TY - JOUR
T1 - RBM20 isoform regulation by independent transcription start sites adapts alternative splicing in development and disease
AU - Radke, Michael H.
AU - Badillo Lisakowski, Victor
AU - Meinke, Stefan
AU - Britto-Borges, Thiago
AU - Schneider-Lunitz, Valentin
AU - Hummel, Oliver
AU - van Heesch, Sebastiaan
AU - Ruiz Orera, Jorge
AU - Hubner, Norbert
AU - Granzier, Henk
AU - Dieterich, Christoph
AU - Gotthardt, Michael
N1 - © 2026. The Author(s).
PY - 2026/5/23
Y1 - 2026/5/23
N2 - RBM20 is a cardiac splicing regulator whose dysfunction causes severe cardiomyopathies. Here, we uncover an unexpected layer of RBM20 regulation through a previously unrecognized transcription start site located between the canonical exon 1 and exon 2. This alternative transcription start site generates a shorter, functional RBM20 isoform translated from an internal ATG in exon 2—identified as the predominant translation start site by ribosome profiling. Despite lacking exon 1, the isoform maintains splicing activity and is conserved across mouse, rat, and human. Strikingly, isoform ratios are tightly controlled during the perinatal period but are selectively altered in disease: in hypertrophic-, unlike in dilated cardiomyopathy, upregulation of RBM20 is driven largely by the alternative isoform. Our findings reveal disease and isoform-specific regulation as a second axis of RBM20 control, operating alongside phosphorylation-dependent nuclear localization, with broad implications for developmental splicing programs, cardiac remodeling, and targeted therapeutic strategies.
AB - RBM20 is a cardiac splicing regulator whose dysfunction causes severe cardiomyopathies. Here, we uncover an unexpected layer of RBM20 regulation through a previously unrecognized transcription start site located between the canonical exon 1 and exon 2. This alternative transcription start site generates a shorter, functional RBM20 isoform translated from an internal ATG in exon 2—identified as the predominant translation start site by ribosome profiling. Despite lacking exon 1, the isoform maintains splicing activity and is conserved across mouse, rat, and human. Strikingly, isoform ratios are tightly controlled during the perinatal period but are selectively altered in disease: in hypertrophic-, unlike in dilated cardiomyopathy, upregulation of RBM20 is driven largely by the alternative isoform. Our findings reveal disease and isoform-specific regulation as a second axis of RBM20 control, operating alongside phosphorylation-dependent nuclear localization, with broad implications for developmental splicing programs, cardiac remodeling, and targeted therapeutic strategies.
KW - Alternative Splicing/genetics
KW - Animals
KW - Myocardium/metabolism
KW - Gene Expression Regulation, Developmental
KW - Humans
KW - Transcription Initiation Site
KW - Rats
KW - Protein Isoforms/genetics
KW - RNA-Binding Proteins/genetics
KW - Mice
KW - Exons/genetics
KW - Cardiomyopathy, Dilated/genetics
UR - https://www.scopus.com/pages/publications/105039915548
UR - https://www.mendeley.com/catalogue/661ab594-c9d8-3447-9c61-9ee6c7a17baa/
U2 - 10.1038/s41467-026-73230-w
DO - 10.1038/s41467-026-73230-w
M3 - Article
C2 - 42177204
AN - SCOPUS:105039915548
SN - 2041-1723
VL - 17
JO - Nature communications
JF - Nature communications
IS - 1
M1 - 4607
ER -