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Published on: May 2, 2017
Expression of miR-145 and Its Target Proteins Are Regulated by miR-29b in Differentiated Neurons
Abhishek Jauhari1,2, Tanisha Singh1,3, Sanjay Yadav4
1Developmental Toxicology Laboratory, Systems Toxicology and Health Risk Assessment Group, CSIR- Indian Institute of Toxicology Research (CSIR-IITR), Vishvigyan Bhawan, 31 Mahatma Gandhi Marg, Lucknow, Uttar Pradesh, -226001, India.
Abstract:
MicroRNAs (miRNAs) are emerging as the most potential regulator of neuronal development. Recent studies from our lab and elsewhere have demonstrated a direct role of miRNAs in regulating neuronal differentiation and synaptogenesis. MicroRNA-145, a miRNA identified to regulate pluripotency of stem cells, downregulates the protein levels of reprogramming transcription factors (RTFs) like OCT4, SOX2, and KLF4 (cell, 137,647-658,2009). Studies have shown that miR-145 is multifunctional and crucial for fate determination of neurons. In our recently published study, we have identified a set of miRNAs including miR-145 and miR-29b families differentially expressed in SH-SY5Y cells exposed sequentially with retinoic acid + brain-derived neurotrophic factor (RA+BDNF) for differentiation into mature neurons (Mol Neurobiol (2016) doi: https://doi.org/10.1007/s12035-016-0042-9 ). In the present study, we have identified the role of miR-29b in upregulation of miR-145, which is upregulated after exposure of RA+BDNF in a P53-dependent manner. In differentiating SH-SY5Y cells, expression of miR-29b downregulates expression of P85α, a P53 inhibitor, which results in upregulation of miR-145 and downregulation of RTF proteins. Ectopic expression of miR-145 and miR-29b in amounts equivalent to their endogenous expression has induced G1 phase cell cycle arrest. In conclusion, our studies have identified miR-29b as an upstream regulator of miR-145 and targets its RTF genes during differentiation of SH-SY5Y cells.
Insights
MicroRNA-29b (miR-29b) upregulates microRNA-145 (miR-145) by inhibiting a P53 inhibitor, promoting neuronal differentiation and cell cycle arrest in SH-SY5Y cells.
Area of Science:
- Neuroscience
- Molecular Biology
- Stem Cell Research
Background:
- MicroRNAs (miRNAs) are key regulators of neuronal development, differentiation, and synaptogenesis.
- MicroRNA-145 (miR-145) is known to regulate stem cell pluripotency and downregulate reprogramming transcription factors (RTFs).
- Previous work identified differential expression of miR-145 and miR-29b families in differentiating SH-SY5Y cells.
Purpose of the Study:
- To elucidate the regulatory role of miR-29b in neuronal differentiation.
- To investigate the relationship between miR-29b, miR-145, and reprogramming transcription factors (RTFs) in SH-SY5Y cells.
- To determine the impact of miR-29b and miR-145 on cell cycle progression.
Main Methods:
- SH-SY5Y cells were differentiated using retinoic acid and brain-derived neurotrophic factor (RA+BDNF).
- Expression levels of miR-29b, miR-145, P85α (P53 inhibitor), and RTFs were analyzed.
- The effect of ectopic miR-29b and miR-145 expression on cell cycle was assessed.
Main Results:
- miR-29b upregulates miR-145 in a P53-dependent manner during neuronal differentiation.
- miR-29b downregulates P85α, leading to miR-145 upregulation and RTF downregulation.
- Ectopic expression of miR-29b and miR-145 induced G1 phase cell cycle arrest.
Conclusions:
- miR-29b acts as an upstream regulator of miR-145 in differentiating SH-SY5Y cells.
- The miR-29b/miR-145 axis targets RTF genes, influencing neuronal fate.
- This pathway plays a role in regulating cell cycle during neuronal differentiation.
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