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Mitochondrial Calcium: Effects of Its Imbalance in Disease
by
Araiza-Villanueva, Minerva Georgina
, Vázquez-Meza, Héctor
, Matuz-Mares, Deyamira
, Vilchis-Landeros, María Magdalena
, González-Andrade, Martin
in
Alzheimer's disease
/ Amyotrophic lateral sclerosis
/ Apoptosis
/ calcium
/ Calcium (mitochondrial)
/ Calcium buffering
/ Calcium homeostasis
/ Calcium sequestration
/ Cell death
/ Central nervous system
/ Cytoplasm
/ Disease
/ Endoplasmic reticulum
/ Gene expression
/ Homeostasis
/ Huntington's disease
/ Huntingtons disease
/ Ischemia
/ Lysosomal storage diseases
/ Membrane permeability
/ Membranes
/ Metabolism
/ Mitochondria
/ Mitochondrial permeability transition pore
/ Movement disorders
/ neurodegenerative
/ Neurodegenerative diseases
/ Neurological disorders
/ Parkinson's disease
/ Phosphorylation
/ Physiology
/ Proteins
/ Reperfusion
/ Review
2022
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Mitochondrial Calcium: Effects of Its Imbalance in Disease
by
Araiza-Villanueva, Minerva Georgina
, Vázquez-Meza, Héctor
, Matuz-Mares, Deyamira
, Vilchis-Landeros, María Magdalena
, González-Andrade, Martin
in
Alzheimer's disease
/ Amyotrophic lateral sclerosis
/ Apoptosis
/ calcium
/ Calcium (mitochondrial)
/ Calcium buffering
/ Calcium homeostasis
/ Calcium sequestration
/ Cell death
/ Central nervous system
/ Cytoplasm
/ Disease
/ Endoplasmic reticulum
/ Gene expression
/ Homeostasis
/ Huntington's disease
/ Huntingtons disease
/ Ischemia
/ Lysosomal storage diseases
/ Membrane permeability
/ Membranes
/ Metabolism
/ Mitochondria
/ Mitochondrial permeability transition pore
/ Movement disorders
/ neurodegenerative
/ Neurodegenerative diseases
/ Neurological disorders
/ Parkinson's disease
/ Phosphorylation
/ Physiology
/ Proteins
/ Reperfusion
/ Review
2022
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Mitochondrial Calcium: Effects of Its Imbalance in Disease
by
Araiza-Villanueva, Minerva Georgina
, Vázquez-Meza, Héctor
, Matuz-Mares, Deyamira
, Vilchis-Landeros, María Magdalena
, González-Andrade, Martin
in
Alzheimer's disease
/ Amyotrophic lateral sclerosis
/ Apoptosis
/ calcium
/ Calcium (mitochondrial)
/ Calcium buffering
/ Calcium homeostasis
/ Calcium sequestration
/ Cell death
/ Central nervous system
/ Cytoplasm
/ Disease
/ Endoplasmic reticulum
/ Gene expression
/ Homeostasis
/ Huntington's disease
/ Huntingtons disease
/ Ischemia
/ Lysosomal storage diseases
/ Membrane permeability
/ Membranes
/ Metabolism
/ Mitochondria
/ Mitochondrial permeability transition pore
/ Movement disorders
/ neurodegenerative
/ Neurodegenerative diseases
/ Neurological disorders
/ Parkinson's disease
/ Phosphorylation
/ Physiology
/ Proteins
/ Reperfusion
/ Review
2022
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Mitochondrial Calcium: Effects of Its Imbalance in Disease
Journal Article
Mitochondrial Calcium: Effects of Its Imbalance in Disease
2022
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Overview
Calcium is used in many cellular processes and is maintained within the cell as free calcium at low concentrations (approximately 100 nM), compared with extracellular (millimolar) concentrations, to avoid adverse effects such as phosphate precipitation. For this reason, cells have adapted buffering strategies by compartmentalizing calcium into mitochondria and the endoplasmic reticulum (ER). In mitochondria, the calcium concentration is in the millimolar range, as it is in the ER. Mitochondria actively contribute to buffering cellular calcium, but if matrix calcium increases beyond physiological demands, it can promote the opening of the mitochondrial permeability transition pore (mPTP) and, consequently, trigger apoptotic or necrotic cell death. The pathophysiological implications of mPTP opening in ischemia-reperfusion, liver, muscle, and lysosomal storage diseases, as well as those affecting the central nervous system, for example, Parkinson’s disease (PD), Alzheimer’s disease (AD), Huntington’s disease (HD), and amyotrophic lateral sclerosis (ALS) have been reported. In this review, we present an updated overview of the main cellular mechanisms of mitochondrial calcium regulation. We specially focus on neurodegenerative diseases related to imbalances in calcium homeostasis and summarize some proposed therapies studied to attenuate these diseases.
Publisher
MDPI AG,MDPI
Subject
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