| Literature DB >> 23880856 |
Xiaoling Chen1, Zhiqing Huang, Daiwen Chen, Ting Yang, Guangmang Liu.
Abstract
Leucine, a branched chain amino acid, is well known to stimulate protein synthesis in skeletal muscle. However, the role of leucine in myoblast proliferation remains unclear. In this study, we found that leucine could promote proliferation of C2C12 cells. Moreover, expressions of miR-27a and myostatin (a bona fide target of miR-27a) were upregulated and downregulated, respectively, following leucine treatment. We also found that miR-27a loss-of-function by transfection of a miR-27a inhibitor suppressed the promotion of myoblast proliferation caused by leucine. Our results suggest that miR-27a is induced by leucine and contributes to leucine-induced proliferation promotion of myoblast.Entities:
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Year: 2013 PMID: 23880856 PMCID: PMC3742232 DOI: 10.3390/ijms140714076
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Effect of leucine on myoblast proliferation. C2C12 cells were seeded in a 24-well plate at a density of 1.0 × 104 cells per well. After 48 h, the cells were starved in high-glucose DMEM for 4 h. The cells were subjected to treatment in the same starvation media by adding 0 mM (control), 1 mM or 2 mM of leucine. Cell proliferation was evaluated by EdU proliferation assay after 3.5 h of leucine treatment. (A) Proliferating C2C12 cells were labeled with EdU. The Click-it reaction revealed EdU staining (red). Cell nuclei were stained with Hoechst 33342 (blue). The images are representative of the data obtained; (B) The percentage of EdU-positive C2C12 cells were quantified. Results were presented as mean ± SE (n = 6). *p < 0.05.
Figure 2Effect of leucine on expressions of miR-27a and myostatin. C2C12 cells were seeded in a 24-well plate at 1.0 × 104 cells per well. After 48 h, the cells were starved in high-glucose DMEM for 4 h and then supplemented with or without leucine (1 mM) for another 3.5 h in the same starvation media. Mature miR-27a level (A) and myostatin mRNA (B) were determined using real-time quantitative PCR. Samples were performed in duplicate. The amount of mature miR-27a and myostatin mRNA were normalized to the amount of U6 snRNA and GAPDH mRNA, respectively. The data were expressed as mean ± SE from three independent experiments. *p < 0.05.
Figure 3Promotion of myoblast proliferation by leucine is reduced by miR-27a inhibition. C2C12 cells were seeded in a 24-well plate at a density of 1.0 × 104 cells per well. After 48 h, the cells were transfected with 100 nM of either miRNA inhibitor Negative Control or miR-27a inhibitor. Transfection mix was removed 6 h later and cells were grown in DMEM/10%FBS medium. Twenty-four hours after the transfection, the cells were starved in high-glucose DMEM for 4 h and then supplemented with or without leucine (1 mM) for another 3.5 h in the same starvation media. (A) The amount of mature miR-27a against U6 snRNA was measured by real-time quantitative PCR. Data were mean ± SE from three independent experiments performed in duplicate; (B) Proliferating C2C12 cells were labeled with EdU. The Click-it reaction revealed EdU staining (red). Cell nuclei were stained with Hoechst 33342 (blue). The images are representative of the data obtained; (C) The percentage of EdU-positive C2C12 cells were quantified. Results were expressed as mean ± SE (n = 6). *p < 0.05; ***p < 0.001.
List of genes, primer sequences, GenBank accession numbers, and product sizes in this study.
| Gene name | Primer | Sequence | GenBank ID | Product size |
|---|---|---|---|---|
| Forward | 5′-GATGGGACTGGATTATCGC-3′ | 102 bp | ||
| Reverse | 5′-GCACAAGATGAGTATGCGG-3′ | |||
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| ||||
| Forward | 5′-AGGGCATCTTGGGCTACAC-3′ | 211 bp | ||
| Reverse | 5′-TGGTCCAGGGTTTCTTACTCC-3′ | |||