论文标题
通过将水通道蛋白定向插入固态纳米孔中的生物杂交膜形成
Biohybrid membrane formation by directed insertion of Aquaporin into a solid-state nanopore
论文作者
论文摘要
分子传感和化学检测中的技术挑战已经产生了对具有高灵敏度和特异性变革材料的需求不断增长。生物杂交纳米孔吸引了日益增长的兴趣,因为它们可以理想地将固态纳米孔的耐用性与生物纳米孔的精确结构相结合。必须特别注意控制生物纳米孔如何与固态纳米孔接触的周围环境。两个主要挑战是在动态条件下精确控制这种适应性,并提供可以针对工程应用程序操作的预先设计的功能。在这里,我们报告了一类独特的生物杂交膜层的计算设计,该膜是由将含有水aporin的脂质壳的定向插入到二氧化硅纳米孔中的。首先,我们详细描述了将生物膜插入固态纳米孔中发挥作用的机制。然后,我们分析了系统的结构稳定性,并证明其水的渗透性与在生物环境中测得的水的渗透性相当。最后,我们讨论实施的技术如何适用于环境和生物医学应用,例如水的脱盐和药物发现,在这些应用中,必须有效地解决小分子的靶向和控制渗透。
Technical challenges in molecule sensing and chemical detection have created an increasing demand for transformative materials with high sensitivity and specificity. Biohybrid nanopores have attracted growing interest as they can ideally combine the durability of solid-state nanopores with the precise structure of biological nanopores. Particular care must be taken to control how biological nanopores adapt to their surroundings once in contact with the solid-state nanopore. Two major challenges are to precisely control this adaptability under dynamic conditions and provide predesigned functionalities that can be manipulated for engineering applications. Here, we report on the computational design of a distinctive class of biohybrid active membrane layer, built from the directed insertion of an aquaporin-incorporated lipid shell into a silica nanopore. First, we describe in detail the mechanisms at play in the insertion of the biological membrane into the solid-state nanopore. Then we analyze the structural stability of the system and demonstrate that its water permeability is comparable to the one measured in the biological environment. Finally, we discuss how the technology implemented could be applicable to environmental and biomedical applications, such as water desalination and drug discovery, where targeting and controlled permeation of small molecules must be efficiently addressed.