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Zeldin, D. C.

Publications and source records attributed to Zeldin, D. C..

2 recordsLinked to original sources

Proteome and functional decline as platelets age in the circulation

Anucleate platelets circulate in the blood of healthy individuals for approximately 7-10 days during which time their protein composition may change. We hypothesized such changes would be linked to altered structure and function. Here, we separated platelets of different ages based on mRNA content and characterised them using proteomics, immunofluorescence and functional assays. Total protein content was 45{+/-}5% (n=4) lower in old platelets compared to young platelets. Predictive proteomic pathway analysis identified associations with 28 biological processes, notably increased haemostasis in young platelets and apoptosis in old platelets. Further studies confirmed platelet ageing was linked to a reduction decrease in cytoskeletal proteins, a reduction in mitochondria number, and lower calcium dynamics and granule secretion. This work delineates physical and functional changes in platelets as they age and serves as a base to examine differences associated with altered mean age of platelet populations in conditions such as immune thrombocytopenia and diabetes.

cell biology

Furin cleavage of the SARS-CoV-2 spike is modulated by O-glycosylation

The SARS-CoV-2 coronavirus responsible for the global pandemic contains a unique furin cleavage site in the spike protein (S) that increases viral infectivity and syncytia formation. Here, we show that O-glycosylation near the furin cleavage site is mediated by specific members of the GALNT enzyme family and is dependent on the novel proline at position 681 (P681). We further demonstrate that O-glycosylation of S decreases furin cleavage. Finally, we show that GALNT family members capable of glycosylating S are expressed in human respiratory cells that are targets for SARS-CoV-2 infection. Our results suggest that O-glycosylation may influence viral infectivity/tropism by modulating furin cleavage of S and provide mechanistic insight into the potential role of P681 mutations in the recently identified, highly transmissible B.1.1.7 variant.

biochemistry