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Dolutegravir potentiates platelet activation by a calcium-dependent, ionophore-like mechanism
Morris Madzime1, Annette J Theron1, Ronald Anderson1
1Department of Immunology, Faculty of Health Sciences, University of Pretoria, Pretoria, South Africa.
Insights
Dolutegravir, an HIV treatment, may increase platelet reactivity and cardiovascular disease risk by affecting calcium levels in platelets. Further research is needed to understand its in vivo effects.
Area of Science:
- Pharmacology
- Cardiovascular Science
- Hematology
Background:
- Dolutegravir is a key HIV integrase inhibitor recommended for first-line treatment.
- A link exists between this HIV treatment class and increased cardiovascular disease risk.
- Platelet reactivity is a known factor in cardiovascular disease, but dolutegravir's effect on platelets is understudied.
Purpose of the Study:
- To investigate the in vitro effects of dolutegravir on human platelet activation and reactivity.
- To explore the potential mechanisms by which dolutegravir influences platelet function.
Main Methods:
- Human platelets were treated with dolutegravir (2.5-10 µg/ml) in vitro.
- Platelet activation was induced using ADP, thrombin, or U46619.
- Measurements included CD62P expression, neutrophil:platelet aggregate formation, and intracellular calcium (Ca2+) flux via flow cytometry and fluorescence spectrometry.
Main Results:
- Dolutegravir dose-dependently enhanced platelet activation markers (CD62P expression, aggregate formation) in response to agonists.
- A spontaneous, receptor-independent increase in cytosolic Ca2+ was observed.
- These effects suggest dolutegravir may potentiate platelet responsiveness.
Conclusions:
- Dolutegravir augments human platelet reactivity in vitro, potentially via ionophore-like activity increasing cytosolic Ca2+.
- This mechanism may contribute to the observed increased risk of cardiovascular events in patients on dolutegravir.
- Further in vivo studies are warranted to confirm these findings and their clinical implications.
Abstract:
Dolutegravir is a highly potent HIV integrase strand transfer inhibitor that is recommended for first-line anti-retroviral treatment in all major treatment guidelines. A recent study has shown that people taking this class of anti-retroviral treatment have a substantially higher risk of early-onset cardiovascular disease, a condition shown previously to be associated with increased platelet reactivity. To date, few studies have explored the effects of dolutegravir on platelet activation. Accordingly, the current study was undertaken with the primary objective of investigating the effects of dolutegravir on the reactivity of human platelets in vitro. Platelet-rich plasma, isolated platelets, or buffy coat cell suspensions prepared from the blood of healthy adults were treated with dolutegravir (2.5-10 µg/ml), followed by activation with adenosine 5'-diphosphate (ADP), thrombin, or a thromboxane A2 receptor agonist U46619. Expression of platelet CD62P (P-selectin), formation of heterotypic neutrophil:platelet aggregates, and calcium (Ca2+) fluxes were measured using flow cytometry and fluorescence spectrometry, respectively. Dolutegravir caused dose-related potentiation of ADP-, thrombin- and U46619-activated expression of CD62P by platelets, as well as a significant increases in formation of neutrophil:platelet aggregates. These effects were paralleled by a spontaneous, receptor-independent elevation in cytosolic Ca2+ that appears to underpin the mechanism by which the antiretroviral agent augments the responsiveness of these cells to ADP, thrombin and U46619. The most likely mechanism of dolutegravir-mediated increases in platelet cytosolic Ca2+ relates to a combination of lipophilicity and divalent/trivalent metal-binding and/or chelating properties of the anti-retroviral agent. These properties are likely to confer ionophore-type activities on dolutegravir that would promote movement of Ca2+ across the plasma membrane, delivering the cation to the cytosol where it would augment Ca2+-dependent intracellular signaling mechanisms. These effects of dolutegravir may lead to hyper-activation of platelets which, if operative in vivo, may contribute to an increased risk for cardiometabolic co-morbidities.
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