在原纤维的速率独立的歇斯底里能量消耗
Robert Magerle1, Paul Zech1, Martin Dehnert1
1Fakultät für Naturwissenschaften, Technische Universität Chemnitz, 09107 Chemnitz, Germany. robert.magerle@physik.tu-chemnitz.de.
Soft matter
|March 8, 2024
概括
在纳米缩过程中,水合原纤维呈现速率独立的歇斯底里,揭示出一种新的能量消散机制. 这一发现统一了对材料中的弹性可塑性,粘附性和表面平衡的理解.
科学领域:
- 生物材料科学 生物材料科学
- 纳米机械学 纳米机械学
- 原子力显微镜 原子力显微镜
背景情况:
- 原纤维是具有复杂机械性质的关键生物材料.
- 了解纳米级材料中的能量消耗对于预测它们的行为至关重要.
- 以前的模型往往忽略了水合生物组织中的速率独立歇斯底里.
研究的目的:
- 为了研究水合原纤维的纳米沉积行为.
- 识别和描述新的能量消散机制.
- 开发一个预测模型,用于缩力和能量消耗.
主要方法:
- 使用原子力显微镜 (AFM) 进行纳米沉积实验.
- 在水合原纤维的循环负荷时测量力-距离曲线.
- 基于实验数据的通用歇斯底里模型的开发.
主要成果:
- 在水合原纤维中观察到速度独立的歇斯底里与回归点记忆.
- 确定了一个统一的能量消散机制,包括弹性可塑性,毛细血管粘附和表面平整.
- 验证了一种通用的歇斯底里模型,可以准确地预测缩力和消散能量.
结论:
- 在水合原纤维中存在一种新的,速度独立的能量消散机制.
- 开发的模型为理解纳米级机械反应提供了一个统一的框架.
- 这种机制对于涉及水合生物材料和纳米级工程的应用至关重要.
相关概念视频
Actin Filament Depolymerization
3.1K
Actin filaments (F-actin) are composed of actin subunits. The dissociation of actin monomers can occur from either end of F-actin. The rate of dissociation is faster from the minus-end or the pointed end, where the actin subunits exist with a bound ADP, together known as ADP-actin. The depolymerization of F-actin is aided by proteins, including the actin-depolymerizing factor (ADF) and cofilin family of proteins, gelsolin, and glia maturation factor (GMF).
In F-actin, the ADF/cofilin proteins...
In F-actin, the ADF/cofilin proteins...
3.1K
Strain-Energy Density
404
Understanding the strain energy density in materials under axial load is crucial for evaluating their mechanical behavior and durability. When a rod is subjected to such a load, it elongates and stores energy, known as strain energy, as potential energy within the material. This energy is measured in terms of energy per unit volume.
In the elastic region of a material, the relationship between the stress and the strain is linear and follows Hooke's Law. The strain energy density in this...
In the elastic region of a material, the relationship between the stress and the strain is linear and follows Hooke's Law. The strain energy density in this...
404
Structural Protein Function
27.6K
Structural proteins are a category of proteins responsible for functions ranging from cell shape and movement to providing support to major structures such as bones, cartilage, hair, and muscles. This group includes proteins such as collagen, actin, myosin, and keratin.
Collagen, the most abundant protein in mammals, is found throughout the body. In connective tissue, such as skin, ligaments, and tendons, it provides tensile strength and elasticity. In bones and teeth, it mineralizes to...
Collagen, the most abundant protein in mammals, is found throughout the body. In connective tissue, such as skin, ligaments, and tendons, it provides tensile strength and elasticity. In bones and teeth, it mineralizes to...
27.6K
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
Fibril-associated Collagen
2.5K
Fibril-associated collagens are a type of collagens present in the extracellular matrix with interrupted triple helices or FACIT (Fibril-associated collagens interrupted triple-helices). FACIT help connect and attach the collagen fibrils with each other as well as with other proteins of the extracellular matrix.
For example, the type II collagen fibrils in cartilage have covalently bound type IX fibril-associated collagens at regular intervals. Other types of fibril-associated collagens are...
For example, the type II collagen fibrils in cartilage have covalently bound type IX fibril-associated collagens at regular intervals. Other types of fibril-associated collagens are...
2.5K
Elastic Strain Energy for Shearing Stresses
186
As discussed in previous lessons, strain energy in a material is the energy stored when it is elastically deformed, a concept crucial in materials science and mechanical engineering. This energy results from the internal work done against the cohesive forces within the material. When a material undergoes shearing stress and corresponding shearing strain, the strain energy density, which is the energy stored per unit volume, is calculated. Within the elastic limit, where the stress is...
186


