Department of Physics, Boise State University, Boise, ID 83725, USA.
Biomolecular Sciences Graduate Program, Boise State University, Boise, ID 83725, USA.
Sensors (Basel). 2020 Oct 27;20(21):6099. doi: 10.3390/s20216099.
Lysenin is a pore-forming protein extracted from the earthworm , which inserts large conductance pores in artificial and natural lipid membranes containing sphingomyelin. Its cytolytic and hemolytic activity is rather indicative of a pore-forming toxin; however, lysenin channels present intricate regulatory features manifested as a reduction in conductance upon exposure to multivalent ions. Lysenin pores also present a large unobstructed channel, which enables the translocation of analytes, such as short DNA and peptide molecules, driven by electrochemical gradients. These important features of lysenin channels provide opportunities for using them as sensors for a large variety of applications. In this respect, this literature review is focused on investigations aimed at the potential use of lysenin channels as analytical tools. The described explorations include interactions with multivalent inorganic and organic cations, analyses on the reversibility of such interactions, insights into the regulation mechanisms of lysenin channels, interactions with purines, stochastic sensing of peptides and DNA molecules, and evidence of molecular translocation. Lysenin channels present themselves as versatile sensing platforms that exploit either intrinsic regulatory features or the changes in ionic currents elicited when molecules thread the conducting pathway, which may be further developed into analytical tools of high specificity and sensitivity or exploited for other scientific biotechnological applications.
Lysenin 是一种从蚯蚓中提取的形成孔蛋白,它在含有神经鞘磷脂的人工和天然脂质膜中插入大电导孔。其细胞溶解和溶血活性表明它是一种形成孔毒素;然而,lysenin 通道具有复杂的调节特性,表现为暴露于多价离子时电导降低。lysenin 孔还具有一个大的无阻通道,这使得分析物(如短 DNA 和肽分子)能够在电化学梯度的驱动下进行易位。lysenin 通道的这些重要特性为将其用作各种应用的传感器提供了机会。在这方面,本文综述重点介绍了旨在将 lysenin 通道用作分析工具的潜在用途的研究。所描述的探索包括与多价无机和有机阳离子的相互作用、对这种相互作用的可逆性的分析、对 lysenin 通道调节机制的深入了解、与嘌呤的相互作用、对肽和 DNA 分子的随机传感,以及分子易位的证据。lysenin 通道本身就是多功能的传感平台,利用内在的调节特性或分子穿过导电途径时引起的离子电流变化,可以进一步开发出具有高特异性和灵敏度的分析工具,或用于其他科学生物技术应用。