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Varfolomeeva, L. A.

Publications and source records attributed to Varfolomeeva, L. A..

3 recordsLinked to original sources

Structural framework for the understanding spectroscopic and functional signatures of the cyanobacterial Orange Carotenoid Protein families

The Orange Carotenoid Protein (OCP) is a unique photoreceptor crucial for cyanobacterial photoprotection. Best studied Synechocystis sp. PCC 6803 OCP belongs to the large OCP1 family. Downregulated by the Fluorescence Recovery Protein (FRP) in low-light, high-light-activated OCP1 binds to the phycobilisomes and performs non-photochemical quenching. Recently discovered families OCP2 and OCP3 remain structurally and functionally underexplored, and no systematic comparative studies have ever been conducted. Here we present two first crystal structures of OCP2 from morphoecophysiologically different cyanobacteria and provide their comprehensive structural, spectroscopic and functional comparison with OCP1, the recently described OCP3 and all-OCP ancestor. Structures enable correlation of spectroscopic signatures with the effective number of hydrogen and discovered here chalcogen bonds anchoring the ketocarotenoid in OCP and rationalize the observed differences in OCP/FRP and OCP/phycobilisome functional interactions. These data are expected to foster OCP research and applications in optogenetics, targeted carotenoid delivery and cyanobacterial biomass engineering.

biochemistry↗

Nanocontainer derived from silkworm carotenoprotein for carotenoid extraction and presentation in biotechnology and biomedical applications

Found in many organisms, soluble carotenoproteins are considered as antioxidant nanocarriers for biomedical applications, although the structural basis for their carotenoid transfer function, a prerequisite for rational bioengineering, is largely unknown. We report crystal structures of the Carotenoid-Binding Protein from Bombyx mori (BmCBP) in apo- and zeaxanthin (ZEA)-bound forms. We use spectroscopy and calorimetry to characterize how ZEA and BmCBP mutually affect each other in the complex, identify key carotenoid-binding residues, confirm their roles by crystallography and carotenoid-binding capacity of BmCBP mutants and reconstitute BmCBP complexes with biomedically-relevant xanthophylls lutein, zeaxanthin, canthaxanthin and astaxanthin. By cost-effectively and scalably solubilizing xanthophylls from various crude herbal extracts, His-tagged BmCBP remains monomeric and forms a dynamic nanocontainer delivering carotenoids to liposomes and to other carotenoid-binding proteins, which in particular makes the Orange Carotenoid Protein, a promising optogenetic tool, photoactive. Furthermore, BmCBP(ZEA) administration stimulates fibroblast growth, which paves the way for its biomedical applications.

biochemistry↗

Crystal structure and functional peculiarities of a primordial Orange Carotenoid Protein (OCPX)

The two-domain photoactive Orange Carotenoid Protein (OCP) confers photoprotection in cyanobacteria and presumably stems from domain fusion. Yet, the primitive thylakoid-less cyanobacteria Gloeobacter encodes a complete OCP. Its photosynthesis regulation lacks the so-called Fluorescence Recovery Protein (FRP), which in Synechocystis inhibits OCP-mediated phycobilisome fluorescence quenching, and Gloeobacter OCP belongs to the recently defined, heterogeneous clade OCPX (GlOCPX), the least characterized compared to OCP2 and especially OCP1 clades. Here we describe the first crystal structure of OCPX and provide its detailed structural and functional comparison with OCP1 from Synechocystis. Monomeric GlOCPX quenches Synechocystis phycobilisomes but displays drastically accelerated, less temperature-dependent recovery after photoactivation, evades regulation by FRP from other species and reveals numerous structural features reflecting its functional peculiarities. Our detailed description of a primordial OCPX sheds light on the evolution of the OCP-dependent photoprotection mechanism, rationalizing subdivision of the OCPX clade into subclades.

biochemistry↗