酶催化导致在支持的脂质支架上流体的流动性,运动性和方向运输
Aditya Sapre1, Niladri Sekhar Mandal1, Ambika Somasundar1
1Department of Chemical Engineering, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.
ACS applied materials & interfaces
|February 6, 2024
概括
活性酶驱动液体流动和脂质膜上的定向运输,影响细胞过程和生物传感器设计. 这项研究揭示了酶活性如何控制2D环境中的运动.
科学领域:
- 生物物理学的生物物理.
- 细胞生物学 细胞生物学
- 材料科学 材料科学 材料科学
背景情况:
- 脂质膜的组成极大地影响了与膜结合的酶活性和细胞功能.
- 了解酶催化对脂质膜动态的影响对于生物传感平台至关重要.
- 目前存在关于酶催化如何影响脂质膜上的横向运输的知识差距.
研究的目的:
- 研究酶催化如何影响脂质膜上的运动性和侧向运输.
- 提供由酶诱导的支持脂质双层 (SLBs) 液体流动的直接证据.
- 证明活性酶在控制2D环境中的扩散和传输方面的潜力.
主要方法:
- 在支持的脂质双层 (SLBs) 中利用了酶附着的脂质.
- 使用活性酶贴片观察标记粒子运动.
- 通过加入胆固醇来操纵膜粘度.
主要成果:
- 证明了催化诱导的流体流动,解释了SLBs观察到的运动性.
- 展示了使用活性酶补丁的标记颗粒的定向运输.
- 证实了增加的膜粘度 (通过胆固醇) 抑制了运动.
结论:
- 酶催化活性驱动流体流动和脂质膜上的运输.
- 可以利用活性酶来控制2D系统中的扩散和运输.
- 这项研究提供了对生命系统和生物感知基本的失衡过程的见解.
相关概念视频
Membrane Fluidity
11.2K
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...
11.2K
Protein Diffusion in the Membrane
4.4K
Proteins show rotational as well as lateral diffusion across the membrane. The lateral diffusion of proteins was confirmed through the cell fusion experiment where mouse and human cells were fused, resulting in hybrid cells. When the human and mouse cells fused, the specific membrane proteins on human and mouse cells were marked with the red and green-fluorescent markers, respectively. Initially, the red and green fluorescence was located on the respective hemisphere of the cell. As time...
4.4K
Asymmetric Lipid Bilayer
7.2K
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%...
7.2K
Membrane Domains
5.4K
The membrane domains concentrate specific lipids and proteins at one place within the membrane, which helps in cell signaling, adhesion, and other critical cellular processes. These domains can differ in size, composition, function, and lifespan.
Protein Domains
The membrane comprises a group of distinct proteins responsible for carrying out a cell's specific function. For example, the plasma membrane of the human sperm, or a single germ cell, contains a unique set of proteins in the...
Protein Domains
The membrane comprises a group of distinct proteins responsible for carrying out a cell's specific function. For example, the plasma membrane of the human sperm, or a single germ cell, contains a unique set of proteins in the...
5.4K
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
Fluid Mosaic Model
11.8K
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...
11.8K


