在极端条件下的真菌细菌细胞外层中的残留膜流动性 凸显了以膜为中心的适应
Aswin T Srivatsav1, Kuan Liang2, Michel W Jaworek3
1Department of Chemistry, Indian Institute of Technology Bombay, Mumbai 400076, India.
The journal of physical chemistry. B
|July 3, 2024
概括
菌根菌通过重塑细胞膜来适应极端环境. 这项研究揭示了脂质组变化如何在高压和高温下保持膜流动性,确保细菌的生存.
科学领域:
- 微生物学 微生物学
- 生物物理学的生物物理.
- 生物化学 生物化学
背景情况:
- 细胞膜适应对于在极端环境中生存至关重要.
- 菌根菌具有复杂的细胞壁,具有独特的脂质组成.
- 了解膜恒温机制是细菌弹性的关键.
研究的目的:
- 为了研究菌根细菌膜适应高水静压和温度.
- 阐明脂质组重塑在压力下维持膜功能中的作用.
- 为了识别对环境触发物的脂质特异性反应.
主要方法:
- 高压光,质量和红外光谱仪.
- 核磁共振 (NMR),小角度X射线散射 (SAXS).核磁共振 (NMR),小角度X射线散射 (SAXS).核磁共振 (NMR),小角度X射线散射 (SAXS).核磁共振 (NMR),小角度X射线散射 (SAXS).
- 分子动力学模拟和脂质组分析.
主要成果:
- 菌根菌膜表现出独特的脂质特异性压力诱导的特征,防止高度排序的阶段.
- 内膜和外膜都保持相位共存和在温度和压力范围内的残余流动性.
- 脂质组分析显示了脂质链长度的重塑,不和,以及在压力下特定的真菌细菌脂质.
结论:
- 菌根细菌积极调节其脂质组,以在极端条件下保持液态细胞外.
- 脂质特异性适应对于恶劣环境中的功能性细胞膜至关重要.
- 这些发现提供了细菌在各种极端息地生存策略的见解.
相关概念视频
Membrane Fluidity
11.1K
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...
11.1K
Fluid Mosaic Model
11.6K
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...
11.6K
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
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
Protein Diffusion in the Membrane
4.3K
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...
4.3K


