epub 2013 Sep 17.

Abstract

Heterotrimeric G-proteins consisting of Gα, Gβ and Gγ subunits play an integral role in mediating multiple signalling pathways in plants. A novel, recently identified plant-specific Gγ protein, AGG3, has been proposed to be an important regulator of organ size and mediator of stress responses in Arabidopsis, whereas its potential homologs in rice are major quantitative trait loci for seed size and panicle branching. To evaluate the role of AGG3 towards seed and oil yield improvement, the gene was overexpressed in Camelina sativa, an oilseed crop of the Brassicaceae family. Analysis of multiple homozygous T4 transgenic Camelina lines showed that constitutive overexpression of AGG3 resulted in faster vegetative as well as reproductive growth accompanied by an increase in photosynthetic efficiency. Moreover, when expressed constitutively or specifically in seed tissue, AGG3 was found to increase seed size, seed mass and seed number per plant by 15%-40%, effectively resulting in significantly higher oil yield per plant. AGG3 overexpressing Camelina plants also exhibited improved stress tolerance. These observations draw a strong link between the roles of AGG3 in regulating two critical yield parameters, seed traits and plant stress responses, and reveal an effective biotechnological tool to dramatically increase yield in agricultural crops.

摘要

三聚体 G 蛋白由 Gα、Gβ 和 Gγ 亚基组成,在介导植物中的多种信号通路中发挥着重要作用。一种新的、最近被鉴定的植物特异性 Gγ 蛋白 AGG3,被认为是拟南芥器官大小的重要调节因子和应激反应的介质,而其在水稻中的潜在同源物则是种子大小和穗分枝的主要数量性状位点。为了评估 AGG3 对提高种子和油产量的作用,该基因在十字花科油料作物荠蓝中过表达。对多个纯合 T4 转基因荠蓝系的分析表明,AGG3 的组成型过表达导致营养生长和生殖生长加快,同时光合作用效率提高。此外,当在种子组织中组成型或特异性表达时,AGG3 被发现可使种子大小、种子质量和每株植物的种子数量增加 15%-40%,从而有效提高每株植物的油产量。过表达 AGG3 的荠蓝植物还表现出对胁迫的耐受性提高。这些观察结果将 AGG3 在调节两个关键产量参数(种子特性和植物应激反应)中的作用紧密联系起来,并揭示了一种有效的生物技术工具,可显著提高农业作物的产量。

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