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Slabonska, J.

Publications and source records attributed to Slabonska, J..

2 recordsLinked to original sources

Low-barrier hydrogen bond determines target-binding affinity and specificity of the antitubercular drug bedaquiline

The role of short strong hydrogen bonds (SSHB) in ligand-target binding remains largely unexplored, thereby hindering a potentially important avenue in the rational drug design. Here, we investigate the interaction between bedaquiline (Bq), a potent anti-tuberculosis drug, and the mycobacterial ATP synthase, to unravel the role of a specific hydrogen bond to a conserved acidic residue in the target affinity and specificity. Our ab initio molecular dynamics simulations reveal that this bond belongs to the SSHB category and accounts for a substantial fraction of the target binding energy. We also demonstrate that the presence of an extra acidic residue (D32), found exclusively in mycobacteria, cooperatively enhances the HB strength ensuring the specificity for the mycobacterial target. Consistently, we show that the removal of D32 markedly weakens the affinity, leading to Bq resistance associated with mutations of D32 to non-acidic residues. By designing simple Bq analogs, we then explore the possibility to overcome the resistance and potentially broaden the Bq antimicrobial spectrum by making the SSHB independent on the presence of the extra acidic residue.

biophysics↗

Determinants of directionality and efficiency of the ATP synthase Fo motor at atomic resolution

Fo subcomplex of ATP synthase is an membraneembedded rotary motor that converts proton motive force into mechanical energy. Despite a rapid increase in the number of high-resolution structures, the mechanism of tight coupling between proton transport and motion of the rotary c-ring remains elusive. Here, using extensive all-atom free energy simulations, we show how the motors directionality naturally arises from the interplay between intra-protein interactions and energetics of protonation of the c-ring. Notably, our calculations reveal that the strictly conserved arginine in the a-subunit (R176) serves as a jack-of-all-trades: it dictates the direction of rotation, controls the protonation state of the proton-release site and separates the two proton-access half-channels. Therefore, arginine is necessary to avoid slippage between the proton flux and the mechanical output and guarantees highly efficient energy conversion. We also provide mechanistic explanations for the reported defective mutations of R176, reconciling the structural information on the Fo motor with previous functional and single-molecule data.

biophysics↗