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Auld, N. K.

Publications and source records attributed to Auld, N. K..

2 recordsLinked to original sources

Single-molecule visualisation of human Hsp70-driven conformational remodelling during stress

The Hsp70 chaperone system plays a central role in the folding of nascent polypeptides and in preventing protein misfolding and aggregation during cellular stress. However, the precise mechanism by which the human Hsp70, HspA8, remodels the conformations of individual chemically misfolded clients remains unclear. Moreover, it is unknown whether this mechanism differs from that used by Hsp70 to engage clients during heat stress to preserve native function. To address these questions, we report here the use of single-molecule fluorescence resonance energy transfer (smFRET) to temporally interrogate how the human Hsp70 system regulates the conformation of a heat-sensitive client protein, firefly luciferase (Fluc), following chemical denaturation and during heat stress. We find that Hsp70 recognises both chemically denatured and heat-induced misfolded states of Fluc and resolves them by conformational expansion. Release from a Hsp70-bound state, a process driven by the nucleotide exchange factor, Hsp110, guides Fluc toward productive folding trajectories that would otherwise be unlikely to occur spontaneously following collapse from a conformationally unfolded state. Moreover, we demonstrate that both temperature and the conformational state of misfolded Fluc dictate the ability of HspA8 to meaningfully resolve non-native structure within the protein. Collectively, this work provides direct visualisation of the mechanisms by which Hsp70 modulates client conformations under diverse stress conditions to preserve proteome integrity.

biophysics↗

Competing chaperone pathways in α-synuclein disaggregation and aggregation dynamics

The aggregation of the protein -synuclein into amyloid fibrils and their subsequent deposition into large proteinaceous inclusions is a pathological hallmark of several neurodegenerative diseases, including Parkinsons disease. Molecular chaperones, including the small heat shock proteins (sHsps) and the Hsp70 chaperone system, are known to interact with -synuclein fibrils, preventing further aggregation and disaggregating fibrillar species respectively. However, it remains unclear if sHsps co-operate with the Hsp70 chaperones to potentially improve the kinetics or effectiveness of Hsp70-mediated disaggregation and how disaggregation kinetics are influenced by aggregation-prone -synuclein monomers. Using thioflavin-T assays, we demonstrate that the sHsps Hsp27 (HSPB1) and B-crystallin (HSPB5) do not synergise with the Hsp70 chaperones during -synuclein seed fibril disaggregation. Moreover, the addition of monomeric -synuclein with fibril seeds results in increased aggregation that overwhelms Hsp70-mediated disaggregation. Upon addition of sHsps to this system, antagonism between the two chaperone classes is observed, likely due to these chaperones competing for productive binding to the ends of -synuclein fibrils. Overall, these results suggest that while Hsp70 and sHsp chaperones are independently capable of binding to and inhibiting fibril elongation, they do not have synergistic effects on disaggregation. Furthermore, Hsp70-mediated disaggregation is ineffectual in the presence of physiological concentrations of -synuclein monomers, conditions that actually lead to further -synuclein aggregation. Overall, these data may offer insight into factors that lead to the failure of the Hsp70 chaperones to clear cells of -synuclein aggregates that leads to neurodegenerative disease.

biochemistry↗