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Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets

Wiskott-Aldrich syndrome (WAS) is associated with thrombocytopenia of unclear origin. We investigated real-time cytosolic calcium dynamics, mitochondrial membrane potential and phoszphatidylserine (PS) exposure in single fibrinogen-bound platelets using confocal microscopy. The WAS platelets had hig...

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Autores principales: Obydennyi, Sergey I., Artemenko, Elena O., Sveshnikova, Anastasia N., Ignatova, Anastasia A., Varlamova, Tatiana V., Gambaryan, Stepan, Lomakina, Galina Y., Ugarova, Natalia N., Kireev, Igor I., Ataullakhanov, Fazoil I., Novichkova, Galina A., Maschan, Aleksey A., Shcherbina, Anna, Panteleev, Mikhail
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ferrata Storti Foundation 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7109739/
https://www.ncbi.nlm.nih.gov/pubmed/31278208
http://dx.doi.org/10.3324/haematol.2018.214460
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author Obydennyi, Sergey I.
Artemenko, Elena O.
Sveshnikova, Anastasia N.
Ignatova, Anastasia A.
Varlamova, Tatiana V.
Gambaryan, Stepan
Lomakina, Galina Y.
Ugarova, Natalia N.
Kireev, Igor I.
Ataullakhanov, Fazoil I.
Novichkova, Galina A.
Maschan, Aleksey A.
Shcherbina, Anna
Panteleev, Mikhail
author_facet Obydennyi, Sergey I.
Artemenko, Elena O.
Sveshnikova, Anastasia N.
Ignatova, Anastasia A.
Varlamova, Tatiana V.
Gambaryan, Stepan
Lomakina, Galina Y.
Ugarova, Natalia N.
Kireev, Igor I.
Ataullakhanov, Fazoil I.
Novichkova, Galina A.
Maschan, Aleksey A.
Shcherbina, Anna
Panteleev, Mikhail
author_sort Obydennyi, Sergey I.
collection PubMed
description Wiskott-Aldrich syndrome (WAS) is associated with thrombocytopenia of unclear origin. We investigated real-time cytosolic calcium dynamics, mitochondrial membrane potential and phoszphatidylserine (PS) exposure in single fibrinogen-bound platelets using confocal microscopy. The WAS platelets had higher resting calcium levels, more frequent spikes, and their mitochondria more frequently lost membrane potential followed by PS exposure (in 22.9% of platelets vs. 3.9% in controls; P<0.001) after the collapse of the last mitochondria. This phenomenon was inhibited by the mitochondrial permeability transition pore inhibitor cyclosporine A, as well by xestospongin C and lack of extracellular calcium. Thapsigargin by itself caused accelerated cell death in the WAS platelets. The number of mitochondria was predictive of PS exposure: 33% of platelets from WAS patients with fewer than five mitochondria exposed PS, while only 12% did among those that had five or more mitochondria. Interestingly, healthy donor platelets with fewer mitochondria also more readily became procoagulant upon PAR1/PAR4 stimulation. Collapse of single mitochondria led to greater cytosolic calcium increase in WAS platelets if they had one to three mitochondria compared with platelets containing higher numbers. A computer systems biology model of platelet calcium homeostasis showed that smaller platelets with fewer mitochondria could have impaired calcium homeostasis because of higher surface-to-volume ratio and greater metabolic load, respectively. There was a correlation (C=0.81, P<0.02) between the mean platelet size and platelet count in the WAS patients. We conclude that WAS platelets readily expose PS via a mitochondria-dependent necrotic mechanism caused by their smaller size, which could contribute to the development of thrombocytopenia.
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spelling pubmed-71097392020-04-08 Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets Obydennyi, Sergey I. Artemenko, Elena O. Sveshnikova, Anastasia N. Ignatova, Anastasia A. Varlamova, Tatiana V. Gambaryan, Stepan Lomakina, Galina Y. Ugarova, Natalia N. Kireev, Igor I. Ataullakhanov, Fazoil I. Novichkova, Galina A. Maschan, Aleksey A. Shcherbina, Anna Panteleev, Mikhail Haematologica Article Wiskott-Aldrich syndrome (WAS) is associated with thrombocytopenia of unclear origin. We investigated real-time cytosolic calcium dynamics, mitochondrial membrane potential and phoszphatidylserine (PS) exposure in single fibrinogen-bound platelets using confocal microscopy. The WAS platelets had higher resting calcium levels, more frequent spikes, and their mitochondria more frequently lost membrane potential followed by PS exposure (in 22.9% of platelets vs. 3.9% in controls; P<0.001) after the collapse of the last mitochondria. This phenomenon was inhibited by the mitochondrial permeability transition pore inhibitor cyclosporine A, as well by xestospongin C and lack of extracellular calcium. Thapsigargin by itself caused accelerated cell death in the WAS platelets. The number of mitochondria was predictive of PS exposure: 33% of platelets from WAS patients with fewer than five mitochondria exposed PS, while only 12% did among those that had five or more mitochondria. Interestingly, healthy donor platelets with fewer mitochondria also more readily became procoagulant upon PAR1/PAR4 stimulation. Collapse of single mitochondria led to greater cytosolic calcium increase in WAS platelets if they had one to three mitochondria compared with platelets containing higher numbers. A computer systems biology model of platelet calcium homeostasis showed that smaller platelets with fewer mitochondria could have impaired calcium homeostasis because of higher surface-to-volume ratio and greater metabolic load, respectively. There was a correlation (C=0.81, P<0.02) between the mean platelet size and platelet count in the WAS patients. We conclude that WAS platelets readily expose PS via a mitochondria-dependent necrotic mechanism caused by their smaller size, which could contribute to the development of thrombocytopenia. Ferrata Storti Foundation 2020-04 /pmc/articles/PMC7109739/ /pubmed/31278208 http://dx.doi.org/10.3324/haematol.2018.214460 Text en Copyright© 2020 Ferrata Storti Foundation Material published in Haematologica is covered by copyright. All rights are reserved to the Ferrata Storti Foundation. Use of published material is allowed under the following terms and conditions: https://creativecommons.org/licenses/by-nc/4.0/legalcode. Copies of published material are allowed for personal or internal use. Sharing published material for non-commercial purposes is subject to the following conditions: https://creativecommons.org/licenses/by-nc/4.0/legalcode, sect. 3. Reproducing and sharing published material for commercial purposes is not allowed without permission in writing from the publisher.
spellingShingle Article
Obydennyi, Sergey I.
Artemenko, Elena O.
Sveshnikova, Anastasia N.
Ignatova, Anastasia A.
Varlamova, Tatiana V.
Gambaryan, Stepan
Lomakina, Galina Y.
Ugarova, Natalia N.
Kireev, Igor I.
Ataullakhanov, Fazoil I.
Novichkova, Galina A.
Maschan, Aleksey A.
Shcherbina, Anna
Panteleev, Mikhail
Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets
title Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets
title_full Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets
title_fullStr Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets
title_full_unstemmed Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets
title_short Mechanisms of increased mitochondria-dependent necrosis in Wiskott-Aldrich syndrome platelets
title_sort mechanisms of increased mitochondria-dependent necrosis in wiskott-aldrich syndrome platelets
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7109739/
https://www.ncbi.nlm.nih.gov/pubmed/31278208
http://dx.doi.org/10.3324/haematol.2018.214460
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