用于研究螺旋膜蛋白质折叠的绝缘捕获策略
1Department of Chemistry, Michigan State University, East Lansing, MI 48824, USA.
Methods (San Diego, Calif.)
|March 1, 2024
概括
固体捕获提供了一种新的方法,通过可逆控制蛋白质展开来研究膜蛋白折叠. 这种技术为蛋白质稳定性和脂质双层内折叠机制提供了洞察力.
科学领域:
- 生物化学 生化学
- 生物物理学的生物物理.
- 结构生物学 结构生物学
背景情况:
- 了解膜蛋白折叠对于阐明它们的稳定性,机制,生物发生和质量控制至关重要.
- 脂质双层环境对研究可逆膜蛋白折叠提出了挑战.
- 新的方法正在出现,以调查膜蛋白折叠的特定方面.
研究的目的:
- 审查用于研究膜蛋白折叠的固体捕获策略.
- 要突出方法论上的进步,局限性,和未来的前景的无菌陷.
- 为了解释体捕获如何使膜蛋白折叠的可逆控制与最小的干扰.
主要方法:
- 无菌捕获利用了自发蛋白质变性与庞大的单价性斯特雷普塔维丁分子结合的合.
- 这种方法涉及双重生物化蛋白,经过变性.
- 斯特雷普塔维丁与生物素的结合可逆地控制了蛋白质的结构状态.
主要成果:
- 无菌捕获允许研究热力学稳定性和自发变质率.
- 该策略可以揭示变质状态的形状特征.
- 它提供了关于膜蛋白中稳定相互作用的合作性的见解.
结论:
- 无菌捕获是一种多功能策略,用于可逆控制膜蛋白折叠.
- 它对原生蛋白质-水和蛋白质-脂质相互作用提供了最小的干扰.
- 该方法在研究膜蛋白折叠动力学和稳定性方面具有重大潜力.
相关概念视频
Molecular Chaperones and Protein Folding
17.9K
The native conformation of a protein is formed by interactions between the side chains of its constituent amino acids. When the amino acids cannot form these interactions, the protein cannot fold by itself and needs chaperones. Notably, chaperones do not relay any additional information required for the folding of polypeptides; the native conformation of a protein is determined solely by its amino acid sequence. Chaperones catalyze protein folding without being a part of the folded protein.
The...
The...
17.9K
Protein Folding
118.1K
Overview
118.1K
Tail-anchoring of Proteins in the ER Membrane
3.1K
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...
3.1K
Multi-pass Transmembrane Proteins and β-barrels
5.3K
In multi-pass transmembrane proteins, the polypeptide chain crosses the membrane more than once. The transmembrane polypeptide chain either forms an α-helix or β-strand structure. α-Helix containing multi-pass transmembrane proteins are ubiquitous, whereas β-strand containing ones are mainly found in gram-negative bacteria, mitochondria, and chloroplasts.
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as...
α-Helix containing multi-pass transmembrane proteins
Multi-pass transmembrane proteins such as...
5.3K
Mechanisms of Membrane-bending
2.7K
The living membranes are flexible due to their fluid mosaic nature; however, their bending into different shapes is an active process regulated by specific lipids and proteins. The membrane bending can be transient as seen in vesicles or stable for a long time as in microvilli. Cells regulate the size, location, and duration of the membrane curvature.
Membrane bending can happen due to intrinsic changes in lipid composition or extrinsic association with different proteins. The proteins involved...
Membrane bending can happen due to intrinsic changes in lipid composition or extrinsic association with different proteins. The proteins involved...
2.7K
Detergent Purification of Membrane Proteins
5.2K
Detergents are used to purify the integral proteins of the membrane. The hydrophobic portion of the detergent can replace membrane phospholipids while solubilizing the membrane proteins. When detergent monomers reach a specific concentration in a solution called critical micelle concentration (CMC), they form micelles. Above CMC, the concentration of the detergent monomers remains in equilibrium with the micelle. The number of detergent monomers present in the CMC varies for each detergent, and...
5.2K


