Mitochondrial pathways of copper neurotoxicity: focus on mitochondrial dynamics and mitophagy

Copper (Cu) is essential for brain development and function, yet its overload induces neuronal damage and contributes to neurodegeneration and other neurological disorders. Multiple studies demonstrated that Cu neurotoxicity is associated with mitochondrial dysfunction, routinely assessed by reduction of mitochondrial membrane potential. Nonetheless, the role of alterations of mitochondrial dynamics in brain mitochondrial dysfunction induced by Cu exposure is still debatable. Therefore, the objective of the present narrative review was to discuss the role of mitochondrial dysfunction in Cu-induced neurotoxicity with special emphasis on its influence on brain mitochondrial fusion and fission, as well as mitochondrial clearance by mitophagy. Existing data demonstrate that, in addition to mitochondrial electron transport chain inhibition, membrane damage, and mitochondrial reactive oxygen species (ROS) overproduction, Cu overexposure inhibits mitochondrial fusion by down-regulation of Opa1, Mfn1, and Mfn2 expression, while promoting mitochondrial fission through up-regulation of Drp1. It has been also demonstrated that Cu exposure induces PINK1/Parkin-dependent mitophagy in brain cells, that is considered a compensatory response to Cu-induced mitochondrial dysfunction. However, long-term high-dose Cu exposure impairs mitophagy, resulting in accumulation of dysfunctional mitochondria. Cu-induced inhibition of mitochondrial biogenesis due to down-regulation of PGC-1α further aggravates mitochondrial dysfunction in brain. Studies from non-brain cells corroborate these findings, also offering additional evidence that dysregulation of mitochondrial dynamics and mitophagy may be involved in Cu-induced damage in brain. Finally, Cu exposure induces cuproptosis in brain cells due mitochondrial proteotoxic stress, that may also contribute to neuronal damage and pathogenesis of certain brain diseases. Based on these findings, it is assumed that development of mitoprotective agents, specifically targeting mechanisms of mitochondrial quality control, would be useful for prevention of neurotoxic effects of Cu overload. Copyright © 2024 Aschner, Skalny, Lu, Martins, Tizabi, Nekhoroshev, Santamaria, Sinitskiy and Tinkov.

Авторы
Aschner M. , Skalny A.V. , Lu R. , Martins A.C. , Tizabi Y. , Nekhoroshev S.V. , Santamaria A. , Sinitskiy A.I. , Tinkov A.A.
Издательство
Frontiers Media SA
Язык
Английский
Статус
Опубликовано
Номер
1504802
Том
17
Год
2024
Организации
  • 1 Department of Molecular Pharmacology, Albert Einstein College of Medicine, Bronx, NY, United States
  • 2 Institute of Bioelementology, Orenburg State University, Orenburg, Russian Federation
  • 3 Center of Bioelementology and Human Ecology, IM Sechenov First Moscow State Medical University (Sechenov University), Moscow, Russian Federation
  • 4 Department of Medical Elementology, Peoples’ Friendship, University of Russia, RUDN University), Moscow, Russian Federation
  • 5 Department of Preventive Medicine and Public Health Laboratory Science, School of Medicine, Jiangsu University, Zhenjiang, China
  • 6 Department of Pharmacology, Howard University College of Medicine, Washington, DC, United States
  • 7 Problem Research Laboratory, Khanty-Mansiysk State Medical Academy, Khanty-Mansiysk, Russian Federation
  • 8 Facultad de Ciencias, Universidad Nacional Autónoma de México, Mexico City, Mexico
  • 9 Laboratorio de Nanotecnología y Nanomedicina, Departamento de Atención a la Salud, Universidad Autónoma Metropolitana-Xochimilco, Mexico City, Mexico
  • 10 Department of Biochemistry, South Ural State Medical University, Chelyabinsk, Russian Federation
  • 11 Laboratory of Ecobiomonitoring and Quality Control, Department of Physical Education, Yaroslavl State University, Yaroslavl, Russian Federation
Ключевые слова
copper; cuproptosis; fission; mitochondrial fusion; mitophagy
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Vorobiev V.V., Fatkullina F.G., Khairullina R.H., Sknarev D.S.
Oriental Studies. Kalmyk Scientific Centre of Russian Academy of Sciences. Том 17. 2024. С. 664-679