Genome-wide characterisation of the myosin light chain gene family in Chinese perch (Siniperca chuatsi) and its expression patterns in muscle fibre types and injury response
- Comp Biochem Physiol Part D Genomics Proteomics. 2026 Jun 9:60:101899. doi: 10.1016/j.cbd.2026.101899.
- 1. College of Biological and Chemical Engineering, Changsha University, Changsha, 410022, China.
- 2. College of Biological and Chemical Engineering, Changsha University, Changsha, 410022, China; Hunan Engineering Technology Research Center for Amphibian and Reptile Resource Protection and Product Processing, Changsha, 410022, China.
- 3. College of Biological and Chemical Engineering, Changsha University, Changsha, 410022, China; Hunan Engineering Technology Research Center for Amphibian and Reptile Resource Protection and Product Processing, Changsha, 410022, China. Electronic address: [email protected].
The Class II Myosin light chain (myl) genes in Chinese perch (Siniperca chuatsi) have not yet been systematically characterised, and relationships with muscle fibre specification, development, and injury-associated remodelling remain unclear. In this study, fast and slow muscle fibres were initially distinguished using myofibrillar ATPase histochemistry. Subsequently, genome-wide mining identified 16 Class II myl genes, comprising eight essential and eight regulatory light-chain subunits. Their conserved-domain features, chromosomal distribution, phylogenetic relationships and expression profiles were analysed. Transcriptomic profiling showed that summed myl transcript abundance was higher in fast muscle than in slow muscle, accounting for 67.2% of the pooled myl transcript pool across the two muscle types (paired t-test, raw P = 0.036). mylpfa, myl1 and mylz3 were the major fast-muscle-associated genes, whereas myl10, myl2b and myl13 were preferentially expressed in slow muscle at the transcript level. These patterns support these genes as candidate fibre-type-associated expression markers. Developmental profiling identified stage-associated myl expression patterns, including a possible expression shift between mylpfb and mylpfa. In the descriptive injury-repair time course (d0-d7), FPKM profiles indicated that fast-muscle-associated genes (mylpfa, mylz3 and myl1) were lower at d1 and recovered by d3, whereas several slow-muscle-associated genes showed biphasic transcript-level increases. The slow-muscle-associated RLC gene mylpfb showed a delayed expression peak at d7. Notably, the embryonic isoform myl6l showed a modest increase from approximately 2 FPKM at d0 to 4-5 FPKM after injury, suggesting a possible injury-associated expression pattern that requires further validation. Together, these findings provide a genome-wide description of the Chinese perch myl gene family and identify candidate fibre-type-associated genes and descriptive injury-associated isoform expression patterns.
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Cat. No.Product NameDescriptionTargetResearch Area
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target: ApoptosisResearch Areas: Cardiovascular Disease