Voldsgaard Clausen Michael
Aarhus Institute of Advanced Studies, Aarhus University, Aarhus, Denmark.
Channels (Austin). 2020 Dec;14(1):87-97. doi: 10.1080/19336950.2020.1732004.
Ion-channels are membrane proteins that can adopt several distinct structural conformations. Some of the conformations are open and allow the passage of ions through the membrane; others are closed and hinder ion flow. Patch-clamp recordings of single ion-channels show if a channel is open or closed, but does not immediately reveal the underlying mechanism, which typically includes several open and closed conformations.With kinetic analysis of single-channel data, sequences of observed open and closed times are fitted to proposed schemes to deduct the underlying kinetics of the ion-channel. Current programs to perform kinetic analysis uses initial parameter guessing. Here an alternative approach that uses a global fitting procedure and no initial parameter seeding is developed and tested. Different fitting algorithms that use variations and combinations of Simplex-optimization, Genetic Algorithm and Particle Swarm are tested against simulated data with brief events removed as in real resolution limited data. A two-step fitting algorithm that uses Particle Swarm optimization to find initial parameters and then a modified Simplex approach to fine-adjust the initial parameters successfully find the correct rates used for data simulation. SCAIM (Single Channel Analysis in MATLAB) facilitate the deduction of kinetic schemes underlying single-channel data.
离子通道是能够呈现多种不同结构构象的膜蛋白。其中一些构象是开放的,允许离子穿过膜;其他构象是关闭的,会阻碍离子流动。对单个离子通道的膜片钳记录显示通道是开放还是关闭,但并不能立即揭示其潜在机制,该机制通常包括几种开放和关闭的构象。通过对单通道数据进行动力学分析,将观察到的开放和关闭时间序列与提出的方案进行拟合,以推断离子通道的潜在动力学。当前执行动力学分析的程序使用初始参数猜测。在此,开发并测试了一种使用全局拟合程序且无需初始参数设定的替代方法。针对去除了短暂事件的模拟数据(如同实际分辨率受限的数据),测试了使用单纯形优化、遗传算法和粒子群算法的变体及组合的不同拟合算法。一种两步拟合算法,先使用粒子群优化来找到初始参数,然后使用改进的单纯形方法对初始参数进行微调,成功找到了用于数据模拟的正确速率。SCAIM(MATLAB中的单通道分析)有助于推断单通道数据背后的动力学方案。