植物表皮细胞壁高度伸展的非线性机制
Jingyi Yu1, Yao Zhang2,3, Daniel J Cosgrove1
1Department of Biology, Pennsylvania State University, University Park, PA 16802.
概括
植物细胞壁表现出复杂的机械行为,通过结合弹性和塑性变形显著拉伸. 水含量极大地影响植物生长过程中纤维素纤维的滑动和墙壁度.
科学领域:
- 植物生物学 植物生物学
- 生物物理学的生物物理.
- 材料科学是一种材料科学.
背景情况:
- 植物表皮细胞壁对于机械完整性和生长调节至关重要.
- 了解细胞壁机制,可以为植物生长的机械生物学模型提供信息.
研究的目的:
- 在大变形下研究植物表皮细胞壁的内在机制.
- 阐明细胞壁如何适应生长以及水含量的作用.
主要方法:
- 洋上皮带的单轴和循环拉伸 (厚度约7微米).
- 分析不同应变速率和温度下的应力应变反应.
- 开发一个分析框架来量化非线性墙壁力学.
主要成果:
- 细胞壁表现出复杂的三相应激应应变反应和弹性歇斯底里.
- 细胞壁表现为灵活的纤维素纤维网络,而不是粘性复合材料.
- 拉伸涉及结合弹性和塑性变形,而不会损失刚性.
- 脱水增加了墙壁的刚性和不可逆转性,显示出水对纤维素的影响.
结论:
- 植物细胞壁表现出复杂的非线性力学,通过结合弹性和塑性过程适应大变形.
- 纤维素纤维滑动,受水的影响,是墙壁延展性和机械性能的关键.
- 开发的框架量化了细胞壁机制,适用于组织和器官.
相关概念视频
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
Plant Cell Wall
56.6K
The plant cell wall gives plant cells shape, support, and protection. As a cell matures, its cell wall specializes according to the cell type. For example, the parenchyma cells of leaves possess only a thin, primary cell wall.
56.6K
Cellulose and Pectic Polysaccharides
3.6K
Every plant cell has a cell wall that protects the cell, provides structural support, and gives the cell shape. Cellulose, the main structural component of the plant cell wall, makes up over 30% of plant matter. It is the most abundant organic compound on earth. Cellulose is an unbranched polysaccharide composed of linear chains of glucose molecules linked by β (1→4) glycosidic bonds.
As a cell matures, its cell wall specializes according to its type. For example, the...
As a cell matures, its cell wall specializes according to its type. For example, the...
3.6K
Tonicity in Plants
53.4K
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.
53.4K
Cell-matrix's Response to Mechanical Forces
2.6K
In animal cells, the extracellular matrix allows cells within tissues to withstand external stresses and transmits signals from the outside of the cell to the inside. The extracellular matrix is extensive, and its composition varies between different types of tissues. For example, the reticular fibers and ground substance make up the ECM in loose connective tissue, while collagen and bone minerals make up the ECM of bone tissue.
Anchoring junctions mechanically attach a cell to the...
Anchoring junctions mechanically attach a cell to the...
2.6K
Role of Microtubules in Cell Wall Deposition
2.4K
Microtubules are small hollow tubes in eukaryotic cells. The cell wall microtubules are polymerized dimers of two globular proteins, α-tubulin and β-tubulin, two globular proteins. With a diameter of about 25 nm, microtubules are the widest components of the cytoskeleton. They help the cell resist compression and provide a track along which vesicles move through the cell or pull replicated chromosomes to opposite ends of a dividing cell. Microtubules go through quick cycles of...
2.4K


