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Modulation of the miR-485-3p/PGC-1α Pathway by ASO-Loaded Nanoparticles Attenuates ALS Pathogenesis
In Soo Ryu1, Dae-In Ha1, Yeon-Joo Jung1
1BIORCHESTRA Co., Ltd., 1, Gukjegwahak 2-ro, Yuseong-gu, Daejeon 34000, Republic of Korea.
Abstract:
Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disorder characterized by progressive motor neuron degeneration with limited treatment options. In this study, we investigated the pathological role of microRNA-485-3p (miR-485-3p) in ALS, particularly its regulation of PGC-1α, a transcriptional coactivator essential for mitochondrial function and neuroprotection. We also evaluated the therapeutic potential of BMD-001S, a nanoparticle-based formulation encapsulating an antisense oligonucleotide targeting miR-485-3p. Our results demonstrated that miR-485-3p expression was significantly elevated in both SOD1G93A-expressing HMC3 microglial cells and in the spinal cords of SOD1G93A transgenic mice at late disease stages, implicating its contribution to ALS pathogenesis. Intravenous administration of BMD-001S effectively reduced miR-485-3p levels and restored PGC-1α mRNA and PGC-1α protein expression in the spinal cord. These molecular changes were associated with notable therapeutic outcomes, including reduced SOD1 protein aggregation, decreased neuroinflammation, and lower neurofilament light chain concentrations in cerebrospinal fluid. Moreover, BMD-001S treatment was associated with improvements in electrophysiological parameters and preservation of neuromuscular junction integrity during the observation period in SOD1G93A transgenic mice. Taken together, these findings suggest that miR-485-3p/PGC-1α pathway is a promising therapeutic target in ALS and support the potential of BMD-001S as a novel treatment strategy for the disease.
Insights
MicroRNA-485-3p is elevated in Amyotrophic Lateral Sclerosis (ALS). Targeting this microRNA with BMD-001S improved motor neuron function and reduced disease markers in mice.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Amyotrophic Lateral Sclerosis (ALS) is a fatal neurodegenerative disease with limited treatments.
- Motor neuron degeneration is a hallmark of ALS, impacting mitochondrial function and neuroprotection.
- MicroRNAs play a role in neurodegenerative diseases, but their specific function in ALS requires further investigation.
Purpose of the Study:
- To investigate the role of microRNA-485-3p (miR-485-3p) in ALS pathogenesis.
- To explore the regulation of PGC-1α by miR-485-3p in the context of ALS.
- To evaluate the therapeutic potential of BMD-001S, a novel antisense oligonucleotide formulation, for ALS treatment.
Main Methods:
- Assessed miR-485-3p expression in SOD1G93A microglial cells and transgenic mouse spinal cords.
- Administered BMD-001S intravenously to SOD1G93A mice.
- Measured PGC-1α mRNA and protein levels, SOD1 aggregation, neuroinflammation markers, and neurofilament light chain (NfL) in cerebrospinal fluid.
- Evaluated electrophysiological parameters and neuromuscular junction integrity.
Main Results:
- miR-485-3p expression was significantly elevated in ALS models.
- BMD-001S treatment reduced miR-485-3p levels and restored PGC-1α expression.
- Therapeutic effects included reduced SOD1 aggregation, decreased neuroinflammation, and lower NfL levels.
- BMD-001S improved electrophysiological function and preserved neuromuscular junctions.
Conclusions:
- The miR-485-3p/PGC-1α pathway is implicated in ALS pathogenesis.
- BMD-001S demonstrates therapeutic potential by targeting miR-485-3p.
- This study supports BMD-001S as a promising novel treatment strategy for ALS.
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