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Routine Screening Method for Microparticles in Platelet Transfusions
Published on: January 31, 2018
Platelet-derived microvesicles modulate the bioenergetic and inflammatory phenotype of human polymorphonuclear
Marie-France N Soucy1,2, Mathieu P A Hébert1,2, Jérémie A Doiron1,2,3
1Department of Chemistry and Biochemistry, Université de Moncton, 18 Antonine-Maillet Avenue, Moncton, New Brunswick, Canada E1A 3E9.
Abstract:
Platelets release microvesicles (PMVs) into the extracellular milieu upon activation. PMVs retain various platelet components, including functional mitochondria, and actively participate in intercellular communication with immune cells such as polymorphonuclear leukocytes (PMNs). PMVs have been known to modulate the inflammatory response of PMNs under normal physiological condition. Despite growing interest in the transfer of biological material between immune cells, the mitochondrial content shuttling from PMVs to PMNs and the resulting effects have remained unclear. Using freshly isolated PMVs from healthy and consenting donors, we demonstrate that PMVs modulate both the bioenergetic and inflammatory phenotypes of the recipient immune cell. We first confirmed the mitochondrial content transfer and then measured cell viability, mitochondrial respiration, and ATP production. Platelet-derived mitochondria were found associated with PMNs, consequently decreasing caspase-3 activity. PMVs increased mitochondrial activity and ATP levels in the recipient cell. Incubation of PMNs with PMVs containing nonfunctional mitochondria did not affect respiration and caspase-3 activity. This demonstrates that functional and active mitochondria are required for the PMVs to modulate the bioenergenetic phenotype of human PMNs. Finally, we detected the transfer of active 12-lipoxygenase and of cyclooxygenase-1 in the recipient cells, enzymes found specifically in PMVs, and an increase in the production of their respective inflammatory products. These findings suggest that platelet-derived mitochondria play a key role in enhancing the survival and inflammatory function of PMNs in inflammatory conditions.
Insights
Platelet microvesicles (PMVs) transfer functional mitochondria to immune cells, boosting their energy and inflammatory responses. This highlights a novel mechanism for cell-to-cell communication in inflammation.
Area of Science:
- Cell Biology
- Immunology
- Hematology
Background:
- Platelets release microvesicles (PMVs) that mediate intercellular communication.
- PMVs can transfer functional mitochondria to immune cells like polymorphonuclear leukocytes (PMN).
- The role of PMV-derived mitochondria in modulating PMN bioenergetics and inflammation is not fully understood.
Purpose of the Study:
- To investigate the transfer of platelet-derived mitochondria to PMN.
- To determine the effects of this transfer on PMN bioenergetic and inflammatory phenotypes.
- To elucidate the role of functional mitochondria in PMV-mediated modulation of PMN.
Main Methods:
- Isolation of PMVs from healthy donors.
- Incubation of PMN with PMVs.
- Assessment of mitochondrial transfer, cell viability, mitochondrial respiration, and ATP production.
- Measurement of caspase-3 activity.
- Detection of enzyme transfer and inflammatory product levels.
Main Results:
- Confirmed transfer of platelet-derived mitochondria to PMN.
- PMVs increased PMN mitochondrial activity and ATP levels.
- Functional mitochondria from PMVs decreased caspase-3 activity and enhanced PMN respiration.
- Transfer of active 12-lipoxygenase and cyclooxygenase-1 was detected, increasing inflammatory product levels.
- Non-functional mitochondria did not alter PMN respiration or caspase-3 activity.
Conclusions:
- Functional mitochondria transferred from PMVs enhance PMN bioenergetic function and survival.
- PMVs modulate PMN inflammatory phenotype through mitochondrial and enzyme transfer.
- Platelet-derived mitochondria are key mediators of PMN function in inflammatory conditions.
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