Intramolecular loops control SARS-CoV-2 nucleocapsid protein self-association and nucleic acid binding dependent on phosphorylation
Nguyen, A.; Datta, S. A.; Trent, C.; Wu, D.; Saleem, Z.; Szczesna, E.; Owoborode, F.; Li, Y.; Adly, A. N.; Kalish, H. R.; Piszczek, G.; Morgan, D. O.; Schuck, P.; Zhao, H.
Show abstract
The nucleocapsid protein of SARS-CoV-2 scaffolds genomic RNA into ribonucleoprotein complexes (RNP) for assembly in the virion, but also fulfills critical intracellular functions in replication and the suppression of host defense. It contains a folded nucleic acid binding domain (NTD) and a dimerization domain, connected by a disordered linker containing a serine/arginine-rich (SR) region and a leucine-rich sequence (LRS). The switch between intracellular and assembly functions is controlled by phosphorylation of the SR region, but the molecular details are unclear. Here we describe a model in which two mutually exclusive intramolecular loops bind the NTD and dynamically control self-association and nucleic acid binding properties dependent on the SR linker phosphorylation state. The model is supported by biophysical measurements of hydrodynamic radii, reversible protein self-association, nucleic acid binding, and thermodynamic stability, as well as structural predictions and published NMR chemical shifts. We find SR linker phosphorylation compacts the protein and inhibits nucleic acid binding and RNP formation, while enhancing self-association through promotion of transient coiled-coils in the LRS of the linker. These changes shift the nucleocapsid protein to a configuration poised for multi-valent interactions that support intracellular functions.
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