Xanthopsin-Like Systems Via Site-Specific Click-Functionalization of a Retinoic Acid Binding Protein
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The use of light-responsive proteins to control both living or synthetic cells, is at the core of the expanding fields of optogenetics and synthetic biology. It is thus apparent that a richer reaction toolbox for the preparation of such systems is of fundamental importance. Here, we provide a proof-of-principle demonstration that Morita-Baylis-Hillman adducts can be employed to perform a facile site-specific, irreversible and diastereoselective click-functionalization of a lysine residue buried into a lipophilic binding pocket and yielding an unnatural chromophore with an extended π-system. In doing so we effectively open the path to the in vitro preparation of a library of synthetic proteins structurally reminiscent of xanthopsin eubacterial photoreceptors. We argue that such a library, made of variable unnatural chromophores inserted in an easy-to-mutate and crystallize retinoic acid transporter, significantly expand the scope of the recently introduced rhodopsin mimics as both optogenetic and "lab-on-a-molecule" tools.
Saletti M, Venditti J, Paolino M, Zacchei A, Giuliani G, Giorgi G RSC Adv. 2023; 13(51):35773-35780.
PMID: 38090072 PMC: 10711453. DOI: 10.1039/d3ra06792k.
Paolino M, De Candia M, Purgatorio R, Catto M, Saletti M, Tondo A Molecules. 2023; 28(15).
PMID: 37570828 PMC: 10421270. DOI: 10.3390/molecules28155857.
Paolino M, Rullo M, Maramai S, De Candia M, Pisani L, Catto M RSC Med Chem. 2022; 13(7):873-883.
PMID: 35923722 PMC: 9298480. DOI: 10.1039/d2md00042c.
Paolino M, Saletti M, Reale A, Licciardi M, Varvara P, Marquette A Chemistry. 2022; 28(50):e202201477.
PMID: 35695822 PMC: 9541190. DOI: 10.1002/chem.202201477.