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Włodarski, T.

Publications and source records attributed to Włodarski, T..

2 recordsLinked to original sources

The initiation of de novo protein folding on the ribosome

How the earliest structure within the unfolded state is formed during biosynthesis on the ribosome and whether it has any consequences for downstream folding remain open questions. Here, we combine 15N paramagnetic relaxation enhancement NMR with all-atom molecular dynamics simulations to characterise the unfolded state of a folding-competent immunoglobulin-like domain on the ribosome at the cusp of folding initiation. We identify three structurally distinct sub-ensembles that differ in compaction and ribosome interactions. Non-native contacts, together with ribosome interactions, likely delay folding, yet their persistence alongside early native-like contacts within a sparsely populated compact sub-ensemble suggests they may also facilitate the formation of a co-translational folding nucleus, whose contacts overlap with those of the downstream intermediates. From these findings we infer a mechanistic model of de novo folding initiation during biosynthesis and, by linking the folding nucleus to downstream partially structured intermediates and the native state, provide a complete atomistic description of a co-translational folding pathway.

biophysics↗

Amyloid forming human lysozyme intermediates are stabilised by non-native amide-π interactions

Mutational variants of human lysozyme cause a rare but fatal hereditary form of systemic amyloidosis by populating an intermediate state that self-assembles into amyloid fibrils. Despite its significance in lysozyme amyloidosis, the intermediate state has been recalcitrant to detailed structural investigation as it is only transiently and sparsely populated. Here, we investigated the intermediate state of a mutational variant of human lysozyme (I59T) using CEST and CPMG RD NMR at low pH. 15N CEST profiles probed the thermal unfolding of the native state into the denatured ensemble and revealed an additional state distinct from the two major states. Global fitting of 15N CEST and CPMG data provided kinetic and thermodynamic parameters for the exchange between all three states, characterising the intermediate state populated at 0.6%. 1H CEST data also confirmed the presence of the intermediate state displaying unusually high or low 1HN chemical shifts. To further investigate the structural details of the intermediate state we used molecular dynamics (MD) simulations, which recapitulated the experimentally observed folding pathway and free energy landscape. A high-energy intermediate state with a locally disordered {beta}-domain and C-helix was observed, revealing non-native hydrogen bonding and amide-{pi} interactions. These interactions account for the anomalous 1H chemical shifts and likely stabilise the transient intermediate state structure. Together, our NMR and MD data provide the first direct structural information on the intermediate state, offering insights into targeting lysozyme amyloidosis.

biophysics↗