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A Quantitative Description of KcsA Gating Ⅰ: Macroscopic Currents

机译:KcsA门控的定量描述Ⅰ:宏观电流

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The prokaryotic K~+ channel KcsA is activated by intracellular protons and its gating is modulated by transmem-brane voltage. Typically, KcsA functions have been studied under steady-state conditions, using macroscopic Rb~+-flux experiments and single-channel current measurements. These studies have provided limited insights into the gating kinetics of KcsA due to its low open probability, uncertainties in the number of channels in the patch, and a very strong intrinsic kinetic variability. In this work, we have carried out a detailed analysis of KcsA gating under nonstationary conditions by examining the influence of pH and voltage on the activation, deactivation, and slow-inactivation gating events. We find that activation and deactivation gating of KcsA are predominantly modulated by pH without a significant effect of voltage. Activation gating showed sigmoidal pH dependence with a pKa of ~ 4.2 and a Hill coefficient of ~ 2. In the sustained presence of proton, KcsA undergoes a time-dependent decay of conductance. This inactivation process is pH independent but is modulated by voltage and the nature of permeant ion. Recovery from inactivation occurs via deactivation and also appears to be voltage dependent. We further find that inactivation in KcsA is not entirely a property of the open-conducting channel but can also occur from partially "activated" closed states. The time course of onset and recovery of the inactivation process from these pre-open closed states appears to be different from the open-state inactivation, suggesting the presence of multiple inactivated states with diverse kinetic pathways. This information has been analyzed together with a detailed study of KcsA single-channel behavior (in the accompanying paper) in the framework of a kinetic model. Taken together our data constitutes the first quantitative description of KcsA gating.
机译:原核K +通道KcsA被细胞内质子激活,其门控由跨膜电压调节。通常,已使用宏观的Rb〜+磁通实验和单通道电流测量在稳态条件下研究了KcsA函数。由于KcsA的打开概率低,补丁中通道数量的不确定性以及非常强的内在动力学变异性,这些研究对KcsA的门控动力学仅提供了有限的见识。在这项工作中,我们通过检查pH和电压对激活,失活和慢速失活门控事件的影响,对非平稳条件下的KcsA门控进行了详细的分析。我们发现KcsA的激活和失活门控主要受pH调节,而没有明显的电压影响。激活门控显示出S型pH依赖性,pKa约为4.2,Hill系数约为2。在质子的持续存在下,KcsA的电导随时间而衰减。该失活过程与pH无关,但是受电压和渗透离子性质的调节。从失活中恢复会通过失活发生,并且似乎与电压有关。我们进一步发现,KcsA中的失活不完全是开路传导通道的特性,而且还可能发生于部分“激活”的闭合状态。从这些打开前关闭状态的失活过程开始和恢复的时间过程似乎与打开状态失活不同,这表明存在具有多种动力学途径的多个失活状态。在动力学模型的框架内,已对该信息进行了分析,并详细研究了KcsA单通道行为(在随附的论文中)。总而言之,我们的数据构成了KcsA门控的第一个定量描述。

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