Artículo o Paper
Mitostasis, Calcium and Free Radicals in Health, Aging and Neurodegeneration
Fecha
2021-07Registro en:
Godoy, J. A., Rios, J. A., Picón-Pagès, P., Herrera-Fernández, V., Swaby, B., Crepin, G., ... & Muñoz, F. J. (2021). Mitostasis, calcium and free radicals in health, aging and neurodegeneration. Biomolecules, 11(7), 1012.
eISSN 2218-273X
WOS: 000676562200001
PMID: 34356637
10.3390/biom11071012
Autor
Godoy, Juan A.
Ríos, Juvenal A. [Univ Mayor, Fac Estudios Interdisciplinarios, Programas Futuro, Chile]
Picón-Pagès, Pol
Herrera-Fernández, Víctor
Swaby, Bronte
Crepin, Giulia
Vicente, Rubén
Fernández-Fernández, José M.
Muñoz, Francisco J.
Institución
Resumen
Mitochondria play key roles in ATP supply, calcium homeostasis, redox balance control and apoptosis, which in neurons are fundamental for neurotransmission and to allow synaptic plasticity. Their functional integrity is maintained by mitostasis, a process that involves mitochondrial transport, anchoring, fusion and fission processes regulated by different signaling pathways but mainly by the peroxisome proliferator-activated receptor-gamma coactivator-1 alpha (PGC-1 alpha). PGC-1 alpha also favors Ca2+ homeostasis, reduces oxidative stress, modulates inflammatory processes and mobilizes mitochondria to where they are needed. To achieve their functions, mitochondria are tightly connected to the endoplasmic reticulum (ER) through specialized structures of the ER termed mitochondria-associated membranes (MAMs), which facilitate the communication between these two organelles mainly to aim Ca2+ buffering. Alterations in mitochondrial activity enhance reactive oxygen species (ROS) production, disturbing the physiological metabolism and causing cell damage. Furthermore, cytosolic Ca2+ overload results in an increase in mitochondrial Ca2+, resulting in mitochondrial dysfunction and the induction of mitochondrial permeability transition pore (mPTP) opening, leading to mitochondrial swelling and cell death through apoptosis as demonstrated in several neuropathologies. In summary, mitochondrial homeostasis is critical to maintain neuronal function; in fact, their regulation aims to improve neuronal viability and to protect against aging and neurodegenerative diseases.