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Balchin, D.

Publications and source records attributed to Balchin, D..

5 recordsLinked to original sources

The ribosome synchronizes folding and assembly to promote oligomeric protein biogenesis

Natural proteins are structurally diverse and often form intricate multidomain, oligomeric architectures. This presents a prima facie challenge to cellular homeostasis, as topologically complex proteins seldom refold efficiently in vitro. How cells overcome sequence-intrinsic folding limitations to optimize protein biogenesis is incompletely understood. Here, we show that efficient folding and assembly of the model five-domain homotetramer {beta}-galactosidase is obligatorily coupled to its synthesis on the ribosome, and define the underlying mechanisms. During refolding of full-length protein from denaturant, maturation of the catalytic domain is frustrated. Assembly outpaces monomer folding, and non-native oligomers accumulate. The ribosome directs the order of folding events and specifies the pathway of oligomer assembly. Efficient de novo folding is characterised by segmental domain folding, shaped by binding of a nascent amphipathic helix to a cryptic pocket on the ribosome surface. Homomer assembly initiates cotranslationally via recruitment of a full-length subunit to the nascent polypeptide, and the failure to do so results in misassembly. Our results reveal how the ribosome can dictate the timing of folding and assembly to enable efficient biogenesis of a topologically complex protein.

biochemistry↗

The human ribosome modulates multidomain protein biogenesis by delaying cotranslational domain docking

Proteins with multiple domains are intrinsically prone to misfold, yet fold efficiently during their synthesis on the ribosome. This is especially important in eukaryotes, where multidomain proteins predominate. Here, we sought to understand how multidomain protein folding is modulated by the eukaryotic ribosome. We used cryo-electron microscopy and hydrogen/deuterium exchange-mass spectrometry to characterise the structure and dynamics of partially-synthesised intermediates of a model multidomain protein. We find that nascent subdomains fold progressively during synthesis on the human ribosome, templated by interactions across domain interfaces. The conformational ensemble of the nascent chain is tuned by its unstructured C-terminal segments, which keep interfaces between folded domains in dynamic equilibrium until translation termination. This contrasts with the bacterial ribosome, on which domain interfaces form early and remain stable during synthesis. Delayed domain docking may avoid interdomain misfolding to promote the maturation of multidomain proteins in eukaryotes.

biochemistry↗

GroEL/ES chaperonin unfolds then encapsulates a nascent protein on the ribosome

The bacterial chaperonin GroEL/ES promotes protein folding post-translation by transiently encapsulating substrate proteins within a central chamber. GroEL also binds translating ribosomes in vivo, suggesting an additional role in cotranslational folding. Here, we used biochemical reconstitution, structural proteomics and electron microscopy to study the mechanism by which GroEL/ES engages nascent polypeptides. We show that GroEL binds nascent chains on the inside of its cavity via the apical domains and disordered C-terminal tails, resulting in local structural destabilization of the substrate. Ribosome-tethered nascent proteins are partially encapsulated upon GroES binding to GroEL, and refold in the chaperonin cavity. Reconstitution of chaperone competition at the ribosome shows that both Trigger factor and GroEL can be accommodated on long nascent chains, but GroEL and DnaK are mutually antagonistic. Our findings extend the role of GroEL/ES in de novo protein folding, and reveal an unexpected plasticity of the chaperonin mechanism that allows cotranslational substrate encapsulation.

biochemistry↗

Mechanism of chaperone coordination during cotranslational protein folding in bacteria

Protein folding is assisted by molecular chaperones that bind nascent polypeptides during mRNA translation. Several structurally-distinct classes of chaperone promote de novo folding, suggesting that their activities are coordinated at the ribosome. We used biochemical reconstitution and structural proteomics to explore the molecular basis for cotranslational chaperone action in bacteria. We found that chaperone binding is disfavoured close to the ribosome, allowing folding to precede chaperone recruitment. Trigger factor subsequently recognises compact folding intermediates exposing extensive non-native surface and dictates DnaJ access to nascent chains. DnaJ uses a large surface to bind structurally diverse intermediates, and recruits DnaK to sequence-diverse solvent-accessible sites. Neither Trigger factor, DnaJ nor DnaK destabilize cotranslational folding intermediates. Instead, the chaperones collaborate to create a protected space for protein maturation that extends well beyond the ribosome exit tunnel. Our findings show how the chaperone network selects and modulates cotranslational folding intermediates.

biochemistry↗

Resolving chaperone-assisted protein folding on the ribosome at the peptide level

The cellular environment is critical for efficient protein maturation, but how proteins fold during biogenesis remains poorly understood. We used hydrogen/deuterium exchange (HDX) mass spectrometry (MS) to define, at peptide resolution, the cotranslational chaperone-assisted folding pathway of Escherichia coli dihydrofolate reductase. On the ribosome, the nascent polypeptide folds via structured intermediates not populated during refolding from denaturant. Association with the ribosome allows these intermediates to form, as otherwise destabilizing C-terminal sequences remain confined in the ribosome exit tunnel. We find that partially-folded nascent chains recruit the chaperone Trigger factor, which uses a large composite hydrophobic/hydrophilic interface to engage folding intermediates without disrupting their structure. In addition, we comprehensively mapped dynamic interactions between the nascent chain and ribosomal proteins, tracing the path of the emerging polypeptide during synthesis. Our work provides a high-resolution description of de novo protein folding dynamics, thereby revealing new mechanisms by which cellular factors shape the conformational search for the native state.

biochemistry↗