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Watson, M. A.

Publications and source records attributed to Watson, M. A..

2 recordsLinked to original sources

Inter-domain dynamics in the chaperone SurA and multi-site binding to its unfolded outer membrane protein clients

The periplasmic chaperone SurA plays a key role in outer membrane protein (OMP) biogenesis. E. coli SurA comprises a core domain and two peptidylprolyl isomerase domains (P1 and P2), but how it binds its OMP clients and the mechanism(s) of its chaperone action remain unclear. Here, we have used chemical cross-linking, hydrogen-deuterium exchange, single-molecule FRET and molecular dynamics simulations to map the client binding site(s) on SurA and to interrogate the role of conformational dynamics of the chaperones domains in OMP recognition. We demonstrate that SurA samples a broad array of conformations in solution in which P2 primarily lies closer to the core/P1 domains than suggested by its crystal structure. Multiple binding sites for OMPs are located primarily in the core domain, with binding of the unfolded OMP resulting in conformational changes between the core/P1 domains. Together, the results portray a model in which unfolded OMP substrates bind in a cradle formed between the SurA domains, with structural flexibility between its domains assisting OMP recognition, binding and release.

biochemistry

Energy landscape steering in SecYEG mediates dynamic coupling in ATP driven protein translocation

The Sec translocon is a highly conserved membrane complex for transport of polypeptides across, or into, lipid bilayers. In bacteria, the core protein-channel SecYEG resides in the inner-membrane, through which secretion is powered by the cytosolic ATPase SecA. Here, we use single-molecule fluorescence to interrogate the dynamic state of SecYEG throughout the hydrolytic cycle of SecA. We show that the SecYEG channel fluctuates between open and closed states faster ([~]20-fold during transport) than ATP turnover; while the nucleotide status of SecA modulates the rates of opening and closure. Interestingly, a SecY variant (PrlA4), exhibiting faster protein transport, but unaffected ATPase rates, increases the dwell time in the open state, facilitating pre-protein diffusion through the pore; thereby improving the efficiency of translocation. Thus, contrary to prevailing structure-based models, SecYEG plays an integral part in the translocation mechanism through dynamic allosteric coupling in which SecA steers the energy landscape of the protein-channel.

biophysics