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MicroRNA-9 promotes axon regeneration of mauthner-cell in zebrafish via her6/ calcium activity pathway
Yueru Shen1, Xinghan Chen1, Zheng Song1
1Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, 230026, China.
Abstract:
MicroRNA (miRNA), functioning as a post-transcriptional regulatory element, plays a significant role in numerous regulatory mechanisms and serves as a crucial intrinsic factor influencing axon regeneration. Prior investigations have elucidated the involvement of miRNA-9 in various processes, however, its specific contribution to axon regeneration in the central nervous system (CNS) remains uncertain. Hence, the zebrafish Mauthner axon regeneration model was employed to manipulate the expression of miRNA-9 in single cells, revealing that upregulation of miRNA-9 facilitated axon regeneration. Additionally, her6, a downstream target gene of miRNA-9, was identified as a novel gene associated with axon regeneration. Suppression of her6 resulted in enhanced Mauthner axon regeneration, as evidenced by the significantly improved regenerative capacity observed in her6 knockout zebrafish. In addition, modulation of her6 expression affects intracellular calcium levels in neurons and promoting her6 expression leads to a decrease in calcium levels in vivo using the new NEMOf calcium indicator. Moreover, the administration of the neural activity activator, pentylenetetrazol (PTZ) partially compensated for the inhibitory effect of her6 overexpression on the calcium level and promoted axon regeneration. Taken together, our study revealed a role for miRNA-9 in the process of axon regeneration in the CNS, which improved intracellular calcium activity and promoted axon regeneration by inhibiting the expression of downstream target gene her6. In our study, miRNA-9 emerged as a novel and intriguing target in the intricate regulation of axon regeneration and offered compelling evidence for the intricate relationship between calcium activity and the facilitation of axon regeneration.
Insights
MicroRNA-9 promotes central nervous system axon regeneration by inhibiting the her6 gene. This process involves regulating intracellular calcium levels, offering a new target for nerve repair strategies.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- MicroRNAs (miRNAs) are key post-transcriptional regulators involved in cellular mechanisms.
- miRNA-9's role in central nervous system (CNS) axon regeneration is not fully understood.
- Axon regeneration is critical for recovery from neurological injury.
Purpose of the Study:
- To investigate the specific role of miRNA-9 in CNS axon regeneration.
- To identify downstream targets of miRNA-9 involved in this process.
- To explore the relationship between miRNA-9, gene expression, and neuronal calcium activity during regeneration.
Main Methods:
- Utilized the zebrafish Mauthner axon regeneration model.
- Manipulated single-cell miRNA-9 expression.
- Identified and modulated the expression of the downstream target gene her6.
- Assessed Mauthner axon regeneration capacity and intracellular calcium levels using the NEMOf indicator.
- Administered pentylenetetrazol (PTZ) as a neural activity activator.
Main Results:
- Upregulation of miRNA-9 significantly enhanced Mauthner axon regeneration.
- Identified her6 as a novel downstream target gene of miRNA-9 that inhibits axon regeneration.
- her6 knockout zebrafish exhibited improved regenerative capacity.
- Modulation of her6 affected intracellular calcium levels; increased her6 decreased calcium.
- PTZ partially restored calcium levels and promoted regeneration despite her6 overexpression.
Conclusions:
- miRNA-9 plays a crucial role in promoting CNS axon regeneration.
- miRNA-9 facilitates regeneration by inhibiting the downstream target gene her6.
- This regulatory pathway involves the modulation of intracellular calcium levels, highlighting a link between calcium activity and axon regeneration.
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