Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

The Balance of MFN2 and OPA1 in Mitochondrial Dynamics, Cellular Homeostasis, and Disease

View through CrossRef
Mitochondrial dynamics, governed by fusion and fission, are crucial for maintaining cellular homeostasis, energy production, and stress adaptation. MFN2 and OPA1, key regulators of mitochondrial fusion, play essential roles beyond their structural functions, influencing bioenergetics, intracellular signalling, and quality control mechanisms such as mitophagy. Disruptions in these processes, often caused by MFN2 or OPA1 mutations, are linked to neurodegenerative diseases like Charcot-Marie-Tooth disease type 2A (CMT2A) and Autosomal Dominant Optic Atrophy (ADOA). This review explores the molecular mechanisms underlying mitochondrial fusion, the impact of MFN2 and OPA1 dysfunction on oxidative phosphorylation and autophagy, and their role in disease progression. Additionally, we discuss the divergent cellular responses to MFN2 and OPA1 mutations, particularly in terms of proliferation, senescence, and metabolic signalling. Finally, we highlight emerging therapeutic strategies to restore mitochondrial integrity, including mTOR modulation and autophagy-targeted approaches, with potential implications for neurodegenerative and metabolic disorders.
Title: The Balance of MFN2 and OPA1 in Mitochondrial Dynamics, Cellular Homeostasis, and Disease
Description:
Mitochondrial dynamics, governed by fusion and fission, are crucial for maintaining cellular homeostasis, energy production, and stress adaptation.
MFN2 and OPA1, key regulators of mitochondrial fusion, play essential roles beyond their structural functions, influencing bioenergetics, intracellular signalling, and quality control mechanisms such as mitophagy.
Disruptions in these processes, often caused by MFN2 or OPA1 mutations, are linked to neurodegenerative diseases like Charcot-Marie-Tooth disease type 2A (CMT2A) and Autosomal Dominant Optic Atrophy (ADOA).
This review explores the molecular mechanisms underlying mitochondrial fusion, the impact of MFN2 and OPA1 dysfunction on oxidative phosphorylation and autophagy, and their role in disease progression.
Additionally, we discuss the divergent cellular responses to MFN2 and OPA1 mutations, particularly in terms of proliferation, senescence, and metabolic signalling.
Finally, we highlight emerging therapeutic strategies to restore mitochondrial integrity, including mTOR modulation and autophagy-targeted approaches, with potential implications for neurodegenerative and metabolic disorders.

Related Results

Rôle d'OPA1 dans le fonctionnement et l'architecture des cellules musculaires striées et dans la réponse à un stress
Rôle d'OPA1 dans le fonctionnement et l'architecture des cellules musculaires striées et dans la réponse à un stress
L’ADOA-1 (Autosomal dominant optic atrophy) est une maladie neurologique pouvant être causée par la mutation de la protéine mitochondriale OPA1 (Optic atrophy type 1) et pouvant co...
MFN2 silencing promotes neural differentiation of embryonic stem cells via the Akt signaling pathway
MFN2 silencing promotes neural differentiation of embryonic stem cells via the Akt signaling pathway
AbstractMitofusin 2 (MFN2) is a regulatory protein participating in mitochondria dynamics, cell proliferation, death, differentiation, and so on. This study aims at revealing the f...
Mitochondria Fusion and Fission
Mitochondria Fusion and Fission
Abstract Mitochondrial structural dynamics is regulated by the fusion or fission of these organelles. Recently published evidence indicates the ...
Tetrahydroxy stilbene glycoside protects N2a/APP695swe cells by regulating Mfn2
Tetrahydroxy stilbene glycoside protects N2a/APP695swe cells by regulating Mfn2
Abstract Background: To investigate the effect of tetrahydroxy stilbene glycoside (TSG) on mitochondrial function and apoptosis of N2a/APP695swe cells by regulating the ex...
OPA1 Regulates the Effects of Mitochondrial Dynamics Progress of Research on Different Cells of the Heart against Cardiomyopathy
OPA1 Regulates the Effects of Mitochondrial Dynamics Progress of Research on Different Cells of the Heart against Cardiomyopathy
Cardiomyopathies are critical clinical conditions. Their onset is associated with genetic factors, environmental impacts, and cellular dysfunctions. As a heterogeneous group of com...

Back to Top