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Dautaj, G.

Publications and source records attributed to Dautaj, G..

2 recordsLinked to original sources

Magnetic sensitivity of cryptochrome 4a in domesticated quail with migratory origins

Magnetoreception, the ability of animals to sense the Earths magnetic field, is a fascinating biological phenomenon. Cryptochromes, in particular cryptochrome 4a (CRY4a), have emerged as potential key players in mediating magnetic sensing in various bird species. Building on an earlier investigation of magnetic field effects on European robin (Erithacus rubecula) CRY4a, we focus here on CRY4a from the common/Japanese quail (Coturnix coturnix/japonica). Japanese quail is one of the very small number of domesticated bird species whose wild forms are migratory. A detailed spectroscopic study of purified quail CRY4a shows that it has magnetic properties similar to robin CRY4a, suggesting that the quail could be a promising additional experimental model with which to unravel the intricacies of magnetoreception in migratory birds.

biophysics↗

Absence of 8-HDF and MTHF Antenna Chromophore Binding in ErCRY4a Suggests a Possible Flavin-Only Cofactor State: Insights from Biochemical and Computational Analyses

Cryptochromes and photolyases are blue-light-sensitive flavoproteins that generally bind flavin adenine dinucleotide (FAD) and have distinct functions. Cryptochrome 4a (CRY4a) is a protein expressed in the double-cone photoreceptors of the retina in migratory songbirds like European robin (Erithacus rubecula) and is hypothesized as the primary sensor for avian magnetoreception. In addition to FAD, most photolyases and some cryptochromes bind antenna chromophores such as 8-hydroxy-5-deazaflavin (8-HDF) or 5,10-methenyltetrahydrofolate (MTHF) to enhance light absorption. Here, we investigated whether Erithacus rubecula Cryptochrome 4a (ErCRY4a) also binds 8-HDF and/or MTHF. 8-HDF binding was studied by co-expressing ErCRY4a with the fbIC gene that encodes for 8-HDF synthase and thus for production of 8-HDF in E. coli. As a positive control for 8-HDF binding, we expressed Xenopus laevis 6-4 photolyase (Xl6-4PL) which is known to bind both FAD and 8-HDF. This experiment resulted in successful binding of 8-HDF to Xl6-4PL, but not to ErCRY4a. We studied the binding of MTHF using in vitro reconstitution followed by UV-Vis spectroscopy and isothermal titration calorimetry (ITC) assays. No interaction was observed between MTHF and ErCRY4a. To theoretically understand the binding of potential antenna chromophores to ErCRY4a, we performed computational analyses. We found no similarity at the relevant binding sites between the sequences of ErCRY4a with proteins shown to bind MTHF or 8-HDF. This suggests that the binding pocket is not conserved. Our study proposes that ErCRY4a only harbor one light-sensitive cofactor, which in turn suggests a functional specialization different from most photolyases.

biochemistry↗