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Orban, J. P.

Publications and source records attributed to Orban, J. P..

2 recordsLinked to original sources

A single C-terminal residue controls SARS-CoV-2 spike trafficking and virion assembly

The spike (S) protein of SARS-CoV-2 is delivered to the virion assembly site in the ER-Golgi Intermediate Compartment (ERGIC) from both the ER and cis-Golgi in infected cells1-3. However, the relevance and modulatory mechanism of this bidirectional trafficking are unclear. Here, using structure-function analyses, we show that S incorporation into virions and viral fusogenicity are determined by coatomer-dependent S delivery from the cis-Golgi and restricted by S-coatomer dissociation. Although S mimicry of the host coatomer-binding dibasic motif ensures retrograde trafficking to the ERGIC, avoidance of the host-like C-terminal acidic residue is critical for S-coatomer dissociation and therefore incorporation into virions or export for cell-cell fusion. Because this C-terminal residue is the key determinant of SARS-CoV-2 assembly and fusogenicity, our work provides a framework for the export of S protein encoded in genetic vaccines for surface display and immune activation.

biophysics↗

Design and characterization of a protein fold switching network

Protein sequences encoding three common small folds (3, {beta}-grasp, and /{beta}-plait) were connected in a network with high-identity intersections, termed nodes. The structures of proteins around nodes were determined using NMR spectroscopy and analyzed for stability and binding function. To generate nodes, the amino acid sequence encoding a shorter fold (3a or {beta}-grasp) is embedded in the structure of the ~50% longer /{beta}-plait fold and a new sequence is designed that satisfies two sets of native interactions. This leads to protein pairs with a 3a or {beta}-grasp fold in the shorter form but an /{beta}-plait fold in the longer form. Further, embedding smaller antagonistic folds in longer folds creates critical states in the longer folds such that single amino acid substitutions can switch both their fold and function. This suggests that abrupt fold switching may be a mechanism of evolving new protein structures and functions.

biochemistry↗