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Updated: Dec 30, 2025

A Reporter Based Cellular Assay for Monitoring Splicing Efficiency
Published on: September 15, 2021
scaRNA1 Levels Alter Pseudouridylation in Spliceosomal RNA U2 Affecting Alternative mRNA Splicing and Embryonic
Chloe K Nagasawa1, Nataliya Kibiryeva2, Jennifer Marshall2
1Kansas City University of Medicine and Biosciences, Kansas City, MO, USA.
Abstract:
The heart is the first major organ to develop during embryogenesis and must receive proper spatiotemporal signaling for proper development. Failure of proper signaling between the first and second heart fields at twenty days gestation contributes to the generation of a congenital heart defect. The most common cyanotic congenital heart defect is tetralogy of Fallot (TOF) which requires surgical intervention in the first year of life. In right ventricular tissue of infants born with TOF, the levels of scaRNA1 are reduced and mRNA splicing is dysregulated. In this study, we investigate a method of quantifying pseudouridylation levels in relation to scaRNA1 levels in spliceosomal RNA U2 in three different groups of samples: right ventricular (RV) tissue of infants born with TOF versus RV tissue from normally developing infants, scaRNA1 knockdown in primary normal cardiomyocytes derived from normally developing infants, and scaRNA1 overexpression in primary cells derived from RV tissue from infants born with TOF. We hypothesize that the amount of pseudouridylation is dependent on scaRNA1 level, compromising spliceosomal function and therefore, contributing to the generation of a congenital heart defect. Our results revealed a statistically significant decrease of pseudouridylation levels in the right ventricular tissue of infants born with TOF compared to the controls. Knocking down the scaRNA1 levels in normal primary cardiomyocytes resulted in a statistically significant decrease of pseudouridylation. Finally, an overexpression of scaRNA1 in TOF primary cells resulted in an increase in pseudouridylation levels, but it did not achieve statistical significance. Our previous research provided an association between scaRNA levels, alternative splicing, and development. Here, we demonstrate that pseudouridylation levels in spliceosomal RNA U2 is dependent on the expression level of scaRNA1. Although further investigation is needed, we believe that scaRNA expression regulates biochemical modifications to spliceosomal RNAs, adjusting the fidelity of the spliceosome, allowing for controlled alternative splicing of mRNA that is important in embryonic development. If validated, this is an underappreciated mechanism that is critical for regulating proper embryonic development.
Insights
Reduced scaRNA1 levels in tetralogy of Fallot (TOF) infants correlate with lower pseudouridylation in spliceosomal RNA U2. This suggests scaRNA1 regulates RNA modifications crucial for heart development.
Area of Science:
- Developmental Biology
- Molecular Biology
- Genetics
Background:
- Congenital heart defects, like tetralogy of Fallot (TOF), arise from disrupted embryonic signaling.
- In TOF, reduced scaRNA1 and dysregulated mRNA splicing are observed in infant right ventricular tissue.
Purpose of the Study:
- To investigate the relationship between scaRNA1 levels and pseudouridylation in spliceosomal RNA U2.
- To determine if scaRNA1 influences pseudouridylation and contributes to congenital heart defects.
Main Methods:
- Quantified pseudouridylation levels in spliceosomal RNA U2 across three groups: TOF infant RV tissue, normal infant RV tissue, and in vitro models.
- Manipulated scaRNA1 levels via knockdown in normal cardiomyocytes and overexpression in TOF-derived cells.
Main Results:
- A significant decrease in pseudouridylation was found in RV tissue from TOF infants compared to controls.
- Knocking down scaRNA1 in normal cardiomyocytes led to a significant reduction in pseudouridylation.
- Overexpressing scaRNA1 in TOF cells increased pseudouridylation, though not to a statistically significant level.
Conclusions:
- Pseudouridylation levels in spliceosomal RNA U2 are dependent on scaRNA1 expression.
- scaRNA1 may regulate spliceosomal RNA modifications, impacting mRNA splicing fidelity during embryonic development.
- This highlights a potential underappreciated mechanism critical for proper heart formation.
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