双分子层是主要受温度影响的溶(水)向结构液体体系的基本分子外结构

BioChem Pub Date : 2022-11-10 DOI:10.3390/biochem2040016
M. Milichovský
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引用次数: 1

摘要

双分子层的两亲性分子或不同离子性的多离子构成了大多数有机生物和非生物系统的基本构建单元。一种理论已经发展到可以解释它们在那些有组织结构的形成过程中的行为,比如各向异性液晶(LC)在lyotropic(特别是hydrotropic)系统和聚电解质多层(PEM)组件中。特别注意的是温度和水在双层结构的形成和行为中的重要作用。对亲水液相LC体系的形成及其热致性行为提出了新的见解。在此背景下,还讨论了系统的PEM组件。从本质上讲,水的结构形式填满了两层亲水性界面之间的连续和不连续,即封闭的纳米空间,通过吸引和排斥水合力系统控制它们的超分子结构。这些复杂的键合水化体系的性质是由亲水性界面基团的组成和类型决定的。双分子层含水系统的复杂程度表明有必要更详细地研究这些例子。因此,提到与破坏双层有关的双层过程,即具有最大潜力的对抗细菌、真菌和病毒的过程,例如在人呼出含有病毒纳米颗粒的微液滴(例如COVID-19病毒)的情况下。
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Bilayers as Basic Formation of Epimolecular Structure of Mostly Lyotropic (Hydrotropic) Structuralized Liquid Systems Being Influenced Predominantly by the Temperature
The bilayer’s formations of amphiphilic molecules or polyions of different ionogenity comprise the basic building units of most organic biological and non-biological systems. A theory has evolved to explain their behaviour during the creation of those organized structures, such as anisotropic liquid crystal (LC) in lyotropic (especially hydrotropic) systems and polyelectrolyte multilayer (PEM) assemblies. Particular attention has been paid to the temperature and the important role of water in the formation and behaviour of the bilayers. A novel insight into the formation of hydrotropic liquid LC systems and their thermotropic behaviour is presented. In this context, the systems PEM assemblies are also discussed. Essentially, a structuralised form of water fills out continuous and discontinuous, i.e., confined, nano-spaces among hydrophilic interfaces of bilayers, controlling their supramolecular structure through a system of attractive and repulsive hydration forces. The character of those sophisticated bonding hydration systems is predestined by the composition and type of these hydrophilic interface groups. The miscellaneous complexity of the bilayer’s aqueous systems suggests the need to study these examples in greater detail. Therefore, the bilayer’s processes connected with disruption as far as destruction of bilayers are mentioned, i.e., the processes with the highest potential to combat bacteria, fungi, and viruses, such as in a situation where a person exhales a breath of micro-droplets containing virus nanoparticles (e.g., the COVID-19 virus).
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