Donald Danforth Plant Science Center, 975 N. Warson Road, St. Louis, MO 63132, USA.
Plant Cell Physiol. 2023 Oct 16;64(10):1243-1256. doi: 10.1093/pcp/pcad093.
The vascular plant-specific, cysteine-rich type III Gγ proteins, which are integral components of the heterotrimeric G-protein complex, play crucial roles in regulating a multitude of plant processes, including those related to crop yield and responses to abiotic stresses. The presence of multiple copies of type III Gγ proteins in most plants and a propensity of the presence of specific truncated alleles in many cultivated crops present an ambiguous picture of their roles in modulating specific responses. AGG3 is a canonical type III Gγ protein of Arabidopsis, and its overexpression in additional model crops offers the opportunity to directly evaluate the effects of protein expression levels on plant phenotypes. We have shown that AGG3 overexpression in the monocot model Setaria viridis leads to an increase in seed yield. In this study, we have investigated the response of the S. viridis plants overexpressing AGG3 to heat stress (HS), one of the most important abiotic stresses affecting crops worldwide. We show that a short span of HS at a crucial developmental time point has a significant effect on plant yield in the later stages. We also show that plants with higher levels of AGG3 are more tolerant to HS. This is attributed to an altered regulation of stress-responsive genes and improved modulation of the photosynthetic efficiency during the stress. Overall, our results confirm that AGG3 plays a crucial role in regulating plant responses to unfavorable environmental conditions and may contribute positively to avoiding crop yield losses.
植物特有的富含半胱氨酸的 III 型 Gγ 蛋白是异三聚体 G 蛋白复合物的组成部分,在调节多种植物过程中发挥着关键作用,包括与作物产量和对非生物胁迫的反应相关的过程。大多数植物中存在多个 III 型 Gγ 蛋白的拷贝,并且许多栽培作物中存在特定截短等位基因的倾向,这使得它们在调节特定反应中的作用变得模糊不清。AGG3 是拟南芥的一种典型的 III 型 Gγ 蛋白,其在其他模式作物中的过表达提供了直接评估蛋白质表达水平对植物表型影响的机会。我们已经表明,AGG3 在单子叶模式植物柳枝稷中的过表达导致种子产量增加。在这项研究中,我们研究了过表达 AGG3 的柳枝稷植物对热胁迫(HS)的反应,HS 是影响全球作物的最重要非生物胁迫之一。我们表明,在关键发育时间点短暂的 HS 对后期植物产量有显著影响。我们还表明,AGG3 水平较高的植物对 HS 的耐受性更强。这归因于对胁迫响应基因的调节改变和在胁迫期间对光合作用效率的更好调节。总体而言,我们的结果证实 AGG3 在调节植物对不利环境条件的反应中起着至关重要的作用,并可能有助于避免作物产量损失。