Related Experiment Videos
Tissue-specific and developmentally regulated alternative splicing in mouse skeletal muscle ryanodine receptor mRNA
A Futatsugi1, G Kuwajima, K Mikoshiba
1Shionogi Institute for Medical Science, Osaka, Japan.
Abstract:
The ryanodine receptor is a channel for Ca2+ release from intracellular stores. By PCR analysis, we identified two alternatively spliced regions in mRNA of the mouse skeletal muscle ryanodine receptor (sRyR). The splice variants were characterized by the presence or absence of 15 bp (ASI) and 18 bp (ASII) exons. The exclusion of these exons results in the absence of the regions corresponding to Ala3481-Gln3485 and Val3865-Asn3870, respectively, of rabbit sRyR; these amino acid sequences exist in the modulatory region, where sites for phosphorylation and binding of Ca2+, calmodulin and ATP are postulated to be. We also detected sRyR in brain and heart as well as in skeletal muscle, and the splicing patterns were found to be tissue-specific. Only the ASII-lacking isoform was detected in heart, whereas in other tissues the ASII-containing isoform was predominant. The splicing patterns were also found to change during development. In skeletal muscle, the ASI-containing isoform increased gradually from embryo to adult. The ASII-lacking isoform abruptly increased upon birth, but the ASII-containing isoform increased steadily afterwards. In cerebrum, the ratio of the ASII-containing isoform to the ASII-lacking one increased abruptly during embryonic days 14 and 18. These findings suggest that the alternative splicing of ASI and ASII, by affecting the modulatory region, generates functionally different sRyR isoforms in a tissue-specific and developmentally regulated manner.
Insights
Alternative splicing of the mouse skeletal muscle ryanodine receptor (sRyR) generates distinct isoforms. These sRyR variants, differing in specific exons, are expressed in a tissue-specific and developmentally regulated manner.
Area of Science:
- Molecular Biology
- Neuroscience
- Cardiology
Background:
- The ryanodine receptor (RyR) is a critical intracellular calcium (Ca2+) release channel.
- Skeletal muscle RyR (sRyR) plays a vital role in muscle contraction.
- Understanding sRyR diversity is key to its function.
Purpose of the Study:
- To investigate alternative splicing in mouse sRyR mRNA.
- To characterize sRyR splice variants and their tissue distribution.
- To examine the developmental regulation of sRyR splicing patterns.
Main Methods:
- Polymerase Chain Reaction (PCR) analysis of mouse sRyR mRNA.
- Identification and characterization of alternatively spliced exons (ASI and ASII).
- Analysis of sRyR expression and splicing in skeletal muscle, brain, and heart during development.
Main Results:
- Two alternatively spliced regions (ASI and ASII) were identified in mouse sRyR mRNA.
- Exclusion of ASI and ASII exons affects amino acid sequences in the modulatory region of sRyR.
- sRyR isoforms exhibit tissue-specific expression (heart, skeletal muscle, brain) and developmental regulation.
- Splicing patterns change significantly during embryonic and postnatal development in skeletal muscle and cerebrum.
Conclusions:
- Alternative splicing of ASI and ASII generates functionally distinct sRyR isoforms.
- These isoforms are modulated in a tissue-specific and developmentally regulated fashion.
- Differential splicing impacts the modulatory region of sRyR, influencing its function.