Cargando…
Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia
Hibernation is an energy-conserving behavior in winter characterized by two phases: torpor and arousal. During torpor, markedly reduced metabolic activity results in inactivity and decreased body temperature. Arousal periods intersperse the torpor bouts and feature increased metabolism and euthermic...
Autores principales: | , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2014
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3982955/ https://www.ncbi.nlm.nih.gov/pubmed/24722364 http://dx.doi.org/10.1371/journal.pone.0093218 |
_version_ | 1782311229523492864 |
---|---|
author | de Vrij, Edwin L. Vogelaar, Pieter C. Goris, Maaike Houwertjes, Martin C. Herwig, Annika Dugbartey, George J. Boerema, Ate S. Strijkstra, Arjen M. Bouma, Hjalmar R. Henning, Robert H. |
author_facet | de Vrij, Edwin L. Vogelaar, Pieter C. Goris, Maaike Houwertjes, Martin C. Herwig, Annika Dugbartey, George J. Boerema, Ate S. Strijkstra, Arjen M. Bouma, Hjalmar R. Henning, Robert H. |
author_sort | de Vrij, Edwin L. |
collection | PubMed |
description | Hibernation is an energy-conserving behavior in winter characterized by two phases: torpor and arousal. During torpor, markedly reduced metabolic activity results in inactivity and decreased body temperature. Arousal periods intersperse the torpor bouts and feature increased metabolism and euthermic body temperature. Alterations in physiological parameters, such as suppression of hemostasis, are thought to allow hibernators to survive periods of torpor and arousal without organ injury. While the state of torpor is potentially procoagulant, due to low blood flow, increased viscosity, immobility, hypoxia, and low body temperature, organ injury due to thromboembolism is absent. To investigate platelet dynamics during hibernation, we measured platelet count and function during and after natural torpor, pharmacologically induced torpor and forced hypothermia. Splenectomies were performed to unravel potential storage sites of platelets during torpor. Here we show that decreasing body temperature drives thrombocytopenia during torpor in hamster with maintained functionality of circulating platelets. Interestingly, hamster platelets during torpor do not express P-selectin, but expression is induced by treatment with ADP. Platelet count rapidly restores during arousal and rewarming. Platelet dynamics in hibernation are not affected by splenectomy before or during torpor. Reversible thrombocytopenia was also induced by forced hypothermia in both hibernating (hamster) and non-hibernating (rat and mouse) species without changing platelet function. Pharmacological torpor induced by injection of 5′-AMP in mice did not induce thrombocytopenia, possibly because 5′-AMP inhibits platelet function. The rapidness of changes in the numbers of circulating platelets, as well as marginal changes in immature platelet fractions upon arousal, strongly suggest that storage-and-release underlies the reversible thrombocytopenia during natural torpor. Possibly, margination of platelets, dependent on intrinsic platelet functionality, governs clearance of circulating platelets during torpor. |
format | Online Article Text |
id | pubmed-3982955 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-39829552014-04-15 Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia de Vrij, Edwin L. Vogelaar, Pieter C. Goris, Maaike Houwertjes, Martin C. Herwig, Annika Dugbartey, George J. Boerema, Ate S. Strijkstra, Arjen M. Bouma, Hjalmar R. Henning, Robert H. PLoS One Research Article Hibernation is an energy-conserving behavior in winter characterized by two phases: torpor and arousal. During torpor, markedly reduced metabolic activity results in inactivity and decreased body temperature. Arousal periods intersperse the torpor bouts and feature increased metabolism and euthermic body temperature. Alterations in physiological parameters, such as suppression of hemostasis, are thought to allow hibernators to survive periods of torpor and arousal without organ injury. While the state of torpor is potentially procoagulant, due to low blood flow, increased viscosity, immobility, hypoxia, and low body temperature, organ injury due to thromboembolism is absent. To investigate platelet dynamics during hibernation, we measured platelet count and function during and after natural torpor, pharmacologically induced torpor and forced hypothermia. Splenectomies were performed to unravel potential storage sites of platelets during torpor. Here we show that decreasing body temperature drives thrombocytopenia during torpor in hamster with maintained functionality of circulating platelets. Interestingly, hamster platelets during torpor do not express P-selectin, but expression is induced by treatment with ADP. Platelet count rapidly restores during arousal and rewarming. Platelet dynamics in hibernation are not affected by splenectomy before or during torpor. Reversible thrombocytopenia was also induced by forced hypothermia in both hibernating (hamster) and non-hibernating (rat and mouse) species without changing platelet function. Pharmacological torpor induced by injection of 5′-AMP in mice did not induce thrombocytopenia, possibly because 5′-AMP inhibits platelet function. The rapidness of changes in the numbers of circulating platelets, as well as marginal changes in immature platelet fractions upon arousal, strongly suggest that storage-and-release underlies the reversible thrombocytopenia during natural torpor. Possibly, margination of platelets, dependent on intrinsic platelet functionality, governs clearance of circulating platelets during torpor. Public Library of Science 2014-04-10 /pmc/articles/PMC3982955/ /pubmed/24722364 http://dx.doi.org/10.1371/journal.pone.0093218 Text en © 2014 de Vrij et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article de Vrij, Edwin L. Vogelaar, Pieter C. Goris, Maaike Houwertjes, Martin C. Herwig, Annika Dugbartey, George J. Boerema, Ate S. Strijkstra, Arjen M. Bouma, Hjalmar R. Henning, Robert H. Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia |
title | Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia |
title_full | Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia |
title_fullStr | Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia |
title_full_unstemmed | Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia |
title_short | Platelet Dynamics during Natural and Pharmacologically Induced Torpor and Forced Hypothermia |
title_sort | platelet dynamics during natural and pharmacologically induced torpor and forced hypothermia |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3982955/ https://www.ncbi.nlm.nih.gov/pubmed/24722364 http://dx.doi.org/10.1371/journal.pone.0093218 |
work_keys_str_mv | AT devrijedwinl plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT vogelaarpieterc plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT gorismaaike plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT houwertjesmartinc plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT herwigannika plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT dugbarteygeorgej plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT boeremaates plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT strijkstraarjenm plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT boumahjalmarr plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia AT henningroberth plateletdynamicsduringnaturalandpharmacologicallyinducedtorporandforcedhypothermia |