相关实验视频
Updated: Jun 8, 2026

08:57
Aip1p Dynamics Are Altered by the R256H Mutation in Actin
Published on: July 30, 2014
雅丁异型的差异性化通过编码依赖序列的降解来调节
Fangliang Zhang1, Sougata Saha, Svetlana A Shabalina
1Department of Animal Biology, School of Veterinary Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.
概括
动蛋白蛋白的化会影响它们的稳定性. 由于其翻译速率,与β-actin不同,阿尔基尼化玛-actin被迅速降解,揭示出一种新的蛋白质调节机制.
科学领域:
- 生物化学 生物化学
- 分子生物学分子生物学
- 细胞生物学 细胞生物学
背景情况:
- 哺乳动物β-和gamma-actin是同类的细胞骨蛋白质.
- 只有β-actin在体内经历了氨基末端的化,这是一种调节其功能的过程.
研究的目的:
- 为了研究表源性表达的阿尔基尼化和非阿尔基尼化活性单体的代谢命运.
- 阐明基化乙单体的差异性稳定性背后的机制.
主要方法:
- 化和非化β和gamma-actin异型的表达.
- 在体内分析蛋白质稳定性,无化和降解途径.
主要成果:
- 在体内,阿尔吉尼化玛-动因表现出高的不稳定性和选择性无化和降解,与β-动因形成鲜明对比.
- 行为因子之间的核酸编码序列的差异导致了不同的翻译速率.
- 马动氨酸的转化速度较慢,使氨酸残留暴露于无处不在的化过程中,在化过程中将其准降解.
结论:
- 蛋白质化对稳定性的影响是由异构体特定的转化率调节的.
- 一种新的降解机制将核酸编码序列,翻译速度和蛋白质化联系在一起.
- 这一途径可以作为蛋白质arginylation的调节机制 in vivo.
相关概念视频
Actin Polymerization and Cell Motility
Actin is a family of globular proteins that are highly abundant in eukaryotic cells. It makes up approximately 1-5% of total cell protein concentration. Actin monomers polymerize to form a complex network of polarized filaments, the actin cytoskeleton, that plays a crucial role in many cellular processes, including cell motility, division, endocytosis, and metastasis of cancer cells.
Actin cytoskeleton dynamics can produce pushing, pulling, and resistance forces that help the cell to migrate.
Actin cytoskeleton dynamics can produce pushing, pulling, and resistance forces that help the cell to migrate.
Introduction to Actin
Actin is a highly conserved cytoskeletal protein found abundantly in eukaryotic cells. It constitutes 10% weight of the total cellular protein in muscle cells, while in non-muscle cells, it is lower and makes up around 1–5 percent of the total cell protein. Actin found in the unicellular amoebae and complex multicellular animals is around 80% similar, demonstrating their conservation over a billion years of evolution. Actin coding genes are conserved within species and across different species.
Regulated Protein Degradation
It is vital to regulate the activity of enzymatic as well as non-enzymatic proteins inside the cell. This can be achieved either through creating a balance between their rate of synthesis and degradation or regulating the intrinsic activity of the protein. Both these regulation mechanisms play an essential role in the normal functioning of cells.
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Regulated Protein Degradation
It is vital to regulate the activity of enzymatic as well as non-enzymatic proteins inside the cell. This can be achieved either through creating a balance between their rate of synthesis and degradation or regulating the intrinsic activity of the protein. Both these regulation mechanisms play an essential role in the normal functioning of cells.
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Actin Filament Depolymerization
Actin filaments (F-actin) are composed of actin subunits. The dissociation of actin monomers can occur from either end of F-actin. The rate of dissociation is faster from the minus-end or the pointed end, where the actin subunits exist with a bound ADP, together known as ADP-actin. The depolymerization of F-actin is aided by proteins, including the actin-depolymerizing factor (ADF) and cofilin family of proteins, gelsolin, and glia maturation factor (GMF).
In F-actin, the ADF/cofilin proteins...
In F-actin, the ADF/cofilin proteins...
Covalently Linked Protein Regulators
Proteins can undergo many types of post-translational modifications, often in response to changes in their environment. These modifications play an important role in the function and stability of these proteins. Covalently linked molecules include functional groups, such as methyl, acetyl, and phosphate groups, and also small proteins, such as ubiquitin. There are around 200 different types of covalent regulators that have been identified.
These groups modify specific amino acids in a protein.
These groups modify specific amino acids in a protein.

