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Updated: Feb 1, 2026

Identification of Skeletal Muscle Satellite Cells by Immunofluorescence with Pax7 and Laminin Antibodies
Published on: April 19, 2018
MiR-27b promotes sheep skeletal muscle satellite cell proliferation by targeting myostatin gene
Wei Zhang1, Shi-Yin Wang, Shuang-Yi Deng
1Xinjiang Agricultural Professional Technological College, Changji 831100, People's Republic of China. wangshiyinxjnzy@163.com.
Abstract:
To investigate the role of miR-27b in sheep skeletal muscle development, here we first cloned the sequence of sheep pre-miR-27b, then further investigated its expression pattern in sheep skeletal muscle in vivo, the relationship of miR-27b expression and sheep skeletal muscle satellite cell proliferation and differentiation in vitro, and then finally confirmed its target gene during this development process. MiR-27b sequence, especially its mature sequence, was conservative among different species. MiR-27b highly expressed in sheep skeletal muscle than other tissues. In skeletal muscle of Suffolk and Bashbay sheep, miR-27b was upregulated during foetal period and downregulated during postnatal period significantly (P<0.01), but it still kept a relatively higher expression level in skeletal muscle of postnatal Suffolk sheep than Bashbay. There is a potential target site of miR-27b on 3'-UTR of sheep myostatin (MSTN) mRNA, and the double luciferase reporter assay proved that miR-27b could successfully bind on this site. When sheep satellite cells were in the proliferation status, miR-27b was upregulated and MSTN was downregulated significantly (P<0.01). When miR-27b mimics was transfected into sheep satellite cells, the cell proliferation was promoted and the protein level of MSTN was significantly downregulated (P<0.01). Moreover, miR-27b regulated its target gene MSTN by translation repression at an early step, and followed by inducing mRNA degradation in sheep satellite cells. Based on these results, we confirm that miR-27b could promote sheep skeletal muscle satellite cell proliferation by targeting MSTN and suppressing its expression.
Insights
MicroRNA-27b (miR-27b) promotes sheep skeletal muscle development by targeting myostatin (MSTN). This microRNA enhances satellite cell proliferation and suppresses MSTN expression during muscle growth.
Area of Science:
- Animal Science
- Molecular Biology
- Genetics
Background:
- Skeletal muscle development is a complex process regulated by various genetic factors.
- MicroRNAs (miRNAs) play crucial roles in post-transcriptional gene regulation.
- Understanding miRNA involvement in livestock muscle growth is vital for improving meat production.
Purpose of the Study:
- To investigate the function of miR-27b in sheep skeletal muscle development.
- To identify the target gene of miR-27b involved in this process.
- To elucidate the regulatory mechanism of miR-27b in sheep satellite cells.
Main Methods:
- Cloning of sheep pre-miR-27b sequence.
- In vivo expression analysis in sheep skeletal muscle.
- In vitro studies using sheep skeletal muscle satellite cells.
- Luciferase reporter assays to confirm target gene binding.
- Transfection with miR-27b mimics.
Main Results:
- miR-27b expression is conserved and highly expressed in sheep skeletal muscle.
- miR-27b is upregulated during the fetal period and downregulated postnatally.
- miR-27b targets the 3'-UTR of sheep myostatin (MSTN) mRNA.
- miR-27b promotes satellite cell proliferation and downregulates MSTN protein levels.
- miR-27b regulates MSTN via translation repression and mRNA degradation.
Conclusions:
- miR-27b plays a significant role in promoting sheep skeletal muscle development.
- The mechanism involves targeting and suppressing myostatin (MSTN) expression.
- miR-27b enhances satellite cell proliferation, contributing to muscle growth.
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