Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease characterized by progressive loss of the upper and lower motor neurons. Despite the increasing effort in understanding the etiopathology of ALS, it still remains an obscure disease, and no therapies are currently available to halt its progression. Following the discovery of the first gene associated with familial forms of ALS, Cu–Zn superoxide dismutase, it appeared evident that mitochondria were key elements in the onset of the pathology. However, as more and more ALS-related genes were discovered, the attention shifted from mitochondria impairment to other biological functions such as protein aggregation and RNA metabolism. In recent years, mitochondria have again earned central, mechanistic roles in the pathology, due to accumulating evidence of their derangement in ALS animal models and patients, often resulting in the dysregulation of the energetic metabolism. In this review, we first provide an update of the last lustrum on the molecular mechanisms by which the most well-known ALS-related proteins affect mitochondrial functions and cellular bioenergetics. Next, we focus on evidence gathered from human specimens and advance the concept of a cellular-specific mitochondrial “metabolic threshold”, which may appear pivotal in ALS pathogenesis.

Mechanistic Insights of Mitochondrial Dysfunction in Amyotrophic Lateral Sclerosis. An Update on a Lasting Relationship / Candelise, N.; Salvatori, I.; Scaricamazza, S.; Nesci, V.; Zenuni, H.; Ferri, A.; Valle, C.. - In: METABOLITES. - ISSN 2218-1989. - 12:3(2022), pp. 1-23. [10.3390/metabo12030233]

Mechanistic Insights of Mitochondrial Dysfunction in Amyotrophic Lateral Sclerosis. An Update on a Lasting Relationship

Candelise N.;Salvatori I.;
2022

Abstract

Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease characterized by progressive loss of the upper and lower motor neurons. Despite the increasing effort in understanding the etiopathology of ALS, it still remains an obscure disease, and no therapies are currently available to halt its progression. Following the discovery of the first gene associated with familial forms of ALS, Cu–Zn superoxide dismutase, it appeared evident that mitochondria were key elements in the onset of the pathology. However, as more and more ALS-related genes were discovered, the attention shifted from mitochondria impairment to other biological functions such as protein aggregation and RNA metabolism. In recent years, mitochondria have again earned central, mechanistic roles in the pathology, due to accumulating evidence of their derangement in ALS animal models and patients, often resulting in the dysregulation of the energetic metabolism. In this review, we first provide an update of the last lustrum on the molecular mechanisms by which the most well-known ALS-related proteins affect mitochondrial functions and cellular bioenergetics. Next, we focus on evidence gathered from human specimens and advance the concept of a cellular-specific mitochondrial “metabolic threshold”, which may appear pivotal in ALS pathogenesis.
2022
amyotrophic lateral sclerosis; bioenergetic; metabolism; mitochondria; motor neuron disease
01 Pubblicazione su rivista::01g Articolo di rassegna (Review)
Mechanistic Insights of Mitochondrial Dysfunction in Amyotrophic Lateral Sclerosis. An Update on a Lasting Relationship / Candelise, N.; Salvatori, I.; Scaricamazza, S.; Nesci, V.; Zenuni, H.; Ferri, A.; Valle, C.. - In: METABOLITES. - ISSN 2218-1989. - 12:3(2022), pp. 1-23. [10.3390/metabo12030233]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1642778
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