The Quantum Compass Mechanism in Cryptochromes

Fuente: arXiv
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Auteurs principaux: Chengye, Zou, Ya-jun, Liu, Beibei, Wang
Format: Preprint
Publié: 2025
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author Chengye, Zou
Ya-jun, Liu
Beibei, Wang
author_facet Chengye, Zou
Ya-jun, Liu
Beibei, Wang
contents Cryptochrome flavoproteins are prime candidates for mediating magnetic sensing in migratory animals via the radical pair mechanism (RPM), a spin-dependent process initiated by photoinduced electron transfer. The canonical FAD-tryptophan radical pair exhibits pronounced anisotropic hyperfine couplings, enabling sensitivity to geomagnetic fields. However, maintaining spin coherence under physiological conditions and explaining responses to weak radiofrequency fields remain unresolved challenges. Alternative radicals, such as superoxide and ascorbate, have been proposed to enhance anisotropy or suppress decoherence. This review summarizes the quantum basis of magnetoreception, evaluates both canonical and alternative radical pair models, and discusses amplification strategies including triads, spin scavenging, and bystander radicals. Emphasis is placed on how molecular geometry, exchange and dipolar interactions, and hyperfine topology modulate magnetic sensitivity. Key open questions and future directions are outlined, highlighting the need for structural and dynamical data under physiological conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2508_21350
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The Quantum Compass Mechanism in Cryptochromes
Chengye, Zou
Ya-jun, Liu
Beibei, Wang
Biomolecules
Chemical Physics
Cryptochrome flavoproteins are prime candidates for mediating magnetic sensing in migratory animals via the radical pair mechanism (RPM), a spin-dependent process initiated by photoinduced electron transfer. The canonical FAD-tryptophan radical pair exhibits pronounced anisotropic hyperfine couplings, enabling sensitivity to geomagnetic fields. However, maintaining spin coherence under physiological conditions and explaining responses to weak radiofrequency fields remain unresolved challenges. Alternative radicals, such as superoxide and ascorbate, have been proposed to enhance anisotropy or suppress decoherence. This review summarizes the quantum basis of magnetoreception, evaluates both canonical and alternative radical pair models, and discusses amplification strategies including triads, spin scavenging, and bystander radicals. Emphasis is placed on how molecular geometry, exchange and dipolar interactions, and hyperfine topology modulate magnetic sensitivity. Key open questions and future directions are outlined, highlighting the need for structural and dynamical data under physiological conditions.
title The Quantum Compass Mechanism in Cryptochromes
topic Biomolecules
Chemical Physics
url https://arxiv.org/abs/2508.21350