Excitation Energy Transport with Noise and Disorder in a Model of the Selectivity Filter of an Ion Channel
Amir Jalalinejad, Hassan Bassereh, Vahid Salari, Tapio Ala-Nissila,, Achille Giacometti

TL;DR
This study models excitation energy transfer in a simplified ion channel filter, revealing that noise can enhance transfer efficiency despite disorder, which is crucial for understanding ion conduction mechanisms.
Contribution
It introduces a quantum master equation model incorporating noise and disorder to analyze excitation energy transfer in ion channel selectivity filters, highlighting noise's beneficial role.
Findings
Disorder reduces energy transfer efficiency.
Noise helps recover high efficiency across parameters.
Implications for understanding ion channel function.
Abstract
Selectivity filter is a gate in ion channels which are responsible for the selection and fast conduction of particular ions across the membrane (with high throughput rates of ions/sec and a high 1: discrimination rate between ions). It is made of four strands as the backbone, and each strand is composed of sequences of five amino acids connected by peptide units H-N-C=O in which the main molecules in the backbone that interact with ions in the filter are carbonyl (C=O) groups that mimic the transient interactions of ion with binding sites during ion conduction. It has been suggested that quantum coherence and possible emergence of resonances in the backbone carbonyl groups may play a role in mediating ion conduction and selectivity in the filter. Here, we investigate the influence of noise and disorder on the efficiency of excitation energy transfer (EET) in a linear…
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