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Information Transmission and Processing in G-Protein-Coupled-Receptor Complexes

Information Transmission and Processing in G-Protein-Coupled-Receptor Complexes

来源:Arxiv_logoArxiv
英文摘要

G-protein-coupled receptors (GPCRs) are central to cellular information processing, yet the physical principles governing their switching behavior remain incompletely understood. We present a first principles theoretical framework, grounded in nonequilibrium thermodynamics, to describe GPCR switching as observed in light-controlled impedance assays. The model identifies two fundamental control parameters: (1) ATP/GTP-driven chemical flux through the receptor complex, and (2) the free-energy difference between phosphorylated and dephosphorylated switch states. Together, these parameters defin the switch configuration. The model predicts that GPCRs can occupy one of three quasi-stable configurations, each corresponding to a local maximum in information transmission. Active states support chemical flux and exist in an on or off switch configuration, whereas inactive states lack flux, introducing a distinction absent in conventional phosphorylation models. The model takes two ligand-derived inputs: fixed structural features and inducible conformations (e.g. cis or trans). It shows that phosphatase activity, modeled as an energy barrier, chiefly governs on/off occupancy, whereas the kinase sustains flux without directly determining the switch configuration. Comparison with experimental data confirms the predicted existence of multiple quasi-stable states modulated by ligand conformation. Importantly, this framework generalizes beyond GPCRs to encompass a wider class of biological switching systems driven by nonequilibrium chemical flux.

Roger D. Jones、Achille Giacometti、Alan M. Jones

生物科学理论、生物科学方法生物化学生物物理学分子生物学

Roger D. Jones,Achille Giacometti,Alan M. Jones.Information Transmission and Processing in G-Protein-Coupled-Receptor Complexes[EB/OL].(2025-08-14)[2025-08-28].https://arxiv.org/abs/2508.11039.点此复制

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