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Goudswaard, L. J.

Publications and source records attributed to Goudswaard, L. J..

2 recordsLinked to original sources

Alterations in platelet proteome signature and impaired platelet integrin αIIbβ3 activation in patients with COVID-19

BackgroundPatients with coronavirus disease-19 (COVID-19) are at increased risk of thrombosis, which is associated with altered platelet function and coagulopathy, contributing to excess mortality. ObjectivesWe aimed to characterise the mechanism of altered platelet function in COVID-19 patients. MethodsThe platelet proteome, platelet functional responses and platelet-neutrophil aggregates were compared between patients hospitalised with COVID-19 and healthy control subjects using Tandem Mass Tag (TMT) proteomic analysis, Western blotting and flow cytometry. ResultsCOVID-19 patients showed a different profile of platelet protein expression (858 altered out of 5773 quantified). Levels of COVID-19 plasma markers were enhanced in COVID-19 platelets. Gene ontology (GO) pathway analysis demonstrated that levels of granule secretory proteins were raised, whereas some platelet activation proteins, such as the thrombopoietin receptor and PKC, were lowered. Basally, COVID-19 platelets showed enhanced phosphatidylserine (PS) exposure, with unaltered integrin IIb{beta}3 activation and P-selectin expression. Agonist-stimulated integrin IIb{beta}3 activation and PS exposure, but not P-selectin expression, were significantly decreased in COVID-19 patients. COVID-19 patients had high levels of platelet-neutrophil aggregates, even under basal conditions, compared to controls. This interaction was disrupted by blocking P-selectin, demonstrating that platelet P-selectin is critical for the interaction. ConclusionsOverall, our data suggests the presence of two platelet populations in patients with COVID-19: one with circulating platelets with an altered proteome and reduced functional responses and another with P-selectin expressing neutrophil-associated platelets. Platelet driven thromboinflammation may therefore be one of the key factors enhancing the risk of thrombosis in COVID-19 patients. Essentials- COVID-19 patient platelet function and platelet proteins were compared with healthy controls - Proteomic analysis of platelets indicated that COVID-19 decreased platelet activation proteins - Agonist induced PS exposure and integrin IIb{beta}3 activation were impaired in COVID-19 - COVID-19 led to maximal levels of P-selectin dependent platelet-neutrophil aggregates

cell biology↗

Chemical degradation of BTK/TEC as a novel approach to inhibit platelet function and thrombosis.

The tyrosine kinase BTK plays an important role in platelet function downstream of GPVI and CLEC2 receptors and has been proposed as a novel target to prevent thrombosis in patients that are at increased risk. However, current clinically approved BTK inhibitors have off target effects and are associated with an increased bleeding risk. In this study, we therefore explored whether BTK can be targeted for degradation in human platelets by using recently developed heterobifunctional molecules that employ the proteasomal system to break down BTK. Here we confirm that human platelets are highly susceptible to BTK degraders with the generic tyrosine kinase degrader TL12-186, and the BTK degraders DD-04-15 and DD-03-171 leading to breakdown of BTK and its closely related kinase TEC, an effect that was prevented by proteasomal inhibitors. Tandem Mass Tag proteomic analysis confirmed high selectivity with TL12-186 degrading BTK/TEC, FAK/PYK2 and FER, whereas DD-04-15 and DD-03-171 degraded BTK/TEC only. GPVI-mediated platelet integrin IIb{beta}3 activation, P-selectin expression, and phosphatidyl-serine exposure were largely impaired upon BTK/TEC degradation, with PAR-1-mediated responses left intact. This is the first study to demonstrate that chemical protein degraders can be successfully employed in anucleate human platelets to modulate their function.

cell biology↗