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对……的功能分析揭示了其在玉米对低磷胁迫的响应及籽粒产量调控中的作用。 (原文中“Functional analysis of ”后面缺少具体内容)

Functional analysis of reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize.

作者信息

Zhang Hongkai, Luo Bowen, Liu Jin, Jin Xinwu, Zhang Haiying, Zhong Haixu, Li Binyang, Hu Hongmei, Wang Yikai, Ali Asif, Riaz Asad, Sahito Javed Hussain, Iqbal Muhammad Zafar, Zhang Xiao, Liu Dan, Wu Ling, Gao Duojiang, Gao Shiqiang, Su Shunzong, Gao Shibin

机构信息

State Key Laboratory of Crop Gene Exploration and Utilization in Southwest China, Sichuan Agricultural University, Chengdu, Sichuan, China.

Maize Research Institute, Sichuan Agricultural University, Chengdu, Sichuan, China.

出版信息

Front Plant Sci. 2023 Nov 9;14:1286699. doi: 10.3389/fpls.2023.1286699. eCollection 2023.

Abstract

A previous metabolomic and genome-wide association analysis of maize screened a glucose-6-phosphate 1-epimerase () gene, which responds to low-phosphorus (LP) stress and regulates yield in maize's recombinant inbred lines (RILs). However, the relationship of with phosphorus and yield remained elusive. This study aimed to elucidate the underlying response mechanism of the gene to LP stress and its consequential impact on maize yield. The analysis indicated that ZmG6PE required the Aldose_epim conserved domain to maintain enzyme activity and localized in the nucleus and cell membrane. The mutants showed decreased biomass and sugar contents but had increased starch content in leaves under LP stress conditions. Combined transcriptome and metabolome analysis showed that LP stress activated plant immune regulation in response to the LP stress through carbon metabolism, amino acid metabolism, and fatty acid metabolism. Notably, LP stress significantly reduced the synthesis of glucose-1-phosphate, mannose-6-phosphate, and β-alanine-related metabolites and changed the expression of related genes. regulates LP stress by mediating the expression of and . Overall, this study revealed that affected the number of grains per ear, ear thickness, and ear weight under LP stress, indicating that participates in the phosphate signaling pathway and affects maize yield-related traits through balancing carbohydrates homeostasis.

摘要

先前对玉米的代谢组学和全基因组关联分析筛选出了一个葡萄糖-6-磷酸1-表异构酶()基因,该基因对低磷(LP)胁迫有响应,并在玉米重组自交系(RIL)中调控产量。然而,该基因与磷和产量之间的关系仍不明确。本研究旨在阐明该基因对LP胁迫的潜在响应机制及其对玉米产量的后续影响。分析表明,ZmG6PE需要醛糖表异构保守结构域来维持酶活性,且定位于细胞核和细胞膜。在LP胁迫条件下,该基因的突变体叶片生物量和糖分含量降低,但淀粉含量增加。转录组和代谢组联合分析表明,LP胁迫通过碳代谢、氨基酸代谢和脂肪酸代谢激活植物免疫调节以响应LP胁迫。值得注意的是,LP胁迫显著降低了1-磷酸葡萄糖、6-磷酸甘露糖和β-丙氨酸相关代谢物的合成,并改变了相关基因的表达。该基因通过介导和的表达来调节LP胁迫。总体而言,本研究表明该基因在LP胁迫下影响每穗粒数、穗粗和穗重,表明该基因参与磷信号通路,并通过平衡碳水化合物稳态影响玉米产量相关性状。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f3a6/10666784/efe192bf5ab6/fpls-14-1286699-g001.jpg

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