两个不同菌株的比较蛋白质组学分析为灵芝的耐热机制提供了新的思路

IF 2.4 3区 生物学 Q3 GENETICS & HEREDITY
Manjun Cai , Xiaoxian Wu , Xiaowei Liang , Huiping Hu , Yuanchao Liu , Tianqiao Yong , Xiangmin Li , Chun Xiao , Xiong Gao , Shaodan Chen , Yizhen Xie , Qingping Wu
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引用次数: 0

摘要

热胁迫(HS)是影响真菌生长和代谢的主要非生物因子。然而,灵芝耐热性的遗传基础仍不甚清楚。本研究对21株灵芝G. lingzhi菌株的耐热性进行了研究,筛选出了耐热菌株S566和热敏菌株Z381。收集S566和Z381菌丝体,采用串联质量标记法(TMT)进行蛋白质组分析。共鉴定出1493个差异表达蛋白(DEPs),其中耐热基因型和热敏感基因型分别为376个和395个。在耐热基因型中,上调的蛋白与刺激调节和反应有关。与氧化磷酸化、糖基磷脂酰肌醇锚定生物合成和细胞壁大分子代谢相关的蛋白质在易感基因型中下调。高温处理后,热敏感菌株Z381菌丝生长受到抑制,线粒体嵴和细胞壁完整性严重受损,说明高温处理可能通过破坏细胞壁和线粒体结构抑制Z381菌丝生长。此外,通过分析被认为参与控制耐热性的DEPs的蛋白-蛋白相互作用网络,探索了与耐热性相关的调控途径。本研究为研究灵芝的耐热机理提供了依据,并为培育灵芝等真菌的耐热种质资源库奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative proteomic analysis of two divergent strains provides insights into thermotolerance mechanisms of Ganoderma lingzhi

Heat stress (HS) is a major abiotic factor influencing fungal growth and metabolism. However, the genetic basis of thermotolerance in Ganoderma lingzhi (G. lingzhi) remains largely unknown. In this study, we investigated the thermotolerance capacities of 21 G. lingzhi strains and screened the thermo-tolerant (S566) and heat-sensitive (Z381) strains. The mycelia of S566 and Z381 were collected and subjected to a tandem mass tag (TMT)-based proteome assay. We identified 1493 differentially expressed proteins (DEPs), with 376 and 395 DEPs specific to the heat-tolerant and heat-susceptible genotypes, respectively. In the heat-tolerant genotype, upregulated proteins were linked to stimulus regulation and response. Proteins related to oxidative phosphorylation, glycosylphosphatidylinositol-anchor biosynthesis, and cell wall macromolecule metabolism were downregulated in susceptible genotypes. After HS, the mycelial growth of the heat-sensitive Z381 strain was inhibited, and mitochondrial cristae and cell wall integrity of this strain were severely impaired, suggesting that HS may inhibit mycelial growth of Z381 by damaging the cell wall and mitochondrial structure. Furthermore, thermotolerance-related regulatory pathways were explored by analyzing the protein-protein interaction network of DEPs considered to participate in the controlling the thermotolerance capacity. This study provides insights into G. lingzhi thermotolerance mechanisms and a basis for breeding a thermotolerant germplasm bank for G. lingzhi and other fungi.

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来源期刊
Fungal Genetics and Biology
Fungal Genetics and Biology 生物-遗传学
CiteScore
6.20
自引率
3.30%
发文量
66
审稿时长
85 days
期刊介绍: Fungal Genetics and Biology, formerly known as Experimental Mycology, publishes experimental investigations of fungi and their traditional allies that relate structure and function to growth, reproduction, morphogenesis, and differentiation. This journal especially welcomes studies of gene organization and expression and of developmental processes at the cellular, subcellular, and molecular levels. The journal also includes suitable experimental inquiries into fungal cytology, biochemistry, physiology, genetics, and phylogeny. Fungal Genetics and Biology publishes basic research conducted by mycologists, cell biologists, biochemists, geneticists, and molecular biologists. Research Areas include: • Biochemistry • Cytology • Developmental biology • Evolutionary biology • Genetics • Molecular biology • Phylogeny • Physiology.
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