Search bioRxiv⌕ Search

Biology subjects

Mitropoulou, A. N.

Publications and source records attributed to Mitropoulou, A. N..

2 recordsLinked to original sources

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↗

The ribosome directs nascent chains through two folding-dependent pathways

During their vectorial biosynthesis on the ribosome, elongating nascent polypeptide chains explore a range of conformational states towards their biologically functional structure. However, this high structural heterogeneity has limited their observation at high-resolution. Here, we have used an integrated structural biology approach to explore the structures of the multi-domain immunoglobulin-like FLN5-6 during its biosynthesis, capturing early folding through to native folding. We developed an in-silico purification approach for cryo-EM of ribosome-nascent chain complexes (RNCs), and integrated the resulting cryo-EM maps with NMR spectroscopy and atomistic molecular dynamics (MD) simulations to produce experimentally reweighted structural ensembles of RNC. The resulting atomistic structures reveal insights into the orientational heterogeneity of the nascent chain and its dynamic interactions with the ribosome. In particular, we find that two distinct pathways exist for nascent polypeptides in the exit tunnel vestibule, influenced by their stage of biosynthesis, folding conformational state and ribosomal RNA helices lining the tunnel. Our systematic analysis of the structures of nascent proteins translation-stalled at multiple time-points provides insights into how the ribosome dynamically modulates its pathway out of the exit tunnel to regulate its folding and accessibility for auxiliary factors of other co-translational events.

biophysics↗