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Biology subjects

Leung, D. W.

Publications and source records attributed to Leung, D. W..

3 recordsLinked to original sources

Effect of mutations in the SARS-CoV-2 spike protein on protein stability, cleavage, and cell-cell fusion function

The SARS-CoV-2 spike protein (S) is the sole viral protein responsible for both viral binding to a host cell and the membrane fusion event needed for cell entry. In addition to facilitating fusion needed for viral entry, S can also drive cell-cell fusion, a pathogenic effect observed in the lungs of SARS-CoV-2 infected patients. While several studies have investigated S requirements involved in viral particle entry, examination of S stability and factors involved in S cell-cell fusion remain limited. We demonstrate that S must be processed at the S1/S2 border in order to mediate cell-cell fusion, and that mutations at potential cleavage sites within the S2 subunit alter S processing at the S1/S2 border, thus preventing cell-cell fusion. We also identify residues within the internal fusion peptide and the cytoplasmic tail that modulate S cell-cell fusion. Additionally, we examine S stability and protein cleavage kinetics in a variety of mammalian cell lines, including a bat cell line related to the likely reservoir species for SARS-CoV-2, and provide evidence that proteolytic processing alters the stability of the S trimer. This work therefore offers insight into S stability, proteolytic processing, and factors that mediate S cell-cell fusion, all of which help give a more comprehensive understanding of this highly sought-after therapeutic target.

microbiology

Characterization of SARS-CoV-2 N protein reveals multiple functional consequences of the C-terminal domain

Nucleocapsid protein (N) is the most abundant viral protein encoded by SARS-CoV-2, the causative agent of COVID-19. N plays key roles at different steps in the replication cycle and is used as a serological marker of infection. Here we characterize the biochemical properties of SARS-CoV-2 N. We define the N domains important for oligomerization and RNA binding that are associated with spherical droplet formation and suggest that N accessibility and assembly may be regulated by phosphorylation. We also map the RNA binding interface using hydrogen-deuterium exchange mass spectrometry. Finally, we find that the N protein C-terminal domain is the most immunogenic by sensitivity, based upon antibody binding to COVID-19 patient samples from the US and Hong Kong. Together, these findings uncover domain-specific insights into the significance of SARS-CoV-2 N and highlight the diagnostic value of using N domains as highly specific and sensitive markers of COVID-19.

biochemistry

Non-canonical proline-tyrosine interactions with multiple host proteins regulate Ebola virus infection

The Ebola virus VP30 protein interacts with the viral nucleoprotein and with host protein RBBP6 via PPxPxY motifs. In these interactions the largely alpha-helical carboxy-terminal domain of the EBOV VP30 engages with the motif such that the prolines adopt non-canonical orientations, as compared to other proline-rich motifs. Affinity tag-purification mass spectrometry identified additional PPxPxY-containing host proteins, including hnRNP L, hnRNPUL1 and PEG10, as VP30 interactors. Of these, hnRNP L and PEG10, like RBBP6, inhibit viral RNA synthesis and EBOV replication, whereas hnRNPUL1 enhances. Further, double knockdown studies support additive effects of RBBP6 and hnRNP L. Binding studies demonstrate variable capacity of PPxPxY motifs to bind VP30 and the extended motif PxPPPPxY is demonstrated to confer optimal binding and to inhibit RNA synthesis, with the fifth proline and the tyrosine being most critical. Competition binding and hydrogen-deuterium exchange studies demonstrate that each protein binds a similar interface on VP30 and impacts VP30 phosphorylation. VP30 therefore represents a novel proline recognition domain that allows multiple host proteins to target a single viral protein-protein interface to modulate viral transcription.

microbiology