特异性域区分了与Ras相关的GTPases Ypt1和Sec4
B Dunn1, T Stearns, D Botstein
1Department of Genetics, Stanford University School of Medicine, California 94305.
Nature
|April 8, 1993
概括
研究人员在Ypt1 GTPase中确定了一个关键的9残留部分,使其能够在酵母分泌中执行Ypt1和Sec4的功能. 这一发现促进了对蛋白质功能和运输的理解.
科学领域:
- 分子生物学分子生物学
- 细胞生物学 细胞生物学
- 生物化学 生物化学
背景情况:
- Ypt1和Sec4是酵母Saccharomyces cerevisiae中重要的Ras相关的GTPase.
- Ypt1调解内质网膜到戈尔吉运输,而Sec4对于等离子膜中的囊泡融合至关重要.
研究的目的:
- 为了确定负责Ypt1和Sec4的独特功能的特定蛋白质段.
- 了解这些GTPase在分泌途径中的结构功能关系.
主要方法:
- 构建和分析仿制GTPase蛋白质.
- 在Saccharomyces cerevisiae中的体内功能测试.
主要成果:
- 从Ypt1 (循环L7) 替换到Sec4中的一个9余分段赋予了最小的双重功能.
- 一个更大的24个残留Ypt1段,包括循环L7和效应区 (循环L2),完全将Sec4转化为功能Ypt1蛋白.
结论:
- 特定的区域,特别是循环L7和效应器区域,决定了Ypt1和Sec4.4的不同角色.
- 这项研究提供了有关Ras相关GTPases在膀运输中的功能分歧和特异性的见解.
相关概念视频
GTPases and their Regulation
Guanine nucleotide-binding proteins (G-proteins), also known as GTPases, are a superfamily of proteins that regulate many cellular processes, such as cell signaling, vesicular transport, and the regulation of cell shape and motility. Mutation or dysfunction of these proteins can lead to disease. There are around 40,000 known G-proteins that can broadly be classified into two groups ‒ small G-proteins consisting of a single domain and large multi-domain G-proteins.
Large G-proteins, also known...
Large G-proteins, also known...
Coat Assembly and GTPases
Vesicles incorporate different coat protein subunits in different cell locations, which changes the properties of the coat, such as the shape and geometry of the transport vesicles. Thus, vesicle coat proteins also play a significant role in cargo selection.
Coat assembly depends on the local availability of phosphatidylinositol phosphates or PIPs and GTP-binding proteins. Adaptor proteins, which link the coat proteins to the membrane, bind to these PIPs and play a crucial role in controlling...
Coat assembly depends on the local availability of phosphatidylinositol phosphates or PIPs and GTP-binding proteins. Adaptor proteins, which link the coat proteins to the membrane, bind to these PIPs and play a crucial role in controlling...
Rab Proteins
Rab proteins constitute the largest family of monomeric GTPases, of which 70 members are present in humans. Rab proteins and their effectors regulate consecutive stages of vesicle transport such as vesicle transport, docking, and fusion to the correct recipient membrane.
Rab proteins switch between a cytosolic, GDP-bound inactive state and a membrane-anchored, GTP-bound active state. By themselves, Rabs show slow rates of GDP/GTP exchange and GTP hydrolysis. Thus, Rab proteins are considered...
Rab proteins switch between a cytosolic, GDP-bound inactive state and a membrane-anchored, GTP-bound active state. By themselves, Rabs show slow rates of GDP/GTP exchange and GTP hydrolysis. Thus, Rab proteins are considered...
Tail-anchoring of Proteins in the ER Membrane
Tail-anchored, or TA, proteins are estimated to make up to 3-5% of membrane proteins found in the eukaryotic cell. Such proteins have a single transmembrane domain located approximately 30 amino acid residues upstream from the C-terminal end. As a result, the signal recognition particle (SRP) cannot guide a TA protein to the ER membrane for cotranslational insertion. Hence, they are integrated into the ER membrane post-translationally using their C-terminal end as the anchor. TA proteins...
Rab Cascades
Rab GTPases act in a regulated cascade during membrane fusion, helping the lipid bilayers mix. The Rab family of proteins are active when bound to GTP, and inactive when bound to GDP. Hence, they act as guanine nucleotide-dependent molecular switches. Rab-GTP recognizes and binds to long or short-range tethering proteins to capture the target vesicle. These tethers coordinate with SNAREs on the vesicle and the target membrane to assemble the trans SNARE complex that locks the mixing bilayers.
Small GTPases - Ras and Rho
Ras and Rho are small monomeric GTPases that act downstream of receptor tyrosine kinase (RTK) and regulate various cellular processes. These GTPases switch between active and inactive states by binding to guanine nucleotides.
Three regulatory proteins control their activity:
Three regulatory proteins control their activity:


