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bark 转录组分析揭示了橡胶树(Hevea brasiliensis)割胶后排胶干竭发生和发展涉及的分子机制。

Bark transcriptome analyses reveals molecular mechanisms involved in tapping panel dryness occurrence and development in rubber tree (Hevea brasiliensis).

机构信息

Key Laboratory of Biology and Genetic Resources of Rubber Tree, Ministry of Agriculture and Rural Affairs/Rubber Research Institute, Chinese Academy of Tropical Agricultural Sciences, Haikou, Hainan 571101, China; College of Agriculture, Nanjing Agricultural University, Nanjing, Jiangsu 210095, China.

Beijing Key Laboratory of Environment Friendly Management on Fruit Diseases and Pests in North China, Institute of Plant Protection, Beijing Academy of Agriculture and Forestry Sciences, Beijing 100097, China.

出版信息

Gene. 2024 Jan 20;892:147894. doi: 10.1016/j.gene.2023.147894. Epub 2023 Oct 11.

Abstract

Tapping panel dryness (TPD) has become the mostimportant limiting factor for increasing natural rubber yield, whereas illuminating the molecular mechanisms underlying TPD is the prerequisite for solving the problem of TPD. However, molecular mechanisms underlying TPD are largely unknown. In this study, healthy and different stages of TPD-affected rubber trees were utilized to analyze TPD for the first time. We found that the changing tendencies of key latex physiological parameters were closely related to TPD occurrence and development. To reveal the molecular mechanisms underlying TPD, we sequenced and compared bark transcriptomes among healthy rubber tree, and TPD-affected ones at initial and advanced stages. In total, 8607 genes were identified as TPD-related genes in contrast to healthy rubber tree. According to gene expression profiles, the five samples were divided into three groups including healthy rubber tree, and TPD-affected rubber tree in the initial and advanced stages, which was consistent with the stages of TPD occurrence and development. Interestingly, only asmall proportionof the TPD-related genes were constantly down- or up-regulated with TPD occurrence and development. The TPD-related genes in KEGG pathways significantly enriched were closely associated with protein metabolism, cell division and differentiation, PCD, stress responses, terpene biosynthesis, and various metabolism processes. Moreover, overexpression of HbAPX2 identified as a TPD-related gene enhanced oxidative stress tolerance in S. cerevisiae. The typical symptoms of TPD, partial or complete dry zone (no latex flow) on tapping panel, might attribute to lower IPP available for rubber biosynthesis, and downregulation of the genes in post-IPP steps of rubber biosynthesis and the genes involved in latex flow. Our results not only provide new insights into molecular mechanisms underlying TPD occurrence and development but also contribute to developing effective measures to control TPD in rubber trees.

摘要

割胶排胶干旱(TPD)已成为提高天然橡胶产量的最重要限制因素,而阐明 TPD 的分子机制是解决 TPD 问题的前提。然而,TPD 的分子机制在很大程度上尚不清楚。在这项研究中,利用健康和不同 TPD 影响阶段的橡胶树首次分析了 TPD。我们发现,关键乳胶生理参数的变化趋势与 TPD 的发生和发展密切相关。为了揭示 TPD 的分子机制,我们对健康橡胶树和 TPD 初期和晚期受影响的橡胶树的树皮转录组进行了测序和比较。总共鉴定出 8607 个基因作为与 TPD 相关的基因,与健康橡胶树相比。根据基因表达谱,将五个样本分为三组,包括健康橡胶树和 TPD 初期和晚期受影响的橡胶树,这与 TPD 的发生和发展阶段一致。有趣的是,只有一小部分 TPD 相关基因随着 TPD 的发生和发展持续下调或上调。KEGG 途径中显著富集的 TPD 相关基因与蛋白质代谢、细胞分裂和分化、PCD、应激反应、萜类生物合成以及各种代谢过程密切相关。此外,作为 TPD 相关基因鉴定的 HbAPX2 的过表达增强了 S. cerevisiae 的氧化应激耐受性。TPD 的典型症状,即割胶刀上出现局部或完全干燥带(无乳胶流),可能归因于可用于橡胶生物合成的 IPP 减少,以及橡胶生物合成中 IPP 后步骤的基因下调和乳胶流相关基因的下调。我们的研究结果不仅为 TPD 的发生和发展的分子机制提供了新的见解,也为开发控制橡胶树 TPD 的有效措施做出了贡献。

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