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Published in: Pediatric Cardiology 2/2020

01-02-2020 | Tetralogy of Fallot | Original Article

scaRNA1 Levels Alter Pseudouridylation in Spliceosomal RNA U2 Affecting Alternative mRNA Splicing and Embryonic Development

Authors: Chloe K. Nagasawa, Nataliya Kibiryeva, Jennifer Marshall, James E. O’Brien Jr., Douglas C. Bittel

Published in: Pediatric Cardiology | Issue 2/2020

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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.
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Literature
1.
go back to reference Sun C, Kontaridis MI (2018) Physiology of cardiac development: from genetics to signaling to therapeutic strategies. Curr Opin Physiol 1:123–139CrossRef Sun C, Kontaridis MI (2018) Physiology of cardiac development: from genetics to signaling to therapeutic strategies. Curr Opin Physiol 1:123–139CrossRef
2.
go back to reference Carlson BM (2014) Human embryology and developmental biology, 5th edn. Elsevier Saunders, Philadelphia Carlson BM (2014) Human embryology and developmental biology, 5th edn. Elsevier Saunders, Philadelphia
3.
go back to reference Chong JJ, Forte E, Harvey RP (2014) Developmental origins and lineage descendants of endogenous adult cardiac progenitor cells. Stem Cell Res 13(3 Pt B):592–614CrossRef Chong JJ, Forte E, Harvey RP (2014) Developmental origins and lineage descendants of endogenous adult cardiac progenitor cells. Stem Cell Res 13(3 Pt B):592–614CrossRef
4.
go back to reference van der Linde D, Konings EE, Slager MA, Witsenburg M, Helbing WA, Takkenberg JJ et al (2011) Birth prevalence of congenital heart disease worldwide: a systematic review and meta-analysis. J Am Coll Cardiol 58(21):2241–2247CrossRef van der Linde D, Konings EE, Slager MA, Witsenburg M, Helbing WA, Takkenberg JJ et al (2011) Birth prevalence of congenital heart disease worldwide: a systematic review and meta-analysis. J Am Coll Cardiol 58(21):2241–2247CrossRef
5.
go back to reference Fahed AC, Gelb BD, Seidman JG, Seidman CE (2013) Genetics of congenital heart disease: the glass half empty. Circ Res 112(4):707–720CrossRef Fahed AC, Gelb BD, Seidman JG, Seidman CE (2013) Genetics of congenital heart disease: the glass half empty. Circ Res 112(4):707–720CrossRef
6.
go back to reference O'Brien JE Jr, Kibiryeva N, Zhou XG, Marshall JA, Lofland GK, Artman M et al (2012) Noncoding RNA expression in myocardium from infants with tetralogy of Fallot. Circ Cardiovasc Genet 5(3):279–286CrossRef O'Brien JE Jr, Kibiryeva N, Zhou XG, Marshall JA, Lofland GK, Artman M et al (2012) Noncoding RNA expression in myocardium from infants with tetralogy of Fallot. Circ Cardiovasc Genet 5(3):279–286CrossRef
7.
go back to reference Cao T, Rajasingh S, Samanta S, Dawn B, Bittel DC, Rajasingh J (2018) Biology and clinical relevance of noncoding sno/scaRNAs. Trends Cardiovasc Med 28(2):81–90CrossRef Cao T, Rajasingh S, Samanta S, Dawn B, Bittel DC, Rajasingh J (2018) Biology and clinical relevance of noncoding sno/scaRNAs. Trends Cardiovasc Med 28(2):81–90CrossRef
8.
go back to reference Hoeppner MP, White S, Jeffares DC, Poole AM (2009) Evolutionarily stable association of intronic snoRNAs and microRNAs with their host genes. Genome Biol Evol 1:420–428CrossRef Hoeppner MP, White S, Jeffares DC, Poole AM (2009) Evolutionarily stable association of intronic snoRNAs and microRNAs with their host genes. Genome Biol Evol 1:420–428CrossRef
9.
go back to reference Adachi H, Yu YT (2014) Insight into the mechanisms and functions of spliceosomal snRNA pseudouridylation. World J Biol Chem 5(4):398–408CrossRef Adachi H, Yu YT (2014) Insight into the mechanisms and functions of spliceosomal snRNA pseudouridylation. World J Biol Chem 5(4):398–408CrossRef
10.
go back to reference Patil P, Kibiryeva N, Uechi T, Marshall J, O'Brien JE Jr, Artman M et al (1852) (2015) scaRNAs regulate splicing and vertebrate heart development. Biochim Biophys Acta 8:1619–1629 Patil P, Kibiryeva N, Uechi T, Marshall J, O'Brien JE Jr, Artman M et al (1852) (2015) scaRNAs regulate splicing and vertebrate heart development. Biochim Biophys Acta 8:1619–1629
11.
go back to reference Antonicka H, Choquet K, Lin ZY, Gingras AC, Kleinman CL, Shoubridge EA (2017) A pseudouridine synthase module is essential for mitochondrial protein synthesis and cell viability. EMBO Rep 18(1):28–38CrossRef Antonicka H, Choquet K, Lin ZY, Gingras AC, Kleinman CL, Shoubridge EA (2017) A pseudouridine synthase module is essential for mitochondrial protein synthesis and cell viability. EMBO Rep 18(1):28–38CrossRef
12.
go back to reference Nachar N (2008) The Mann–Whitney U: a test for assessing whether two independent samples come from the same distribution. Tutor Quant Mehods Psychol 4(1):13–20CrossRef Nachar N (2008) The Mann–Whitney U: a test for assessing whether two independent samples come from the same distribution. Tutor Quant Mehods Psychol 4(1):13–20CrossRef
13.
go back to reference Milenovic ZM (2011) Application of Mann–Whitney U test in research of professional traning of primary school teachers. Metodicki obzori 6(1):73–79 Milenovic ZM (2011) Application of Mann–Whitney U test in research of professional traning of primary school teachers. Metodicki obzori 6(1):73–79
Metadata
Title
scaRNA1 Levels Alter Pseudouridylation in Spliceosomal RNA U2 Affecting Alternative mRNA Splicing and Embryonic Development
Authors
Chloe K. Nagasawa
Nataliya Kibiryeva
Jennifer Marshall
James E. O’Brien Jr.
Douglas C. Bittel
Publication date
01-02-2020
Publisher
Springer US
Published in
Pediatric Cardiology / Issue 2/2020
Print ISSN: 0172-0643
Electronic ISSN: 1432-1971
DOI
https://doi.org/10.1007/s00246-019-02263-4

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