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Roles of MiRNAs in Spinal Cord Injury and Potential Therapeutic Interventions

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Date 2021 Apr 19
PMID 33869675
Citations 5
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Abstract

Spinal cord injury (SCI) affects approximately 200,000 individuals per year worldwide. There are more than 27 million people worldwide living with long-term disability due to SCI. Historically, it was thought that the central nervous system (CNS) had little ability for regeneration; however, more recent studies have demonstrated potential for repair within the CNS. Because of this, there exists a renewed interest in the discovery of novel approaches to promote regeneration in the CNS including the spinal cord. It is important to know the roles of the microRNAs (miRNAs) in modulation of pathogenesis in SCI and the potentials of the miRNA-based clinical interventions for controlling post-injury symptoms and improving functional recovery. The miRNAs, which are non-coding RNAs with an average of 22 nucleotides in length, are post-transcriptional gene regulators that cause degradation of the target mRNAs and thus negatively control their translation. This review article focuses on current research related to miRNAs and their roles in modulating SCI symptoms, asserting that miRNAs contribute to critical post-SCI molecular processes including neuroplasticity, functional recovery, astrogliosis, neuropathic pain, inflammation, and apoptosis. In particular, miR-96 provides a promising therapeutic opportunity to improve the outcomes of clinical interventions, including the way SCI injuries are evaluated and treated.

Citing Articles

A variant in microRNA-124 is involved in the control of neural cell apoptosis and associated with recovery after spinal cord injury (SCI).

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PMID: 36160329 PMC: 9479737. DOI: 10.5114/aoms/151683.


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Ma X, Ma T, Chang L, Chen X, Xia G, Li C Spinal Cord. 2022; 60(9):779-783.

PMID: 35292776 PMC: 9436774. DOI: 10.1038/s41393-022-00763-4.


Specific microRNAs for Modulation of Autophagy in Spinal Cord Injury.

Visintin R, Ray S Brain Sci. 2022; 12(2).

PMID: 35204010 PMC: 8870708. DOI: 10.3390/brainsci12020247.


The Diverse Manifestations of Regeneration and Why We Need to Study Them.

Sasidharan V, Sanchez Alvarado A Cold Spring Harb Perspect Biol. 2021; .

PMID: 34750171 PMC: 9438785. DOI: 10.1101/cshperspect.a040931.


miR-7b-3p Exerts a Dual Role After Spinal Cord Injury, by Supporting Plasticity and Neuroprotection at Cortical Level.

Ghibaudi M, Boido M, Green D, Signorino E, Berto G, Pourshayesteh S Front Mol Biosci. 2021; 8:618869.

PMID: 33869277 PMC: 8044879. DOI: 10.3389/fmolb.2021.618869.

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