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Published on: June 15, 2018
MicroRNA-128 inhibits mitochondrial biogenesis and function via targeting PGC1α and NDUFS4
Kritika Sharma1, Amit Chandra2, Yasha Hasija3
1CSIR-Institute of Genomics and Integrative Biology, Mall Road, New Delhi 110007, India; Delhi Technological University, Delhi, India.
Abstract:
The size and morphology of mitochondria are very heterogeneous and correlates well with their healthy functioning. In many pathological conditions, mitochondrial morphology is altered due to impaired mitochondrial dynamics (a collective term for mitochondrial fusion and fission) and dysfunction. The current study aimed at identifying the role of microRNA-128 (miR-128) in regulating mitochondrial biogenesis. Previously, peroxisome proliferator activator receptor γ coactivator 1α (PGC1α) has been shown to co-activate key intermediates of mitochondrial biogenesis, function, and dynamics; however, the upstream regulatory network remains largely unknown. We, herein using in silico analysis followed by in vitro experiments in C2C12 myoblasts, showed that miR-128 reduces mitochondrial biogenesis by directly targeting PGC1α. The expression of downstream genes, nuclear respiratory factors 1 and 2 (NRF1 and NRF2, respectively), and mitochondrial transcription factor A (TFAM) were decreased in C2C12 myoblasts upon overexpression of miR-128. Also, miR-128 is shown to promote mitochondrial dysfunction by directly targeting NADH Dehydrogenase (Ubiquinone) Fe-S Protein 4 (NDUFS4). The mitochondrial dynamics and morphology were impaired post miR-128 overexpression, as revealed by downregulation of fusion proteins (mitofusin1 and 2, i.e., MFN1 and MFN2, respectively) and upregulation of fission protein (dynamin-related protein 1, i.e., DRP1). Conversely, inhibition of miR-128 expression improved mitochondrial biogenesis, function, and dynamics, as evidenced by increased mitochondrial mass and ATP production after antimiR-128 treatment. Our findings reveal that inhibition of miR-128 can be a new potential target for reversing the effects of metabolic disorders of skeletal muscle as observed during many pathophysiological conditions such as obesity and type II diabetes.
Insights
MicroRNA-128 (miR-128) reduces mitochondrial biogenesis and function by targeting PGC1α and NDUFS4. Inhibiting miR-128 improves mitochondrial health, offering potential for metabolic disorders like obesity and type II diabetes.
Area of Science:
- Cell Biology
- Molecular Biology
- Metabolic Diseases
Background:
- Mitochondrial size and morphology are crucial for cellular health.
- Altered mitochondrial dynamics and function are hallmarks of many pathological conditions.
- The upstream regulators of mitochondrial biogenesis, such as peroxisome proliferator activator receptor γ coactivator 1α (PGC1α), are not fully understood.
Purpose of the Study:
- To investigate the role of microRNA-128 (miR-128) in regulating mitochondrial biogenesis and function.
- To identify the molecular targets of miR-128 involved in mitochondrial regulation.
Main Methods:
- In silico analysis followed by in vitro experiments in C2C12 myoblasts.
- Overexpression and inhibition of miR-128.
- Analysis of mitochondrial biogenesis, function, and dynamics markers.
- Target validation for PGC1α and NDUFS4.
Main Results:
- miR-128 directly targets and reduces PGC1α expression, leading to decreased mitochondrial biogenesis.
- miR-128 overexpression impairs mitochondrial function by targeting NDUFS4.
- Mitochondrial dynamics are disrupted by miR-128, with altered fusion and fission protein levels.
- Inhibition of miR-128 enhances mitochondrial mass, ATP production, and overall function.
Conclusions:
- miR-128 plays a significant role in regulating mitochondrial biogenesis, function, and dynamics.
- Targeting miR-128 offers a potential therapeutic strategy for metabolic disorders affecting skeletal muscle, such as obesity and type II diabetes.
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