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Nalivaika, E. A.

Publications and source records attributed to Nalivaika, E. A..

3 recordsLinked to original sources

Structural Adaptation of Darunavir Analogs Against Primary Resistance Mutations in HIV-1 Protease

HIV-1 protease is one of the prime targets of agents used in antiretroviral therapy against HIV. However, under selective pressure of protease inhibitors, primary mutations at the active site weaken inhibitor binding to confer resistance. Darunavir (DRV) is the most potent HIV-1 protease inhibitor in clinic; resistance is limited, as DRV fits well within the substrate envelope. Nevertheless, resistance is observed due to hydrophobic changes at residues including I50, V82 and I84 that line the S1/S1 pocket within the active site. Through enzyme inhibition assays and a series of 12 crystal structures, we interrogated susceptibility of DRV and two potent analogs to primary S1 mutations. The analogs had modifications at the hydrophobic P1 moiety to better occupy the unexploited space in the S1 pocket where the primary mutations were located. Considerable losses of potency were observed against protease variants with I84V and I50V mutations for all three inhibitors. The crystal structures revealed an unexpected conformational change in the flap region of I50V protease bound to the analog with the largest P1 moiety, indicating interdependency between the S1 subsite and the flap region. Collective analysis of protease-inhibitor van der Waals (vdW) interactions in the crystal structures using principle component analysis indicated I84V mutation underlying the largest variation in the vdW contacts. Interestingly, the principle components were able to distinguish inhibitor identity and relative potency solely based on vdW interactions of active site residues in the crystal structures. Our results reveal the interplay between inhibitor P1 moiety and primary S1 mutations, as well as suggesting a novel method for distinguishing the interdependence of resistance through principle component analyses.

molecular biology

HIV-1 Protease Uses Bi-Specific S2/S2’ Subsites To Optimize Cleavage of Two Classes of Target Sites

Retroviral proteases (PR) have a unique specificity that allows cleavage of sites with or without a P1 proline. A P1 proline is required at the MA/CA cleavage site due to its role in a post-cleavage conformational change in the capsid protein. However, the HIV-1 PR prefers to have large hydrophobic amino acids flanking the scissile bond, suggesting PR recognizes two different classes of substrate sequences. We analyzed the cleavage rate of over 150 iterations of six different HIV-1 cleavage sites to explore rate determinants of cleavage. We found that cleavage rates are strongly influenced by the two amino acids flanking the amino acids at the scissile bond (P2-P1/P1-P2), with two complementary sets of rules. When P1 is proline, the P2 side chain interacts with a polar region in the S2 subsite of the PR, while the P2 amino acid interacts with a hydrophobic region of the S2 subsite. When P1 is not proline, the orientations of the P2 and P2 side chains with respect to the scissile bond are reversed; P2 residues interact with a hydrophobic face of the S2 subsite while the P2 amino acid usually engages hydrophilic amino acids in the S2 subsite. These results reveal that the HIV-1 PR has evolved bi-functional S2 and S2 subsites to accommodate the steric effects imposed by a P1 proline on the orientation of P2 and P2 substrate side chains. These results also suggest a new strategy for inhibitor design to engage the multiple specificities in these subsites.

biochemistry

Structural analysis of the active site and DNA binding of human cytidine deaminase APOBEC3B

APOBEC3s proteins (A3s), a family of human cytidine deaminases, protect the host cell from endogenous retro-elements and exogenous viral infections by introducing hypermutations. However, the ability to mutate genomic DNA makes A3s a potential cancer source. Of the 7 human A3s, A3B has been implicated as an endogenous cause for multiple cancers. Despite overall similarity, A3s have distinct deamination activity with A3B among the least catalytically active. Over the past few years, several structures of apo as well as DNA-bound A3 proteins have been determined. These structures revealed the molecular determinants of nucleotide specificity and the importance of the loops around the active site in DNA binding. However, for A3B, the structural basis for regulation of deamination activity and the role of active site loops in coordinating DNA had remained unknown. In this study, using a combination of advanced molecular modelling followed by experimental mutational analysis and dynamics simulations, we investigated molecular mechanism of A3B regulating activity and DNA binding. We identified a unique auto-inhibited conformation of A3B that restricts access and binding of DNA to the active site, mainly due to the extra PLV residues in loop 1. We modelled DNA binding to fully native A3B and found that Arg211 in the arginine patch of loop1 is the gatekeeper while Arg212 stabilizes the bound DNA. This model also identified the critical residues for substrate specificity, especially at the -1 position. Our results reveal the structural basis for relatively lower catalytic activity of A3B and provide opportunities for rational design of inhibitors that specifically target A3B to benefit cancer therapeutics.

biochemistry