Department of Anesthesiology, Washington University in St. Louis, St. Louis, Missouri.
Department of Chemistry, University of Wisconsin, Madison, Wisconsin.
Biophys J. 2022 Mar 15;121(6):1105-1114. doi: 10.1016/j.bpj.2022.01.026. Epub 2022 Feb 2.
Synthetic ion channels based on benzo(crown-ether) compounds have been previously reported to function as ion-selective channels in planar lipid bilayers, with hydrogen bonding networks implicated in the formation of self-aggregated complexes. Herein, we report the synthesis and characterization of two new families of benzo(crown-ether) compounds, termed monoacylated and monoalkylated benzo(crown-ethers) (MABCE), both of which lack hydrogen bond donors. Depending on the length of alkyl chain substituent and the size of macrocycle, MABCE compounds inhibit bacterial growth and transport ions across biological membranes. Single-channel recordings show that the activity is higher in the presence of K as compared with Na; however, under bionic conditions, open channels do not exhibit any preference between the two ions. These findings reveal that the ionic preference of benzo(crown-ether) compounds is either due to the regulation of assembly of ion-conducting supramolecular complexes or its membrane insertion by cations, as opposed to ion-selective transport through these scaffolds. Furthermore, our data show that the H-bonding network is not needed to form these assemblies in the membrane.
先前有报道称,基于苯并(冠醚)化合物的合成离子通道在平面脂质双层中作为离子选择性通道发挥作用,氢键网络被认为参与了自聚集配合物的形成。在此,我们报告了两种新的苯并(冠醚)化合物家族的合成和表征,分别称为单酰化和单烷基化苯并(冠醚)(MABCE),它们都缺乏氢键供体。根据烷基链取代基的长度和大环的大小,MABCE 化合物可抑制细菌生长并跨生物膜运输离子。单通道记录表明,与 Na 相比,K 存在时活性更高;然而,在仿生条件下,开放通道在两种离子之间没有表现出任何偏好。这些发现表明,苯并(冠醚)化合物的离子偏好要么是由于调节离子导电超分子配合物的组装,要么是由于阳离子通过这些支架进行离子选择性转运,而不是通过这些支架进行离子选择性转运。此外,我们的数据表明,在膜中形成这些组装体不需要氢键网络。