蛋白质酸化调节了大肠杆菌中β-葡萄糖酸利用操作子的转录
O Amster-Choder1, F Houman, A Wright
1Department of Molecular Biology and Microbiology, Tufts University Health Sciences Campus, Boston, Massachusetts 02111.
Cell
|September 8, 1989
概括
大肠杆菌BglF蛋白通过酸化BglG,一个积极的调节器,对bgl操作子进行负调节. 这种酸化使BglG失活,控制基因表达以响应β-葡萄糖酸.
科学领域:
- 微生物学 微生物学
- 分子生物学分子生物学
- 基因规则 基因规则
背景情况:
- 大肠杆菌的bgl操作子控制了β-葡萄糖代谢.
- BglF作为负调节剂和转化酶.
- BglG作为一个积极的调节剂和转录抗终结剂.
研究的目的:
- 阐明BglF和BglG之间的相互作用机制.
- 要了解BglF是如何调节Bgl操作子表达的.
- 研究酸化在BglF-BglG相互作用中的作用.
主要方法:
- 研究的蛋白质与蛋白质相互作用.
- 研究了酸化和脱酸化事件.
- 使用了野生类型和突变BglG衍生物.
主要成果:
- BglF是由转移酶系统组件 (酶I,HPr,烯酸酸) 进行酸化.
- 化BglF将酸盐转移到β-葡萄糖体或BglG.
- BglF通过酸化和失活BglG.对bgl操作子进行负调节.
结论:
- BglF的负调节涉及化BglG,阻断其抗终结活性.
- 通过BglF去化BglG需要BglF和β-葡萄糖.
- 一个拟议的机制解释了基于BglF-BglG酸化状态的Bgl运调节.
相关概念视频
Operons
Prokaryotes can control gene expression through operons—DNA sequences consisting of regulatory elements and clustered, functionally related protein-coding genes. Operons use a single promoter sequence to initiate transcription of a gene cluster (i.e., a group of structural genes) into a single mRNA molecule. The terminator sequence ends transcription. An operator sequence, located between the promoter and structural genes, prohibits the operon’s transcriptional activity if bound by a repressor...
Cell Specific Gene Expression
Multicellular organisms contain a variety of structurally and functionally distinct cell types, but the DNA in all the cells originated from the same parent cells. The differences in the cells can be attributed to the differential gene expression. Liver cells, whose functions include detoxification of blood, production of bile to metabolize fats, and synthesis of proteins essential for metabolism, must express a specific set of genes to perform their functions. Gene expression also varies with...
Prokaryotic Transcriptional Activators and Repressors
The organization of prokaryotic genes in their genome is notably different from that of eukaryotes. Prokaryotic genes are organized, such that the genes for proteins involved in the same biochemical process or function are located together in groups. This group of genes, along with their regulatory elements, are collectively known as an operon. The functional genes in an operon are transcribed together to give a single strand of mRNA known as polycistronic mRNA.
Transcription of prokaryotic...
Transcription of prokaryotic...
Operons
Prokaryotes can control gene expression through operons—DNA sequences consisting of regulatory elements and clustered, functionally related protein-coding genes. Operons use a single promoter sequence to initiate transcription of a gene cluster (i.e., a group of structural genes) into a single mRNA molecule. The terminator sequence ends transcription. An operator sequence, located between the promoter and structural genes, prohibits the operon’s transcriptional activity if bound by a repressor...
Prokaryotic Transcriptional Activators and Repressors
The organization of prokaryotic genes in their genome is notably different from that of eukaryotes. Prokaryotic genes are organized, such that the genes for proteins involved in the same biochemical process or function are located together in groups. This group of genes, along with their regulatory elements, are collectively known as an operon. The functional genes in an operon are transcribed together to give a single strand of mRNA known as polycistronic mRNA.
Transcription of prokaryotic...
Transcription of prokaryotic...
Inducible Operons: lac Operon
The lac operon in Escherichia coli is a model for understanding inducible gene regulation and metabolic flexibility. It integrates local control by lactose and global regulation through catabolite repression, enabling E. coli to preferentially metabolize glucose when available and switch to lactose utilization when glucose is scarce.Structure and Function of the lac OperonThe lac operon contains three structural genes: lacZ (β-galactosidase), lacY (lactose permease), and lacA (thiogalactoside...


