Search bioRxivSearch

Biology subjects

Hugel, T.

Publications and source records attributed to Hugel, T..

2 recordsLinked to original sources

Effects of inhibitors on Hsp90’s conformational dynamics, cochaperone and client interactions

The molecular chaperone and heat-shock protein Hsp90 has become a central target in anti-cancer therapy. Nevertheless, the effect of Hsp90 inhibition is still not understood at the molecular level, preventing a truly rational drug design. Here we report on the effect of the most prominent drug candidates, namely radicicol, geldanamycin, derivatives of purine and novobiocin, on Hsp90s characteristic conformational dynamics and the binding of three interaction partners. Unexpectedly, the global opening and closing transitions are hardly affected by Hsp90 inhibitors. Instead, the conformational equilibrium, as well as the associated kinetic rate constants remain almost untouched. Moreover, we find no significant changes in the binding of the cochaperones Aha1 and p23 nor of the model substrate {Delta}131{Delta}. This holds true for both, competitive and allosteric inhibitors. Therefore, direct inhibition mechanisms, affecting only one molecular interaction, are unlikely. Based on our results, we speculate that the inhibitory action observed in vivo is caused by a combination of subtle effects, which can be used in the search for novel Hsp90 inhibition mechanisms.

biochemistry

Cooperative nucleotide binding in Hsp90 and the underlying mechanisms

The function of the molecular chaperone Hsp90 depends on large conformational changes, rearrangement of local motifs, as well as the binding and hydrolysis of ATP. The complexity of the Hsp90 system impedes the detailed investigation of their interplay using standard methods. By the application of three-color single molecule FRET to Hsp90 and a reporter nucleotide, we directly observe cooperativity between the two nucleotide binding pockets in the protein dimer. Through allocating the microscopic states and extracting their kinetics, we identify the mechanisms underlying the cooperativity. Surprisingly, nucleotide binding affects several state transitions, which demonstrates the complexity of cooperativity in protein systems. The co-chaperone Aha1, known to accelerate Hsp90's ATPase activity, adds another layer of complexity by affecting transitions in a nucleotide-dependent and -independent manner.

biophysics