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Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons

While neuronal mitochondria have been studied extensively in their role in health and disease, the rules that govern calcium regulation in mitochondria remain somewhat vague. In the present study using cultured rat hippocampal neurons transfected with the mtRCaMP mitochondrial calcium sensor, we inv...

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Autores principales: Kushnireva, Liliya, Basnayake, Kanishka, Holcman, David, Segal, Menahem, Korkotian, Eduard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9604040/
https://www.ncbi.nlm.nih.gov/pubmed/36293178
http://dx.doi.org/10.3390/ijms232012321
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author Kushnireva, Liliya
Basnayake, Kanishka
Holcman, David
Segal, Menahem
Korkotian, Eduard
author_facet Kushnireva, Liliya
Basnayake, Kanishka
Holcman, David
Segal, Menahem
Korkotian, Eduard
author_sort Kushnireva, Liliya
collection PubMed
description While neuronal mitochondria have been studied extensively in their role in health and disease, the rules that govern calcium regulation in mitochondria remain somewhat vague. In the present study using cultured rat hippocampal neurons transfected with the mtRCaMP mitochondrial calcium sensor, we investigated the effects of cytosolic calcium surges on the dynamics of mitochondrial calcium ([Ca(2+)]m). Cytosolic calcium ([Ca(2+)]c) was measured using the high affinity sensor Fluo-2. We recorded two types of calcium events: local and global ones. Local events were limited to a small, 2–5 µm section of the dendrite, presumably caused by local synaptic activity, while global events were associated with network bursts and extended throughout the imaged dendrite. In both cases, cytosolic surges were followed by a delayed rise in [Ca(2+)]m. In global events, the rise lasted longer and was observed in all mitochondrial clusters. At the end of the descending part of the global event, [Ca(2+)]m was still high. Global events were accompanied by short and rather high [Ca(2+)]m surges which we called spikelets, and were present until the complete decay of the cytosolic event. In the case of local events, selective short-term responses were limited to the part of the mitochondrial cluster that was located directly in the center of [Ca(2+)]c activity, and faded quickly, while responses in the neighboring regions were rarely observed. Caffeine (which recruits ryanodine receptors to supply calcium to the mitochondria), and carbonyl cyanide m-chlorophenyl hydrazine (CCCP, a mitochondrial uncoupler) could affect [Ca(2+)]m in both global and local events. We constructed a computational model to simulate the fundamental role of mitochondria in restricting calcium signals within a narrow range under synapses, preventing diffusion into adjacent regions of the dendrite. Our results indicate that local cytoplasmic and mitochondrial calcium concentrations are highly correlated. This reflects a key role of signaling pathways that connect the postsynaptic membrane to local mitochondrial clusters.
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spelling pubmed-96040402022-10-27 Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons Kushnireva, Liliya Basnayake, Kanishka Holcman, David Segal, Menahem Korkotian, Eduard Int J Mol Sci Article While neuronal mitochondria have been studied extensively in their role in health and disease, the rules that govern calcium regulation in mitochondria remain somewhat vague. In the present study using cultured rat hippocampal neurons transfected with the mtRCaMP mitochondrial calcium sensor, we investigated the effects of cytosolic calcium surges on the dynamics of mitochondrial calcium ([Ca(2+)]m). Cytosolic calcium ([Ca(2+)]c) was measured using the high affinity sensor Fluo-2. We recorded two types of calcium events: local and global ones. Local events were limited to a small, 2–5 µm section of the dendrite, presumably caused by local synaptic activity, while global events were associated with network bursts and extended throughout the imaged dendrite. In both cases, cytosolic surges were followed by a delayed rise in [Ca(2+)]m. In global events, the rise lasted longer and was observed in all mitochondrial clusters. At the end of the descending part of the global event, [Ca(2+)]m was still high. Global events were accompanied by short and rather high [Ca(2+)]m surges which we called spikelets, and were present until the complete decay of the cytosolic event. In the case of local events, selective short-term responses were limited to the part of the mitochondrial cluster that was located directly in the center of [Ca(2+)]c activity, and faded quickly, while responses in the neighboring regions were rarely observed. Caffeine (which recruits ryanodine receptors to supply calcium to the mitochondria), and carbonyl cyanide m-chlorophenyl hydrazine (CCCP, a mitochondrial uncoupler) could affect [Ca(2+)]m in both global and local events. We constructed a computational model to simulate the fundamental role of mitochondria in restricting calcium signals within a narrow range under synapses, preventing diffusion into adjacent regions of the dendrite. Our results indicate that local cytoplasmic and mitochondrial calcium concentrations are highly correlated. This reflects a key role of signaling pathways that connect the postsynaptic membrane to local mitochondrial clusters. MDPI 2022-10-14 /pmc/articles/PMC9604040/ /pubmed/36293178 http://dx.doi.org/10.3390/ijms232012321 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kushnireva, Liliya
Basnayake, Kanishka
Holcman, David
Segal, Menahem
Korkotian, Eduard
Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons
title Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons
title_full Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons
title_fullStr Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons
title_full_unstemmed Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons
title_short Dynamic Regulation of Mitochondrial [Ca(2+)] in Hippocampal Neurons
title_sort dynamic regulation of mitochondrial [ca(2+)] in hippocampal neurons
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9604040/
https://www.ncbi.nlm.nih.gov/pubmed/36293178
http://dx.doi.org/10.3390/ijms232012321
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