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Describing a Transcription Factor Dependent Regulation of the MicroRNA Transcriptome
Published on: June 15, 2016
The nuclear matrix protein Matr3 regulates processing of the synaptic microRNA-138-5p
Kerstin Weiss1, Thomas Treiber2, Gunter Meister2
1Institute of Physiological Chemistry, Philipps-University Marburg, Marburg, Germany.
Abstract:
microRNA-dependent post-transcriptional control represents an important gene-regulatory layer in post-mitotic neuronal development and synaptic plasticity. We recently identified the brain-enriched miR-138 as a negative regulator of dendritic spine morphogenesis in rat hippocampal neurons. A potential involvement of miR-138 in cognition is further supported by a recent GWAS study on memory performance in a cohort of aged (>60 years) individuals. The expression of miR-138, which is encoded in two independent genomic loci (miR-138-1 and -2), is subject to both cell-type and developmental stage-specific regulation, the underlying molecular mechanisms however are poorly understood. Here, we show that miR-138-2 is the primary source of mature miR-138 in developing rat hippocampal neurons. Furthermore, we obtained evidence for the regulation of miR-138-2 biogenesis at the level of primary miRNA processing. Using biochemical pull-down assays, we identified the nuclear matrix protein Matrin-3 as pri/pre-miR-138 interacting protein and mapped the interaction to the pri/pre-miR-138-2 loop region. Matrin-3 loss-of-function experiments in HEK293 cells and primary neurons together with protein localization studies suggest an inhibitory function of Matrin-3 in nuclear pri-miR-138-2 processing. Together, our experiments unravel a new mechanism of miR-138 regulation in neurons, with important implications for miR-138 regulation during neuronal development, synaptic plasticity and memory-related processes.
Insights
MicroRNA-138 (miR-138) regulates neuronal development and memory. Matrin-3 inhibits miR-138-2 processing, revealing a novel regulatory mechanism in neurons.
Area of Science:
- Neuroscience
- Molecular Biology
- Gene Regulation
Background:
- MicroRNA-dependent post-transcriptional control is crucial for neuronal development and synaptic plasticity.
- Brain-enriched miR-138 negatively regulates dendritic spine morphogenesis and may influence cognition.
- The precise regulation of miR-138 expression during neuronal development is not well understood.
Purpose of the Study:
- To elucidate the molecular mechanisms regulating miR-138 biogenesis in developing rat hippocampal neurons.
- To identify proteins interacting with pri/pre-miR-138 and their role in its processing.
- To understand the function of Matrin-3 in miR-138 regulation.
Main Methods:
- Quantitative real-time PCR to determine miR-138 expression.
- Biochemical pull-down assays to identify interacting proteins.
- Loss-of-function experiments in HEK293 cells and primary neurons.
- Protein localization studies.
Main Results:
- miR-138-2 was identified as the primary source of mature miR-138 in developing hippocampal neurons.
- Matrin-3 was identified as a protein interacting with pri/pre-miR-138-2.
- Matrin-3 was shown to inhibit nuclear pri-miR-138-2 processing.
Conclusions:
- A novel mechanism for miR-138 regulation involving Matrin-3-mediated inhibition of pri-miR-138-2 processing was discovered.
- This finding has significant implications for understanding miR-138's role in neuronal development, synaptic plasticity, and memory.
- The study highlights Matrin-3 as a key regulator of miR-138 biogenesis in neurons.
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