Chattopadhayay Sandip, Ghosh Anupam, Kumar Mukhopadhyay Titas, Sharma Rashmi, Datta Ayan, Talukdar Pinaki
Department of Chemistry, Indian Institute of Science Education and Research Pune, Dr. Homi Bhabha Road, Pashan, 411008, Pune, Maharashtra, India.
School of Chemical Sciences, Indian Association for the Cultivation of Science, Raja Subodh Chandra Mallick Road, Jadavpur, 700032, Kolkata, West Bengal, India.
Angew Chem Int Ed Engl. 2023 Nov 13;62(46):e202313712. doi: 10.1002/anie.202313712. Epub 2023 Oct 13.
The structural tropology and functions of natural cation-anion symporting channels have been continuously investigated due to their crucial role in regulating various physiological functions. To understand the physiological functions of the natural symporter channels, it is vital to develop small-molecule-based biomimicking systems that can provide mechanistic insights into the ion-binding sites and the ion-translocation pathways. Herein, we report a series of bis((R)-(-)-mandelic acid)-linked 3,5-diaminobenzoic acid based self-assembled ion channels with distinctive ion transport ability. Ion transport experiment across the lipid bilayer membrane revealed that compound 1 b exhibits the highest transport activity among the series, and it has interesting selective co-transporting functions, i.e., facilitates K /ClO symport. Electrophysiology experiments confirmed the formation of supramolecular ion channels with an average diameter of 6.2±1 Å and single channel conductance of 57.3±1.9 pS. Selectivity studies of channel 1 b in a bilayer lipid membrane demonstrated a permeability ratio of , , and indicating the higher selectivity of the channel towards KClO over KCl salt. A hexameric assembly of a trimeric rosette of 1 b was subjected to molecular dynamics simulations with different salts to understand the supramolecular channel formation and ion selectivity pattern.
由于天然阳离子-阴离子协同转运通道在调节各种生理功能中起着关键作用,其结构拓扑学和功能一直受到持续研究。为了理解天然协同转运通道的生理功能,开发基于小分子的仿生系统至关重要,该系统能够提供有关离子结合位点和离子转运途径的机制见解。在此,我们报道了一系列基于双((R)-(-)-扁桃酸)-连接的3,5-二氨基苯甲酸的具有独特离子转运能力的自组装离子通道。跨脂质双分子层膜的离子转运实验表明,化合物1b在该系列中表现出最高的转运活性,并且具有有趣的选择性共转运功能,即促进K⁺/ClO₄⁻协同转运。电生理学实验证实形成了平均直径为6.2±1 Å且单通道电导为57.3±1.9 pS的超分子离子通道。在双分子层脂质膜中对通道1b进行的选择性研究表明,其渗透率比为 , , ,表明该通道对KClO₄的选择性高于KCl盐。对1b的三聚体玫瑰花结的六聚体组装体进行了不同盐的分子动力学模拟,以了解超分子通道的形成和离子选择性模式。