A genetic variant alters the secondary structure of the lncRNA H19 and is associated with dilated cardiomyopathy
- RNA Biol. 2021 Oct 15;18(sup1):409-415. doi: 10.1080/15476286.2021.1952756.
- 1. Department of Genetic Epidemiology, Institute of Human Genetics, University of Münster, Münster, Germany.
- 2. German Centre for Cardiovascular Research (DZHK), Partner Site Heidelberg/Mannheim, Heidelberg, Germany.
- 3. Department of Cardiology, Heidelberg University, Heidelberg, Germany.
- 4. Genome Technology Center Stanford, Department of Genetics, Stanford University, Stanford, United States.
- 5. Centre for Inherited Cardiovascular Diseases, IRCCS Foundation, University Hospital Policlinico San Matteo, Pavia, Italy.
- 6. Department of Cardiology and Pneumology, University Medical Center Göttingen, Göttingen, Germany.
- 7. German Center for Cardiovascular Research (DZHK), Partner Site, Göttingen, Germany.
- 8. Department of Cardiology, University Hospital, LMU Munich, Munich, Germany.
- 9. German Centre for Cardiovascular Research (DZHK), Partner Site: Munich Heart Alliance, Munich, Germany.
- 10. Department of Cardiology, University Hospital Giessen and Marburg, Marburg, Germany.
- 11. Comprehensive Heart Failure Center, University Hospital and University of Würzburg, Würzburg, Germany.
- 12. Institute for Evolution and Biodiversity, University of Münster, Münster, Germany.
- 13. Department of Biochemistry, Genetic Epidemiology and Statistical Genetics, CARIM School for Cardiovascular Diseases, Maastricht Center for Systems Biology (MaCSBio), Maastricht University, Maastricht, The Netherlands.
lncRNAs are at the core of many regulatory processes and have also been recognized to be involved in various complex diseases. They affect gene regulation through direct interactions with RNA, DNA or proteins. Accordingly, lncRNA structure is likely to be essential for their regulatory function. Point mutations, which manifest as SNPs (single nucleotide polymorphisms) in genome screens, can substantially alter their function and, subsequently, the expression of their downstream regulated genes. To test the effect of SNPs on structure, we investigated lncRNAs associated with dilated Cardiomyopathy. Among 322 human candidate lncRNAs, we demonstrate first the significant association of an SNP located in lncRNA H19 using data from 1084 diseased and 751 control patients. H19 is generally highly expressed in the heart, with a complex expression pattern during heart development. Next, we used MFE (minimum free energy) folding to demonstrate a significant refolding in the secondary structure of this 861 nt long lncRNA. Since MFE folding may overlook the importance of sub-optimal structures, we showed that this refolding also manifests in the overall Boltzmann structure ensemble. There, the composition of structures is tremendously affected in their thermodynamic probabilities through the genetic variant. Finally, we confirmed these results experimentally, using SHAPE-Seq, corroborating that SNPs affecting such structures may explain hidden genetic variance not accounted for through genome wide association studies. Our results suggest that structural changes in lncRNAs, and lncRNA H19 in particular, affect regulatory processes and represent optimal targets for further in-depth studies probing their molecular interactions.