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首页> 外文期刊>Journal of proteomics >High temperature-induced proteomic and metabolomic profiles of a thermophilic Bacillus manusensis isolated from the deep-sea hydrothermal field of Manus Basin
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High temperature-induced proteomic and metabolomic profiles of a thermophilic Bacillus manusensis isolated from the deep-sea hydrothermal field of Manus Basin

机译:高温诱导的嗜热芽孢杆菌的蛋白质组学和代谢多种子谱与曼努斯盆地深海水热场分离的嗜热芽孢杆菌

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摘要

Thermophiles are organisms that grow optimally at 50 degrees C-80 degrees C and studies on the survival mechanisms of thermophiles have drawn great attention. Bacillus manusensis S50-6 is the type strain of a new thermophilic species isolated from hydrothermal vent in Manus Basin. In this study, we examined the growth and global responses of S50-6 to high temperature on molecular level using multi-omics method (genomics, proteomics, and metabolomics). S50-6 grew optimally at 50 degrees C (Favorable, F) and poorly at 65 degrees C (Non-Favorable, NF); it formed spores at F but not at NF condition. At NF condition, S50-6 formed long filaments containing undivided cells. A total of 1621 proteins were identified at F and NF conditions, and 613 proteins were differentially expressed between F and NF. At NF condition, proteins of glycolysis, rRNA mature and modification, and DNA/protein repair were up-regulated, whereas proteins of sporulation and amino acid/nucleotide metabolism were down-regulated. Consistently, many metabolites associated with amino acid and nucleotide metabolic processes were down-regulated at NF condition. Our results revealed molecular strategies of deep-sea B. manusensis to survive at unfavorable high temperature and provided new insights into the thermotolerant mechanisms of thermophiles. Significance: In this study, we systematically characterized the genomic, proteomic and metabolomic profiles of a thermophilic deep-sea Bacillus manusensis under different temperatures. Based on these analysis, we propose a model delineating the global responses of B. manusensis to unfavorable high temperature. Under unfavorable high temperature, glycolysis is a more important energy supply pathway; protein synthesis is subjected to more stringent regulation by increased tRNA modification; protein and DNA repair associated proteins are enhanced in production to promote heat survival. In contrast, energy-costing pathways, such as sporulation, are repressed, and basic metabolic pathways, such as amino acid and nucleotide metabolisms, are slowed down. Our results provide new insights into the thermotolerant mechanisms of thermophilic Bacillus.
机译:嗜热是有机体,其在50摄氏度最佳地增长,并研究了嗜热器的存活机制引起了极大的关注。芽孢杆菌Manusensis S50-6是从曼努斯盆地中水热通风口分离的新嗜热物种的类型菌株。在这项研究中,我们使用多常规方法(基因组学,蛋白质组学和代谢组学)检查了S50-6对分子水平的高温的生长和全局反应。 S50-6以50摄氏度(有利,F)和65摄氏度不良而最佳地增长(非有利,NF);它在f处形成孢子,但不在NF条件下。在NF条件下,S50-6形成含有未分化细胞的长丝。在F和NF条件下鉴定了总共1621个蛋白质,并且在F和NF之间差异表达了613个蛋白质。在NF条件下,上调糖酵解,rRNA成熟和修饰和DNA /蛋白质修复的蛋白质,而孢子蛋白和氨基酸/核苷酸代谢的蛋白质被下调。一致地,在NF条件下对氨基酸和核苷酸代谢过程相关的许多代谢物。我们的结果揭示了深海B. Manusensis的分子策略,以在不利的高温下存活,并为热电偶的热电音机制提供了新的见解。意义:在本研究中,我们系统地表征了在不同温度下嗜热深海芽孢杆菌的基因组,蛋白质组学和代谢物谱。基于这些分析,我们提出了一种模型描绘B. Manusensis的全局反应,以不利的高温。在不利的高温下,糖酵解是一种更重要的能源供应途径;通过增加TRNA改性,对蛋白质合成进行更严格的调节;在生产中增强蛋白质和DNA修复相关蛋白质以促进热量存活。相比之下,减轻诸如孢子的能量成本化途径,以及诸如氨基酸和核苷酸代谢的基本代谢途径。我们的结果为嗜热芽孢杆菌的热电子机制提供了新的见解。

著录项

  • 来源
    《Journal of proteomics》 |2019年第2019期|共11页
  • 作者单位

    Chinese Acad Sci Ctr Ocean Mega Sci Inst Oceanol CAS Key Lab Expt Marine Biol Qingdao Shandong;

    Chinese Acad Sci Ctr Ocean Mega Sci Inst Oceanol CAS Key Lab Expt Marine Biol Qingdao Shandong;

    Chinese Acad Sci Ctr Ocean Mega Sci Inst Oceanol CAS Key Lab Expt Marine Biol Qingdao Shandong;

    Chinese Acad Sci Deep Sea Res Ctr Inst Oceanol Qingdao 266071 Shandong Peoples R China;

    Chinese Acad Sci Deep Sea Res Ctr Inst Oceanol Qingdao 266071 Shandong Peoples R China;

    Chinese Acad Sci Ctr Ocean Mega Sci Inst Oceanol CAS Key Lab Expt Marine Biol Qingdao Shandong;

    Chinese Acad Sci Ctr Ocean Mega Sci Inst Oceanol CAS Key Lab Expt Marine Biol Qingdao Shandong;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 蛋白质;
  • 关键词

    Thermophiles; Bacillus; Proteomics; Metabolomics; Hydrothermal vent;

    机译:嗜热噬菌体;芽孢杆菌;蛋白质组学;代谢组学;水热通风口;

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