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Published on: June 16, 2016
miR-107-5p mitigates spinal cord injury by targeting the PLOD2/HK2 axis
Mengqiu Deng1, Guowei Jiang1, Kesheng Huang1
1Department of Anesthesiology, Changzheng Hospital, Second Affiliated Hospital of Naval Medical University, Shanghai 200003, China.
Background:
Spinal cord injury (SCI) induces persistent neuroinflammation and metabolic disturbances that contribute to neuropathic pain and neuronal damage. Although microRNAs are involved in these processes, their regulatory roles remain incompletely understood. This study aimed to identify miRNA-associated metabolic regulators linking glycolytic alterations with neuroinflammatory responses after SCI.
Methods:
A contusion-induced mouse SCI model was used to assess behavioral sensitivity, motor function, and histological, molecular, and ultrastructural changes. Transcriptomic and microRNA profiling were performed to identify candidate regulators. Functional validation of miR-107-5p was conducted in BV-2 microglia and in vivo through overexpression studies, focusing on metabolic activity, microglial polarization, and cell death-related pathways.
Results:
SCI reduced pain thresholds and motor performance and induced neuronal injury, mitochondrial abnormalities, and pro-inflammatory microglial activation. Transcriptomic analysis revealed sustained upregulation of the glycolytic regulators PLOD2 and HK2. Integrative profiling identified miR-107-5p as a potential upstream regulator of PLOD2. Overexpression of miR-107-5p in vitro and in vivo decreased PLOD2 and HK2 expression, reduced glycolytic activity, and attenuated inflammatory and apoptotic responses. These effects were diminished following PLOD2 knockdown, suggesting a PLOD2-dependent mechanism. Intrathecal administration of miR-107-5p in SCI mice was associated with higher pain thresholds, better motor performance, and reduced markers of neuroinflammation and neural injury.
Conclusions:
miR-107-5p modulates glycolytic metabolism and inflammatory signaling after SCI, in part through regulation of the PLOD2/HK2 pathway. These findings provide mechanistic insight into miRNA-mediated metabolic regulation in SCI and support further investigation of miR-107-5p in the context of post-injury neuroinflammation.
Insights
MicroRNA-107-5p (miR-107-5p) helps control inflammation and metabolism after spinal cord injury (SCI). It targets PLOD2/HK2, reducing pain and improving motor function in SCI mice.
Area of Science:
- Neuroscience
- Molecular Biology
- Metabolomics
Background:
- Spinal cord injury (SCI) causes lasting neuroinflammation and metabolic issues, leading to pain and nerve damage.
- MicroRNAs (miRNAs) are implicated in SCI, but their precise regulatory roles in metabolism and inflammation are unclear.
Purpose of the Study:
- Identify miRNA-associated metabolic regulators linking glycolysis and neuroinflammation in SCI.
- Investigate the role of miR-107-5p in modulating metabolic and inflammatory pathways post-SCI.
Main Methods:
- Utilized a mouse model of contusion-induced SCI.
- Performed transcriptomic and miRNA profiling to identify key regulators.
- Validated miR-107-5p function in microglia and in vivo, assessing metabolic activity, polarization, and apoptosis.
Main Results:
- SCI mice showed reduced pain thresholds, motor deficits, and increased neuroinflammation.
- miR-107-5p overexpression decreased PLOD2/HK2 expression, reduced glycolysis, and attenuated inflammation and apoptosis.
- In vivo miR-107-5p administration improved pain thresholds, motor function, and reduced neuroinflammation markers.
Conclusions:
- miR-107-5p regulates glycolytic metabolism and inflammation post-SCI via the PLOD2/HK2 pathway.
- Findings offer mechanistic insights into miRNA-mediated metabolic control in SCI.
- miR-107-5p is a potential therapeutic target for managing neuroinflammation after SCI.
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