College of Life Sciences, Jiangsu Collaborative Innovation Center for Solid Organic Waste Resource, Nanjing Agricultural University, Nanjing, 210095, China.
Hunan Research Academy of Environmental Sciences, Changsha, 410128, China.
J Plant Physiol. 2024 Dec;303:154335. doi: 10.1016/j.jplph.2024.154335. Epub 2024 Sep 3.
Although copper (Cu) is an essential microelement for plant growth and development, excess Cu results in a dramatic reduction in crop yield and quality. In the present study, we report that rice germin-like protein 8-7 (OsGLP8-7) plays a crucial role against Cu toxicity. The results showed that the transcriptional expression of the OsGLP8-7 gene was remarkably upregulated in the root and leaf by Cu treatment. The depletion of OsGLP8-7 significantly decreased the elongation of the primary root and plant height of rice under excess Cu. This hypersensitivity of osglp8-7 mutants towards excess Cu may be attributed to the weaker Cu retention in the cell wall compared with wild-type rice (Dongjin, DJ). Consistently, Cu-induced phenylpropanoid biosynthesis was compromised in osglp8-7 mutants based on RNA-Seq and qRT-PCR analysis. Furthermore, osglp8-7 mutants displayed a reduction of lignin deposition in the cell wall, and subsequently altered cell morphology. Osglp8-7 mutant lines also had higher Cu-induced O and HO levels than those of DJ under Cu stress. The results suggest that OsGLP8-7 participates in lignin synthesis for the acclimation to excess Cu. These findings provide a better understanding of a novel mechanism of germin-like proteins in the alleviation of heavy metal toxicity in rice.
虽然铜(Cu)是植物生长和发育所必需的微量元素,但过量的 Cu 会导致作物产量和质量的大幅下降。在本研究中,我们报告称,水稻萌发相关蛋白 8-7(OsGLP8-7)在抵御 Cu 毒性方面发挥着关键作用。结果表明,Cu 处理显著地上调了 OsGLP8-7 基因在根和叶中的转录表达。OsGLP8-7 基因的缺失显著降低了过量 Cu 下水稻初生根的伸长和株高。与野生型水稻(Dongjin,DJ)相比,osglp8-7 突变体在过量 Cu 下表现出更高的敏感性,这可能归因于细胞壁中 Cu 的保留能力较弱。基于 RNA-Seq 和 qRT-PCR 分析,Cu 诱导的苯丙烷生物合成在 osglp8-7 突变体中受到了损害。此外,osglp8-7 突变体的细胞壁中木质素沉积减少,随后改变了细胞形态。在 Cu 胁迫下,osglp8-7 突变体的 O 和 HO 水平也高于 DJ。结果表明,OsGLP8-7 参与了木质素的合成,以适应过量的 Cu。这些发现为萌发相关蛋白在减轻水稻重金属毒性方面的新机制提供了更好的理解。