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Updated: Sep 25, 2025

A Method for Measuring RNA N6-methyladenosine Modifications in Cells and Tissues
Published on: December 5, 2016
Regulatory Role of N6-Methyladenosine in Longissimus Dorsi Development in Yak
Xiaoming Ma1,2, Yongfu La1,2, Pengjia Bao1,2
1Lanzhou Institute of Husbandry and Pharmaceutical Sciences, Chinese Academy of Agricultural Sciences, Lanzhou, China.
Abstract:
N6-methyladenine (m6A) RNA undergoes epigenetic modification, which is the most extensive intermediate chemical modification in mRNA. Although this modification occurs in all living organisms, it is the most widely studied among mammals. However, to date, no study has investigated the m6A transcriptome-wide map of yak and its potential biological functions in muscle development. In this study, the differences of m6A methylation and gene expression in yak muscle development belonging to three age groups, namely 3 years (group A), 6 months (group M), and 90-day-old fetuses (group E), were determined by using methylated RNA immunoprecipitation sequencing (MeRIP-Seq) and RNA sequencing (RNA-Seq). In these three groups, a total of 6,278 (A), 9,298 (E), and 9,584 (M) m6A peaks were identified, with average densities between 1.02 and 2.01. m6A peaks were mostly enriched in the stop codon, 3' untranslated region (UTR) region, and inner long exon region with consensus motifs of UGACA. In all the three stages, the m6A peak enrichment level was significantly negatively correlated with mRNA abundance (Pearson's correlation coefficient r = -0.22 to -0.32, p < 10-16). The functional enrichment of genes consistently modified by m6A methylation, particularly those genes that regulate cell differentiation as well as muscle growth and development, was observed at all three stages. Moreover, m6A abundance was negatively associated with gene expression levels, indicating that m6A might play a vital role in modulating gene expression during yak muscle development. This comprehensive map thus provides a solid foundation for determining the potential functional role of m6A RNA modification in yak muscle growth.
Insights
This study maps N6-methyladenine (m6A) RNA modifications in yak muscle development. m6A negatively correlates with gene expression, suggesting a key role in muscle growth regulation.
Area of Science:
- Epigenetics
- Molecular Biology
- Animal Science
Background:
- N6-methyladenine (m6A) is a prevalent mRNA epigenetic modification in mammals.
- The m6A transcriptome-wide map and its role in yak muscle development remain uninvestigated.
Purpose of the Study:
- To establish the m6A transcriptome-wide map in yak muscle across different developmental stages.
- To explore the functional implications of m6A modification in yak muscle growth and development.
Main Methods:
- Utilized methylated RNA immunoprecipitation sequencing (MeRIP-Seq) and RNA sequencing (RNA-Seq).
- Analyzed m6A peaks and gene expression in yak fetuses (90-day), 6-month-old, and 3-year-old individuals.
Main Results:
- Identified thousands of m6A peaks (6,278-9,584) enriched in specific RNA regions (stop codon, 3' UTR, long exons) with a UGACA motif.
- Observed a significant negative correlation between m6A peak enrichment and mRNA abundance (r = -0.22 to -0.32, p < 10^-16).
- Found functional enrichment of m6A-modified genes involved in cell differentiation and muscle development.
Conclusions:
- m6A RNA modification plays a significant role in regulating gene expression during yak muscle development.
- This study provides the first comprehensive m6A map in yak muscle, laying groundwork for future functional studies.
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