文献检索文档翻译深度研究
Suppr Zotero 插件Zotero 插件
邀请有礼套餐&价格历史记录

新学期,新优惠

限时优惠:9月1日-9月22日

30天高级会员仅需29元

1天体验卡首发特惠仅需5.99元

了解详情
不再提醒
插件&应用
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
高级版
套餐订阅购买积分包
AI 工具
文献检索文档翻译深度研究
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2025

转录组在严重脱水过程中的重编程导致复苏植物 Haberlea rhodopensis 发生生理和代谢变化。

Transcriptome reprogramming during severe dehydration contributes to physiological and metabolic changes in the resurrection plant Haberlea rhodopensis.

机构信息

Key Laboratory of Plant Resources, Institute of Botany, Chinese Academy of Sciences, Beijing, 100093, China.

Facility Horticulture Laboratory of Universities in Shandong, Weifang University of Science and Technology, Shouguang, 262700, China.

出版信息

BMC Plant Biol. 2018 Dec 13;18(1):351. doi: 10.1186/s12870-018-1566-0.


DOI:10.1186/s12870-018-1566-0
PMID:30541446
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6291977/
Abstract

BACKGROUND: Water shortage is a major factor that harms agriculture and ecosystems worldwide. Plants display various levels of tolerance to water deficit, but only resurrection plants can survive full desiccation of their vegetative tissues. Haberlea rhodopensis, an endemic plant of the Balkans, is one of the few resurrection plants found in Europe. We performed transcriptomic analyses of this species under slight, severe and full dehydration and recovery to investigate the dynamics of gene expression and associate them with existing physiological and metabolomics data. RESULTS: De novo assembly yielded a total of 142,479 unigenes with an average sequence length of 1034 nt. Among them, 18,110 unigenes were differentially expressed. Hierarchical clustering of all differentially expressed genes resulted in seven clusters of dynamic expression patterns. The most significant expression changes, involving more than 15,000 genes, started at severe dehydration (~ 20% relative water content) and were partially maintained at full desiccation (< 10% relative water content). More than a hundred pathways were enriched and functionally organized in a GO/pathway network at the severe dehydration stage. Transcriptomic changes in key pathways were analyzed and discussed in relation to metabolic processes, signal transduction, quality control of protein and DNA repair in this plant during dehydration and rehydration. CONCLUSION: Reprograming of the transcriptome occurs during severe dehydration, resulting in a profound alteration of metabolism toward alternative energy supply, hormone signal transduction, and prevention of DNA/protein damage under very low cellular water content, underlying the observed physiological and metabolic responses and the resurrection behavior of H. rhodopensis.

摘要

背景:水资源短缺是全球范围内危害农业和生态系统的主要因素。植物对水分亏缺表现出不同程度的耐受性,但只有复苏植物才能在其营养组织完全干燥的情况下存活。Haberlea rhodopensis 是巴尔干半岛特有的植物,是欧洲少数几种复苏植物之一。我们对该物种在轻度、重度和完全脱水及恢复过程中的转录组进行了分析,以研究基因表达的动态,并将其与现有的生理和代谢组学数据相关联。

结果:从头组装共产生了 142479 条平均长度为 1034nt 的 unigenes。其中,18110 条 unigenes差异表达。所有差异表达基因的层次聚类导致 7 个动态表达模式簇。最显著的表达变化涉及 15000 多个基因,始于重度脱水(~20%相对含水量),并在完全干燥(<10%相对含水量)时部分维持。在重度脱水阶段,100 多个途径被富集,并在一个 GO/途径网络中进行了功能组织。在脱水和再水合过程中,对关键途径的转录组变化进行了分析和讨论,涉及代谢过程、信号转导、蛋白质质量控制和 DNA 修复。

结论:在重度脱水过程中,转录组发生了重新编程,导致代谢向替代能源供应、激素信号转导和非常低的细胞含水量下的 DNA/蛋白质损伤预防发生深刻改变,这解释了观察到的生理和代谢反应以及 H. rhodopensis 的复苏行为。

相似文献

[1]
Transcriptome reprogramming during severe dehydration contributes to physiological and metabolic changes in the resurrection plant Haberlea rhodopensis.

BMC Plant Biol. 2018-12-13

[2]
Analysis of the complete mitochondrial genome sequence of the resurrection plant Haberlea rhodopensis.

Acta Biochim Pol. 2021-5-12

[3]
Dynamics of chromatin accessibility and genome wide control of desiccation tolerance in the resurrection plant Haberlea rhodopensis.

BMC Plant Biol. 2023-12-19

[4]
Sugar ratios, glutathione redox status and phenols in the resurrection species Haberlea rhodopensis and the closely related non-resurrection species Chirita eberhardtii.

