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Hornby, C. R.

Publications and source records attributed to Hornby, C. R..

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↗

Visualisation of translating ribosomes reveals the earliest steps of protein misfolding in human disease

The majority of cellular proteins must adopt a particular three-dimensional structure for function1. However, protein folding is a perilous journey due to competing polypeptide misfolding events which result in inactive structures. In this study, we examine the earliest steps of protein misfolding during the biosynthesis of alpha-1-antitrypsin, a secreted plasma protein whose misfolding results in organ disease. Using human cells, we find that, like co-translational protein folding, misfolding, assembly and biosynthesis are interconnected processes. At the molecular level misfolding of alpha-1-antitrypsin is initiated by a molten globule-like folding intermediate formed cotranslationally on the ribosome. The ribosomal complexes subsequently form assemblies by recruiting released proteins, inducing translational arrest. Our data also reveal that a pharmacological chaperone modulates this process. The existence of co- and post-translational (mis)folding and assembly pathways reveals how some proteins form functional complexes, has implications for the pathogenesis of conformational diseases, and suggests novel therapeutic avenues.

biochemistry↗