化学渗透
化学
ATP合酶
氧化磷酸化
联轴节(管道)
电子传输链
电化学电位
膜电位
电子转移
电化学梯度
解偶联剂
质子
膜
生物物理学
氧化还原
呼吸链
三磷酸腺苷
质子耦合电子转移
线粒体
化学物理
细胞呼吸
化学计量学
呼吸
氧气
线粒体内膜
电子
电化学
跨膜蛋白
电位
质子泵
膜转运
质子输运
物理
热力学
原子物理学
标识
DOI:10.26124/bec.2025-0007
摘要
The protonmotive force (pmF) is central to oxidative phosphorylation (OXPHOS), coupling oxygen consumption (OX) in cell respiration to phosphorylation of ADP to ATP (PHOS). Defined as an electrochemical potential difference, the pmF consists of two components: the electric part pmFel, linked to the transmembrane potential difference (ΔΨ), and the diffusive part pmFd, related to the pH difference (ΔpH) across the mitochondrial inner membrane. Although pmFel is dominant in animal mitochondria, pmFd — often overlooked — contributes significantly under physiological conditions. Peter Mitchell’s chemiosmotic theory defines four integrated coupling modules. Module 1: The ATP synthase utilizes the pmF producing ATP (PHOS). Module 2: The electron transfer system generates the pmF by redox-driven proton transport (OX). Module 3: Coupling of proton translocation to electroneutral ion exchange modulates the balance from pmFd to pmFel. Module 4: The coupling membrane integrates these structural and functional coupling modules. A ΔpH of only 0.5 units contributes approximately 15–20 % to the total pmF, emphasizing that pmFd can provide a significant thermodynamic push. Oversimplified textbook conventions are challenged by rigorously incorporating stoichiometric numbers νH+ and the charge number zH+ in the equations defining the advancement of proton translocation and the protonmotive force. A transparent theoretical framework bridges theory and experiment with an innovative conceptual drive. The pmF explains the mechanism of OXPHOS coupling. H+-linked electron transfer in redox reactions drives compartmental H+ transport. The pmF with units [J·mol-1] or [V = J·C1] is isomorphic to physical forces with unit newton [N = J·m-1]. Force times advancement of the motive quantity yields energy [J] in the form of exergy available for work.
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