Plant Biol (Stuttg). 2011-2-15

[5]
Protective Strategies of for Acquisition of Freezing Tolerance: Interaction between Dehydration and Low Temperature.

Int J Mol Sci. 2022-11-30

[6]
Metabolic profiling of the resurrection plant Haberlea rhodopensis during desiccation and recovery.

Physiol Plant. 2014-12

[7]
Molecular mechanisms of desiccation tolerance in the resurrection glacial relic Haberlea rhodopensis.

Cell Mol Life Sci. 2012-9-21

[8]
Application of a diffusion model to measure ion leakage of resurrection plant leaves undergoing desiccation.

Plant Physiol Biochem. 2018-2-13

[9]
Common and Specific Mechanisms of Desiccation Tolerance in Two Gesneriaceae Resurrection Plants. Multiomics Evidences.

Front Plant Sci. 2019-9-4

[10]
Water molecular structure underpins extreme desiccation tolerance of the resurrection plant Haberlea rhodopensis.

Sci Rep. 2019-2-28

引用本文的文献

[1]
Microbial survival strategies in desiccated roots of .

Front Microbiol. 2025-3-28

[2]
Limiting steps and the contribution of alternative electron flow pathways in the recovery of the photosynthetic functions after freezing-induced desiccation of .

Photosynthetica. 2022-3-7

[3]
Desiccation tolerance in the resurrection plant involves changes in redox metabolism and carotenoid oxidation.

Front Plant Sci. 2024-2-15

[4]
Resurrection Plants-A Valuable Source of Natural Bioactive Compounds: From Word-of-Mouth to Scientifically Proven Sustainable Use.

Metabolites. 2024-2-7

[5]
Specific metabolic and cellular mechanisms of the vegetative desiccation tolerance in resurrection plants for adaptation to extreme dryness.

Planta. 2024-1-29

[6]
Dynamics of chromatin accessibility and genome wide control of desiccation tolerance in the resurrection plant Haberlea rhodopensis.

BMC Plant Biol. 2023-12-19

[7]
Antioxidative Defense, Suppressed Nitric Oxide Accumulation, and Synthesis of Protective Proteins in Roots and Leaves Contribute to the Desiccation Tolerance of the Resurrection Plant .

Plants (Basel). 2023-7-31

[8]
Acquisition of Freezing Tolerance of Resurrection Species from Gesneriaceae, a Comparative Study.

Plants (Basel). 2023-5-5

[9]
Transcriptional profiling analysis providing insights into desiccation tolerance mechanisms of the desert moss .

Front Plant Sci. 2023-2-23

[10]
Protein Changes in Shade and Sun Leaves during Dehydration at Optimal and Low Temperatures.

Plants (Basel). 2023-1-15

本文引用的文献

[1]
Protection of photosynthesis in desiccation-tolerant resurrection plants.

J Plant Physiol. 2018-5-12

[2]
A Conserved Carbon Starvation Response Underlies Bud Dormancy in Woody and Herbaceous Species.

Front Plant Sci. 2017-5-23

[3]
A Central Role for Triacylglycerol in Membrane Lipid Breakdown, Fatty Acid -Oxidation, and Plant Survival under Extended Darkness.

Plant Physiol. 2017-7

[4]
Sporobolus stapfianus: Insights into desiccation tolerance in the resurrection grasses from linking transcriptomics to metabolomics.

BMC Plant Biol. 2017-3-28

[5]
A footprint of desiccation tolerance in the genome of Xerophyta viscosa.

Nat Plants. 2017-3-27

[6]
Chloroplast Genome Analysis of Resurrection Tertiary Relict Highlights Genes Important for Desiccation Stress Response.

Front Plant Sci. 2017-2-20

[7]
DNA damage checkpoint kinase ATM regulates germination and maintains genome stability in seeds.

Proc Natl Acad Sci U S A. 2016-8-23

[8]
Alterations in the sugar metabolism and in the vacuolar system of mesophyll cells contribute to the desiccation tolerance of Haberlea rhodopensis ecotypes.

Protoplasma. 2017-1

[9]
Cyclic electron flow provides acclimatory plasticity for the photosynthetic machinery under various environmental conditions and developmental stages.

Front Plant Sci. 2015-9-28

[10]
In vivo spectroscopy and NMR metabolite fingerprinting approaches to connect the dynamics of photosynthetic and metabolic phenotypes in resurrection plant Haberlea rhodopensis during desiccation and recovery.

Front Plant Sci. 2015-7-21

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

推荐工具

医学文档翻译智能文献检索