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Published on: April 30, 2018
Microparticles generated by decompression stress cause central nervous system injury manifested as neurohypophysial
Ming Yang1, Paul Kosterin, Brian M Salzberg
1Department of Emergency Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania;
Abstract:
The study goal was to use membrane voltage changes during neurohypophysial action potential (AP) propagation as an index of nerve function to evaluate the role that circulating microparticles (MPs) play in causing central nervous system injury in response to decompression stress in a murine model. Mice studied 1 h following decompression from 790 kPa air pressure for 2 h exhibit a 45% broadening of the neurohypophysial AP. Broadening did not occur if mice were injected with the MP lytic agent polyethylene glycol telomere B immediately after decompression, were rendered thrombocytopenic, or were treated with an inhibitor of nitric oxide synthase-2 (iNOS) prior to decompression, or in knockout (KO) mice lacking myeloperoxidase or iNOS. If MPs were harvested from control (no decompression) mice and injected into naive mice, no AP broadening occurred, but AP broadening was observed with injections of equal numbers of MPs from either wild-type or iNOS KO mice subjected to decompression stress. Although not required for AP broadening, MPs from decompressed mice, but not control mice, exhibit NADPH oxidase activation. We conclude that inherent differences in MPs from decompressed mice, rather than elevated MPs numbers, mediate neurological injury and that a component of the perivascular response to MPs involves iNOS. Additional study is needed to determine the mechanism of AP broadening and also mechanisms for MP generation associated with exposure to elevated gas pressure.
Insights
Circulating microparticles (MPs) from decompression stress cause central nervous system injury by altering nerve function. Specific MP properties, not just numbers, mediate this neurological damage via nitric oxide synthase-2 (iNOS).
Area of Science:
- Neuroscience
- Physiology
- Biomedical Engineering
Background:
- Decompression stress can cause central nervous system (CNS) injury.
- Circulating microparticles (MPs) are implicated in various pathological processes.
- Nerve function can be assessed by changes in action potential (AP) propagation.
Purpose of the Study:
- To investigate the role of circulating microparticles (MPs) in CNS injury following decompression stress.
- To use neurohypophysial action potential (AP) broadening as an index of nerve function.
- To identify mechanisms underlying MP-mediated neurological damage.
Main Methods:
- Assessing neurohypophysial AP broadening in mice after decompression.
- Administering MP-lytic agents, inducing thrombocytopenia, or using enzyme inhibitors (iNOS, myeloperoxidase).
- Transferring MPs from stressed or control mice to naive mice.
Main Results:
- Decompression stress caused significant neurohypophysial AP broadening (45%).
- AP broadening was prevented by MP lysis, thrombocytopenia, or iNOS inhibition.
- MPs from stressed mice, but not control mice, induced AP broadening in naive recipients.
- NADPH oxidase activation was observed in MPs from stressed mice.
Conclusions:
- Inherent properties of MPs from decompression stress, not elevated numbers, mediate neurological injury.
- Nitric oxide synthase-2 (iNOS) plays a role in the perivascular response to MPs.
- Further research is needed to elucidate AP broadening mechanisms and MP generation during pressure exposure.
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