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Woodward, J. R.

Publications and source records attributed to Woodward, J. R..

3 recordsLinked to original sources

The low-field effect in radical pairs: a zero-field singlet-triplet basis picture

We present a new formulation of the low-field effect (LFE) in spin-correlated radical pairs based on a zero-field singlet-triplet basis for the isotropic spin Hamiltonian. The aim is to provide a description that is both formally rigorous and mechanistically transparent, especially in the regime of weak magnetic fields such as the geomagnetic field. For the standard model radical pair containing a single spin [Formula] nucleus, we show that the conventional singlet-triplet basis obscures the distinct dynamical roles of the hyperfine and Zeeman interactions. In the zero-field S-T basis, by contrast, the mechanism separates cleanly: isotropic hyperfine coupling mixes singlet-doublet and triplet-doublet states, whereas the weak-field Zeeman interaction mixes triplet-quartet and triplet-doublet states without directly introducing an additional singlet-triplet coupling. The LFE is therefore revealed as a sequential process in which a weak field unlocks access from a triplet-only manifold to a singlet-accessible triplet manifold, from which hyperfine-driven singlet-triplet interconversion can occur. We then generalize this picture to radical pairs with arbitrary isotropic hyperfine structures by identifying maximal, interior, and, when present, minimal triplet-only manifolds in the zero-field spectrum. Finally, we introduce a practical blockwise dark-state recruitment measure for the triplet-only zero-field state space made singlet-accessible by a weak field, and show how this quantity depends on hyperfine symmetry, including the effects of equivalent nuclei. The resulting framework provides both a simple physical picture of the LFE and a general route to estimating its structural upper bound for arbitrary radical pairs.

biophysics↗

How the Drosophila Cryptochrome C-terminus mediates magnetosensitivity

The Earths magnetic field plays an important role in the seasonal migrations of many species of animals. A Cryptochrome (CRY)-based radical pair mechanism (RPM) has been suggested to underlie the mechanistic basis of animal magnetosensitivity and navigation. The quantum spin state of a radical pair involving flavin adenine dinucleotide (FAD) bound to CRY in the canonical pocket is sensitive to external magnetic fields that can alter the signalling concentration of activated CRY1-5. However, several experimental observations challenge this model including the finding that the C-terminal fragment of Drosophila CRY (DmCRY), which lacks any canonical FAD binding pocket, and human CRY2, which lacks affinity for FAD, are sufficient to support magnetosensitivity6-9. Here, we use all-atom molecular dynamic (MD) simulations, alongside in vitro and in vivo analyses to reveal that the C-terminus of Drosophila CRY (DmCRY-CT) binds FAD. FAD binding is required for transduction of a magnetic signal within cells, and, in vitro, initiates formation of high molecular weight DmCRY-CT oligomers, including large insoluble aggregates reminiscent of CRY photobodies observed in plants10-14. These results provide a plausible mechanistic basis for several experimental observations that have reported non-canonical magnetosensitivity in animals.

biochemistry↗

Radical pair based magnetic field effects in cells: the importance of photoexcitation conditions and single cell measurements

A recent publication1 on the bioRxiv preprint server aims to replicate our observation of magnetic field effects on the autofluorescence of HeLa cells2, but is unable to reproduce the effects described in our original work. Here we examine this new study and demonstrate, based on a model of the reaction photocycle, why the differences in the measurement conditions used render the experiment unlikely to be able to observe the originally reported effect. In addition, we highlight substantial problems in the quality of the data in the replicate study and reiterate the advantages of the direct modulation, single cell measurement approach presented in the original work over a more standard statistical approach.

cell biology↗