首页 | 本学科首页   官方微博 | 高级检索  
     


Changes of Saccharomyces cerevisiae cell membrane components and promotion to ethanol tolerance during the bioethanol fermentation
Affiliation:1. Laboratory of Plant Genomics and Proteomics, Department of Genetics, Center for Biological Sciences, Universidade Federal de Pernambuco, Recife, Brazil;2. Environmental Engineering Area, Universidade Maurício de Nassau, Recife, Brazil;3. Laboratory of Microbial Genetics, Department of Genetics, Center for Biological Sciences, Universidade Federal de Pernambuco, Recife, Brazil
Abstract:
During bioethanol fermentation process, Saccharomyces cerevisiae cell membrane might provide main protection to tolerate accumulated ethanol, and S. cerevisiae cells might also remodel their membrane compositions or structure to try to adapt to or tolerate the ethanol stress. However, the exact changes and roles of S. cerevisiae cell membrane components during bioethanol fermentation still remains poorly understood. This study was performed to clarify changes and roles of S. cerevisiae cell membrane components during bioethanol fermentation. Both cell diameter and membrane integrity decreased as fermentation time lasting. Moreover, compared with cells at lag phase, cells at exponential and stationary phases had higher contents of ergosterol and oleic acid (C18:1) but lower levels of hexadecanoic (C16:0) and palmitelaidic (C16:1) acids. Contents of most detected phospholipids presented an increase tendency during fermentation process. Increased contents of oleic acid and phospholipids containing unsaturated fatty acids might indicate enhanced cell membrane fluidity. Compared with cells at lag phase, cells at exponential and stationary phases had higher expressions of ACC1 and HFA1. However, OLE1 expression underwent an evident increase at exponential phase but a decrease at following stationary phase. These results indicated that during bioethanol fermentation process, yeast cells remodeled membrane and more changeable cell membrane contributed to acquiring higher ethanol tolerance of S. cerevisiae cells. These results highlighted our knowledge about relationship between the variation of cell membrane structure and compositions and ethanol tolerance, and would contribute to a better understanding of bioethanol fermentation process and construction of industrial ethanologenic strains with higher ethanol tolerance.
Keywords:Bioethanol fermentation process  Cell membrane  Ethanol tolerance  Gene expression  ACC1"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0035"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  Acetyl-CoA carboxylase  HFA1"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0045"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  Acetyl-CoA carboxylase  OLE1"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0055"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  stearoyl-CoA 9-desaturase  ACT1"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0065"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  β-actin  GC"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0075"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  gas chromatography  LC"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0085"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  liquid chromatography  PE"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0095"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  phosphatidylethanolamine  PI"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0105"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  phosphatidelinositol  PS"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0115"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  phosphatidylserine  qRT-PCR"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0125"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  quantitative real-time PCR
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号