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整合代谢组学和转录组学分析揭示紫花苜蓿磷缺乏响应途径。

Integrative analysis of the metabolome and transcriptome reveal the phosphate deficiency response pathways of alfalfa.

机构信息

Grassland Agri-Husbandry Research Center, College of Grassland Science, Qingdao Agricultural University, Qingdao, China.

Grassland Agri-Husbandry Research Center, College of Grassland Science, Qingdao Agricultural University, Qingdao, China.

出版信息

Plant Physiol Biochem. 2022 Jan 1;170:49-63. doi: 10.1016/j.plaphy.2021.11.039. Epub 2021 Nov 25.

Abstract

Understanding the mechanisms underlying the responses to inorganic phosphate (Pi) deficiency in alfalfa will help enhance Pi acquisition efficiency and the sustainable use of phosphorous resources. Integrated global metabolomic and transcriptomic analyses of mid-vegetative alfalfa seedlings under 12-day Pi deficiency were conducted. Limited seedling growth were found, including 13.24%, 16.85% and 33.36% decreases in height, root length and photosynthesis, and a 24.10% increase in root-to-shoot ratio on day 12. A total of 322 and 448 differentially abundant metabolites and 1199 and 1061 differentially expressed genes were identified in roots and shoots. Increased (>3.68-fold) inorganic phosphate transporter 1;4 and SPX proteins levels in the roots (>2.15-fold) and shoots (>2.50-fold) were related to Pi absorption and translocation. The levels of phospholipids and Pi-binding carbohydrates and nucleosides were decreased, while those of phosphatases and pyrophosphatases in whole seedlings were induced under reduced Pi. In addition, nitrogen assimilation was affected by inhibiting high-affinity nitrate transporters (NRT2.1 and NRT3.1), and nitrate reductase. Increased delphinidin-3-glucoside might contribute to the gray-green leaves induced by Pi limitation. Stress-induced MYB, WRKY and ERF transcription factors were identified. The responses of alfalfa to Pi deficiency were summarized as local systemic signaling pathways, including root growth, stress-related responses consisting of enzymatic and nonenzymatic systems, and hormone signaling and systemic signaling pathways including Pi recycling and Pi sensing in the whole plant, as well as Pi recovery, and nitrate and metal absorption in the roots. This study provides important information on the molecular mechanism of the response to Pi deficiency in alfalfa.

摘要

理解紫花苜蓿对无机磷(Pi)缺乏的响应机制将有助于提高磷的获取效率和磷资源的可持续利用。对 12 天 Pi 缺乏条件下处于营养生长中期的紫花苜蓿幼苗进行了综合的全球代谢组学和转录组学分析。结果发现,幼苗生长受限,第 12 天高度、根长和光合作用分别下降了 13.24%、16.85%和 33.36%,根冠比增加了 24.10%。在根和地上部分别鉴定到 322 个和 448 个差异丰度代谢物,以及 1199 个和 1061 个差异表达基因。在根(>2.15 倍)和地上部(>2.50 倍)中,无机磷酸盐转运蛋白 1;4 和 SPX 蛋白水平的增加(>3.68 倍)与 Pi 的吸收和转运有关。在整个幼苗中,磷脂和 Pi 结合的碳水化合物和核苷的水平降低,而磷酸酶和焦磷酸酶的水平升高。此外,氮同化受到抑制高亲和力硝酸盐转运体(NRT2.1 和 NRT3.1)和硝酸还原酶的影响。花色苷的增加可能导致 Pi 限制诱导的叶片呈灰绿色。鉴定到应激诱导的 MYB、WRKY 和 ERF 转录因子。总结了紫花苜蓿对 Pi 缺乏的响应,包括根生长的局部全身信号通路、包括酶和非酶系统的应激相关响应,以及包括 Pi 再循环和 Pi 感应的植物全身激素信号和全身信号通路,以及 Pi 回收、硝酸盐和金属吸收在根部。本研究为紫花苜蓿对 Pi 缺乏的响应分子机制提供了重要信息。

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