在高盐环境中真菌细胞壁的结构适应
Liyanage D Fernando1,2, Yordanis Pérez-Llano3, Malitha C Dickwella Widanage1,4
1Department of Chemistry, Michigan State University, East Lansing, MI, USA.
Nature communications
|November 5, 2023
概括
像Aspergillus sydowii这样的型真菌通过用素和α-glucan加厚细胞壁来适应的环境. 这种结构变化有助于它们在极端条件下生存,有助于生物技术应用.
科学领域:
- 微生物学 微生物学
- 生物化学 生物化学
- 生物技术是生物技术.
背景情况:
- 型真菌居住在高盐环境中,对工业应用非常有价值.
- 它们的细胞壁在生存极端条件中的作用尚未得到充分理解.
研究的目的:
- 为了研究不同盐度下Aspergillus sydowii的细胞壁结构.
- 了解细胞壁结构如何促进友真菌的生存.
主要方法:
- 使用了固态核磁共振 (NMR) 光谱学.
- 在盐度梯度上分析了Aspergillus sydowii的完整细胞.
主要成果:
- A. sydowii的细胞壁有一个基,β-葡萄糖和基托的核心,外是银河和银河.
- 超的条件触发了胺合成和α-葡萄糖结合的增加.
- 这导致细胞壁变得更厚,更硬,更水.
结论:
- A. sydowii 修改其细胞壁结构以适应高盐和缺乏盐的条件.
- 这些适应提供了一个强大的机制来承受环境压力.
- 了解这些分子原理可以优化型真菌用于生物技术.
相关概念视频
Archaeal Cell Wall
24
Archaeal cell walls are structurally and compositionally distinct from their bacterial counterparts, lacking the characteristic peptidoglycan layer found in most bacteria. Instead, archaeal cell walls exhibit remarkable diversity, utilizing materials such as pseudomurein, polysaccharides, and proteins to construct their protective outer layers. This structural flexibility is closely tied to archaea's ecological adaptability.S-Layers: The Common Archaeal Cell WallThe S-layer is the most...
24
Responses to Salt Stress
13.2K
Salt stress—which can be triggered by high salt concentrations in a plant’s environment—can significantly affect plant growth and crop production by influencing photosynthesis and the absorption of water and nutrients.
13.2K
Factors Influencing Microbial Growth: Osmolarity
24
Osmolarity is the measure of solute concentration in a solution. It plays a critical role in determining water availability for organisms. Water moves across semipermeable membranes through osmosis, flowing from regions of lower solute concentration (more dilute) to regions of higher solute concentration (more concentrated).In high-solute environments, microbial cells lose water, leading to dehydration and inhibited growth. The extent to which water is available to microbes in such environments...
24
Cell Adhesion in Plants
2.7K
Plants have rigid cell walls that are made up of cell wall polysaccharides that mediate cell-cell adhesion. The primary cell walls of plants consist of two independent and interacting polysaccharide networks: a pectin matrix that embeds the second network comprising cellulose and hemicelluloses.
Pectins are complex heteropolymers mainly composed of negatively-charged α-D-glucopyranosyl uronic acid and some neutral glycosyl residues such as α-L-rhamnopyranose, α-L-arabinofuranose,...
Pectins are complex heteropolymers mainly composed of negatively-charged α-D-glucopyranosyl uronic acid and some neutral glycosyl residues such as α-L-rhamnopyranose, α-L-arabinofuranose,...
2.7K
Plasmodesmata
2.9K
In a multicellular organism, cells must communicate to work together in a coordinated manner. One way that cells communicate is through direct contact with other cells. The points of contact that connect adjacent cells are called intercellular junctions.
Intercellular junctions are a feature of fungal, plant, and animal cells. However, different types of junctions are found in different kinds of cells. Intercellular junctions found in animal cells include tight junctions, gap junctions, and...
Intercellular junctions are a feature of fungal, plant, and animal cells. However, different types of junctions are found in different kinds of cells. Intercellular junctions found in animal cells include tight junctions, gap junctions, and...
2.9K
Tonicity in Plants
53.5K
Tonicity describes the capacity of a cell to lose or gain water. It depends on the quantity of solute that does not penetrate the membrane. Tonicity delimits the magnitude and direction of osmosis and results in three possible scenarios that alter the volume of a cell: hypertonicity, hypotonicity, and isotonicity. Due to differences in structure and physiology, tonicity of plant cells is different from that of animal cells in some scenarios.
53.5K


