Center for Sensory-Motor Interaction, Department of Health Science and Technology, Aalborg University, Denmark.
Biophys Chem. 2010 Jan;146(1):13-24. doi: 10.1016/j.bpc.2009.09.013. Epub 2009 Oct 6.
Photosystem I (PSI) complexes can support a light-driven electrochemical gradient for protons, which is the driving force for energy-conserving reactions across biological membranes. In this work, a computational model that enables a quantitative description of the light-induced proton gradients across the membrane of PSI proteoliposomes is presented. Using a set of electrodiffusion equations, a compartmental model of a vesicle suspended in aqueous medium was studied. The light-mediated proton movement was modeled as a single proton pumping step with backpressure of the electric potential. The model fits determinations of pH obtained from PSI proteoliposomes illuminated in the presence of mediators of cyclic electron transport. The model also allows analysis of the proton gradients in relation to the transmembrane ion fluxes and electric potential. Sensitivity analysis enabled a determination of the parameters that have greater influence on steady-state levels and onset/decay rates of transmembrane pH and electric potential. This model could be used as a tool for optimizing PSI proteoliposomes for photo-electrochemical applications.
光系统 I(PSI)复合物可以支持质子的光驱动电化学梯度,这是生物膜上能量守恒反应的驱动力。在这项工作中,提出了一种能够定量描述 PSI 类囊体膜上光诱导质子梯度的计算模型。使用一组电扩散方程,研究了悬浮在水介质中的囊泡的隔室模型。光介导的质子运动被建模为具有电势能反压的单个质子泵送步骤。该模型拟合了在循环电子传递介质存在下被照射的 PSI 类囊体蛋白脂质体中 pH 值的测定。该模型还允许分析质子梯度与跨膜离子通量和电势的关系。敏感性分析确定了对跨膜 pH 和电势的稳态水平和起始/衰减速率有更大影响的参数。该模型可用于为光电化学应用优化 PSI 类囊体蛋白脂质体。