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A Reporter Assay to Analyze Intronic microRNA Maturation in Mammalian Cells
Published on: June 16, 2022
MicroRNA modulation induced by AICA ribonucleotide in J1 mouse ES cells
Xiaoyan Shi1, YongyanWu2, Zhiying Ai1
1College of Life Sciences, Northwest A&F University, Yangling, Shaanxi, China; Key Laboratory of Animal Biotechnology, Ministry of Agriculture, Northwest A&F University, Yangling, Shaanxi, China.
Abstract:
ES cells can propagate indefinitely, maintain self-renewal, and differentiate into almost any cell type of the body. These properties make them valuable in the research of embryonic development, regenerative medicine, and organ transplantation. MicroRNAs (miRNAs) are considered to have essential functions in the maintenance and differentiation of embryonic stem cells (ES cells). It was reported that, strong external stimuli, such as a transient low-pH and hypoxia stress, were conducive to the formation of induced pluripotent stem cells (iPS cells). AICA ribonucleotide (AICAR) is an AMP-activated protein kinase activator, which can let cells in the state of energy stress. We have demonstrated that AICAR can maintain the pluripotency of J1 mouse ES cells through modulating protein expression in our previous research, but its effects on ES cell miRNA expression remain unknown. In this study, we conducted small RNA high-throughput sequencing to investigate AICAR influence on J1 mouse ES cells by comparing the miRNA expression patterns of the AICAR-treated cells and those without treatment. The result showed that AICAR can significantly modulate the expression of multiple miRNAs, including those have crucial functions in ES cell development. Some differentially expressed miRNAs were selected and confirmed by real-time PCR. For the differently expressed miRNAs identified, further study was conducted regarding the pluripotency and differentiation associated miRNAs with their targets. Moreover, miR-134 was significantly down-regulated after AICAR treatment, and this was suggested to be directly associated with the up-regulated pluripotency markers, Nanog and Sox2. Lastly, Myc was significantly down-regulated after AICAR treatment; therefore, we predicted miRNAs that may target Myc and identified that AICAR induced up-regulation of miR-34a, 34b, and 34c can repress Myc expression in J1 mouse ES cells. Taken together, our study provide a new mechanism for AICAR in ES cells pluripotency maintenance and give insight for its usage in iPS cells generation.
Insights
AICAR treatment maintains mouse embryonic stem cell (ES cell) pluripotency by altering microRNA (miRNA) expression, including down-regulating miR-134 and up-regulating miR-34a/b/c to repress Myc.
Area of Science:
- Stem cell biology
- Molecular biology
- Epigenetics
Background:
- Embryonic stem cells (ES cells) possess self-renewal and differentiation capabilities crucial for development and regenerative medicine.
- MicroRNAs (miRNAs) play vital roles in regulating ES cell pluripotency and differentiation.
- AICAR (AICA ribonucleotide), an AMP-activated protein kinase activator, induces an energy-stressed state in cells.
Purpose of the Study:
- To investigate the impact of AICAR on miRNA expression in J1 mouse ES cells.
- To identify specific miRNAs modulated by AICAR and their potential roles in ES cell pluripotency.
- To elucidate the mechanism by which AICAR influences ES cell pluripotency through miRNA regulation.
Main Methods:
- Small RNA high-throughput sequencing to profile miRNA expression.
- Real-time PCR for validation of differentially expressed miRNAs.
- Bioinformatic analysis to predict miRNA targets and associated pathways.
Main Results:
- AICAR significantly modulated the expression of multiple miRNAs in J1 mouse ES cells.
- miR-134 was downregulated by AICAR, correlating with upregulated pluripotency markers Nanog and Sox2.
- AICAR induced upregulation of miR-34a, 34b, and 34c, which were predicted to repress Myc expression.
Conclusions:
- AICAR influences ES cell pluripotency through significant modulation of miRNA expression.
- The study identifies a novel mechanism involving miR-134 and miR-34 family members in AICAR-mediated pluripotency maintenance.
- Findings provide insights into AICAR's potential application in induced pluripotent stem cell generation.
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