Liu Yang, Wang Yuanfeng, Xin John H
Department of Biomedical Engineering, Sun Yat-sen University, Shenzhen 518107, China.
School of Fashion and Textiles, The Hong Kong Polytechnic University, Hong Kong 999077, China.
Molecules. 2024 Jun 23;29(13):2986. doi: 10.3390/molecules29132986.
The mechanics of capillary force in biological systems have critical roles in the formation of the intra- and inter-cellular structures, which may mediate the organization, morphogenesis, and homeostasis of biomolecular condensates. Current techniques may not allow direct and precise measurements of the capillary forces at the intra- and inter-cellular scales. By preserving liquid droplets at the liquid-liquid interface, we have discovered and studied ideal models, i.e., interfacial liquids and marbles, for understanding general capillary mechanics that existed in liquid-in-liquid systems, e.g., biomolecular condensates. The unexpectedly long coalescence time of the interfacial liquids revealed that the Stokes equation does not hold as the radius of the liquid bridge approaches zero, evidencing the existence of a third inertially limited viscous regime. Moreover, liquid transport from a liquid droplet to a liquid reservoir can be prohibited by coating the droplet surface with hydrophobic or amphiphilic particles, forming interfacial liquid marbles. Unique characteristics, including high stability, transparency, gas permeability, and self-assembly, are observed for the interfacial liquid marbles. Phase transition and separation induced by the formation of nanostructured materials can be directly observed within the interfacial liquid marbles without the need for surfactants and agitation, making them useful tools to research the interfacial mechanics.
生物系统中毛细作用力的机制在细胞内和细胞间结构的形成中起着关键作用,这些结构可能介导生物分子凝聚物的组织、形态发生和内稳态。当前的技术可能无法在细胞内和细胞间尺度上对毛细作用力进行直接和精确的测量。通过在液 - 液界面保留液滴,我们发现并研究了理想模型,即界面液体和液滴弹,以理解存在于液 - 液系统(如生物分子凝聚物)中的一般毛细作用机制。界面液体出乎意料的长聚并时间表明,当液桥半径接近零时,斯托克斯方程不再成立,这证明了存在第三种惯性受限的粘性 regime。此外,通过用疏水或两亲性颗粒包覆液滴表面形成界面液滴弹,可以阻止液体从液滴向液体储库的传输。界面液滴弹具有高稳定性、透明度、气体渗透性和自组装等独特特性。在界面液滴弹内无需表面活性剂和搅拌即可直接观察到由纳米结构材料形成引起的相变和分离,这使其成为研究界面力学的有用工具。