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Detection of Axonally Localized mRNAs in Brain Sections Using High-Resolution In Situ Hybridization
Published on: June 17, 2015
MicroRNA-132 is enriched in developing axons, locally regulates Rasa1 mRNA, and promotes axon extension
Melissa L Hancock1, Nicolas Preitner, Jie Quan
1Department of Cell Biology, and Program in Neuroscience, Harvard Medical School, Boston, Massachusetts 02115.
Abstract:
Developing axons can locally synthesize proteins, with roles in axon growth, guidance, and regeneration, but the mechanisms that regulate axonal mRNA translation are not well understood. MicroRNAs (miRNAs) are important regulators of translation but have still been little characterized in developing axons. Here we study mouse dorsal root ganglion (DRG) axons and show that their extension is impaired by conditional deficiency of the miRNA-processing enzyme Dicer in vitro and in vivo. A screen for axonal localization identifies a specific set of miRNAs preferentially enriched within the developing axon. High axonal expression and preferential localization were observed for miR-132, a miRNA previously known for roles in dendrites and dysregulation in major neurologic diseases. miR-132 knockdown reduced extension of cultured DRG axons, whereas overexpression increased extension. Mechanistically, miR-132 regulated the mRNA for the Ras GTPase activator Rasa1, a novel target in neuronal function. Moreover, miR-132 regulation of Rasa1 translation was seen in severed axons, demonstrating miRNA function locally within the axon. miR-132 expression in DRGs peaked in the period of maximum axon growth in vivo, consistent with its effect on axon growth, and suggesting a role as a developmental timer. Together, these findings identify miR-132 as a positive regulator of developing axon extension, acting through repression of Rasa1 mRNA, in a mechanism that operates locally within the axon.
Insights
MicroRNAs (miRNAs) regulate axon growth. This study shows miR-132 enhances developing axon extension by repressing Rasa1 mRNA translation locally within the axon.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Developing axons synthesize proteins locally, crucial for growth, guidance, and regeneration.
- Mechanisms regulating axonal mRNA translation, particularly involving microRNAs (miRNAs), are poorly understood.
Purpose of the Study:
- To investigate the role and mechanisms of microRNAs in developing axons.
- To identify specific miRNAs localized to and functioning within axons.
- To elucidate the function of miR-132 in regulating axon extension.
Main Methods:
- Conditional deficiency of Dicer in mouse dorsal root ganglion (DRG) axons in vitro and in vivo.
- Screening for axonal localization of miRNAs.
- miR-132 knockdown and overexpression experiments in cultured DRG axons.
- Analysis of miR-132 regulation of Rasa1 mRNA translation in severed axons.
Main Results:
- Conditional Dicer deficiency impaired axon extension.
- miR-132 was identified as preferentially enriched in developing axons.
- miR-132 knockdown reduced axon extension; overexpression increased it.
- miR-132 was shown to regulate the translation of Rasa1 mRNA, a novel target.
- miR-132 expression peaked during maximal axon growth in vivo.
Conclusions:
- miR-132 is a positive regulator of developing axon extension.
- It functions by locally repressing Rasa1 mRNA translation within the axon.
- miR-132 may act as a developmental timer for axon growth.
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