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Bartoelke, R.

Publications and source records attributed to Bartoelke, R..

6 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↗

Cryptochrome 4b protein is likely irrelevant for the radical pair based magnetoreception in the European robin

Avian cryptochrome 4 (Cry4) protein is a putative magnetosensitive molecule facilitating precise long-distance navigation in migratory birds. Two splice variants of Cry4 were reported in European robin (Erithacus rubecula), namely ErCry4a and ErCry4b. It is known that ErCry4a protein exhibits electron transfer between the flavin adenine dinucleotide (FAD) cofactor and tryptophan residues that generates magnetically sensitive radical pairs for magnetoreception. However, little is known about the ErCry4b isoform. We therefore characterized the properties of ErCry4b to see whether it fulfills prerequisites to be a radical pair magnetic sensor molecule. Our results show that ErCry4b protein does not bind FAD in vitro. Computational structure simulations revealed that the FAD non-binding in ErCry4b is likely due to protein structure dynamics. Furthermore, ErCry4b protein abundance in the robin retina, cerebellum and liver is below the detection limit of immunoprecipitation assays coupled with mass spectrometry. Meanwhile, transcript analyses show that ErCRY4b mRNA abundance is 10 times less than ErCRY4b in the retina. In conclusion, ErCry4b does not fulfill the prerequisites to be a radical pair based magnetic sensing molecule due to the lack of FAD binding, and it might not even be expressed as a functional protein in the European robin.

biochemistry↗

Full-length Cryptochrome 1 in the outer segments of the retinal blue cone photoreceptors in humans and great apes suggests a role beyond transcriptional repression

Mammalian cryptochrome 1 (CRY1) is a central player in the circadian transcription-translation feedback loop, crucial for maintaining a roughly 24-hour rhythm. CRY1 was suggested to also function as blue-light photoreceptor in humans and has been found to be expressed at the mRNA level in various cell types of the inner retina. However, attempts to detect CRY1 at the protein level in the human retina have remained unsuccessful so far. Using various C-terminal specific antibodies recognizing full-length CRY1 protein, we consistently detected selective labelling in the outer segments of short wavelength-sensitive (SWS1, "blue") cone photoreceptor cells across human, bonobo, and gorilla retinae. No other retinal cell types were stained, which is in contrast to what would be expected of a ubiquitous clock protein. Subcellular fractionation experiments in transfected HEK cells using a C-terminal specific antibody located full-length CRY1 in the cytosol and membrane fractions. Our findings indicate that human CRY1 has several different functions including at least one non-clock function. Our results also raise the likely possibility that several different versions of CRY1 exists in humans. We suggest that truncation of the C-terminal tail, maybe to different degrees, may affect the localization and function of human CRY1.

cell biology↗

Comparison of retinol binding protein 1 with cone specific G-protein as putative effector molecules in cryptochrome signalling

Vision and magnetoreception in navigating songbirds are strongly connected as recent findings link a light dependent radical-pair mechanism in cryptochrome proteins to signalling pathways in cone photoreceptor cells. A previous yeast-two-hybrid screening approach identified six putative candidate proteins showing binding to cryptochrome type 4a. So far, only the interaction of the cone specific G-protein transducin -subunit was investigated in more detail. In the present study, we compare the binding features of the G-protein -subunit with those of another candidate from the yeast-two-hybrid screen, cellular retinol binding protein. Purified recombinant European robin retinol binding protein bound retinol with high affinity, displaying an EC50 of less than 5 nM, thereby demonstrating its functional state. We applied surface plasmon resonance and a Forster resonance transfer analysis to test for interactions between retinol binding protein and cryptochrome 4a. In the absence of retinol, we observed no robust binding events, which contrasts the strong interaction we observed between cryptochrome 4a and the G-protein -subunit. We conclude that retinol binding protein is unlikely to be involved in the primary magnetosensory signalling cascade.

biochemistry↗

European Robin Cryptochrome-4a Associates with Lipid Bilayers in an Ordered Manner, Fulfilling a Molecular-Level Condition for Magnetoreception

Since the middle of the 20th century, long-distance avian migration has been known to rely partly on the geomagnetic field. However, the underlying sensory mechanism is still not fully understood. Cryptochrome 4a (ErCry4a), found in European Robin (Erithacus rubecula), a night-migratory songbird has been suggested to be a magnetic sensory molecule. It is sensitive to external magnetic fields via the so-called radical-pair mechanism. ErCry4a is primarily located in the outer segments of the double cone photoreceptor cells in the eye, which contain stacked and highly ordered membranes that could facilitate the anisotropic attachment of ErCry4a needed for magnetic compass sensing. Here, we investigate possible interactions of ErCry4a with a model membrane that mimics the lipid composition of outer segments of vertebrate photoreceptor cells by using experimental and computational approaches. Experimental results show that the attachment of ErCry4a to the membrane could be controlled by the physical state of lipid molecules (average area per lipid) in the outer leaflet of the lipid bilayer. Furthermore, polarization modulation infrared reflection absorption spectroscopy allowed us to determine the conformation, motional freedom, and average orientation of the - helices in ErCry4a in a membrane-associated state. Atomistic molecular dynamics studies supported the experimental results. A [~]1000 kcal mol-1 decrease in the interaction energy as a result of ErCry4a membrane binding was determined compared to cases where no protein binding to the membrane occurred. At the molecular level, the binding seems to involve negatively charged carboxylate groups of the phosphoserine lipids and the C-terminal residues of ErCry4a. Our study reveals a potential direct interaction of ErCry4a with the lipid membrane and discusses how this binding could be an essential step for ErCry4a to propagate a magnetic signal further and thus fulfill a role as a magnetoreceptor.

biophysics↗