来自动胺相关蛋白1的可变域促进了液体-液体相分离,从而增强了它与含有心血管蛋白的膜的相互作用
Ammon E Posey1, Kyle A Ross2, Mehran Bagheri3
1Program in Molecular Biophysics, Johns Hopkins University, Baltimore, Maryland, USA.
Protein science : a publication of the Protein Society
|September 25, 2023
概括
对于线粒体裂变至关重要的胺相关蛋白1的可变域在分子拥挤下形成类似液体的凝聚状态. 这种由心脏脂蛋白增强的相位分离可能调节机械酶组合.
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:
- 动氨酸是机械酶,对膜重塑至关重要.
- 动氨酸相关蛋白1 (DRP1) 的可变域 (VD) 参与调节线粒体裂变.
- 关于VD监管的确切机制尚不清楚.
研究的目的:
- 为了研究DRP1.1的孤立VD的生物物理特性.
- 了解分子拥挤如何影响VD的形状和功能.
- 探索VD相分离在DRP1组装和线粒体裂变中的作用.
主要方法:
- 单独的DRP1VD的净化和表征.
- 谱分析用于研究蛋白质转换.
- 在光漂白后的光回收 (FRAP),以评估状态动态.
- 研究与cardiolipin的相互作用.
主要成果:
- 孤立的 DRP1 VD 本质上是有障碍的.
- 稳定氧化物和分子聚合物诱导VD的类似液体的凝结状态.
- 这种液-液相分离是由线粒体脂质心脏脂素促进的.
- 凝结的VD状态是动态的,类似于液体的.
结论:
- 在分子拥挤条件下,DRP1 VD 经历液体-液体相分离.
- 这种相位分离,可能涉及心脏脂蛋白,可能有助于形成线粒体上的点点DRP1结构.
- VD相分离提供了一个快速调节DRP1组装和线粒体裂变的机制.
更多相关视频
相关概念视频
Mechanisms of Membrane Domain Formation
3.0K
Different physical properties of lipids and proteins allow them to localize and form distinct islands or domains in the membrane. Some membrane domains are formed due to protein-protein interactions, whereas others are formed due to the presence of specific lipids such as sphingolipids and sterols—for example, large proteins, such as bacteriorhodopsin, aggregate and create distinct domains.
Another mechanism for membrane domain formation involves membrane proteins interacting with...
Another mechanism for membrane domain formation involves membrane proteins interacting with...
3.0K
Pinching-off of Coated Vesicles
3.2K
Vesicle budding is orchestrated by distinct cytosolic proteins such as adaptor proteins, coat proteins, and GTPases. To initiate vesicle budding, membrane-bending proteins containing crescent-shaped BAR domains bind to the lipid heads in the bilayer and distort the membrane to form a protein-coated vesicle bud. Adaptors proteins such as AP2 for clathrin-coated vesicles can nucleate on the deformed membrane. Finally, coat proteins such as clathrin or COPI and COPII assemble into a coat forming...
3.2K
Asymmetric Lipid Bilayer
7.3K
Biological membranes show uneven distribution of different types of lipids in the inner and outer layers, resulting in transverse asymmetric membranes. The treatment of the erythrocyte membrane with the enzyme phospholipase confirmed the asymmetric nature of the lipid bilayer. The enzyme hydrolyzes lipids into fatty acids and hydrophilic groups. The phospholipase acts only on the outer layer of the membrane, while the inner layer remains intact. The phospholipase treatment resulted in 80%...
7.3K
Membrane Fluidity
11.3K
Membrane fluidity is explained by the fluid mosaic model of the cell membrane, which describes the plasma membrane structure as a mosaic of components—including phospholipids, cholesterol, proteins, and carbohydrates—that gives the membrane a fluid character.
Mosaic nature of the membrane
The mosaic characteristic of the membrane helps the plasma membrane remain fluid. The integral proteins and lipids exist as separate but loosely-attached molecules in the membrane. The membrane is...
Mosaic nature of the membrane
The mosaic characteristic of the membrane helps the plasma membrane remain fluid. The integral proteins and lipids exist as separate but loosely-attached molecules in the membrane. The membrane is...
11.3K
Mechanism of Lamellipodia Formation
2.6K
Cells migrating in response to external stimuli form lamellipodia, which are thin membrane protrusions supported by a mesh of linked, branched, or unbranched actin filaments. These actin filaments interact with myosin motor proteins, creating the dynamic actomyosin complex within the cytoskeleton. Contractility, or the ability to generate contractile stress, is inherent to the actomyosin complex. It helps cells detect the stiffness of the surrounding ECM and exert contractile force for...
2.6K
Fluid Mosaic Model
12.0K
Scientists identified the plasma membrane in the 1890s and its principal chemical components (lipids and proteins) by 1915. The model for plasma membrane structure, proposed in 1935 by Hugh Davson and James Danielli, was the first model to be widely accepted in the scientific community. The model was based on the plasma membrane's "railroad track" appearance in early electron micrographs. Davson and Danielli theorized that the plasma membrane's structure resembled a sandwich...
12.0K


