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Structural Variants Create New Topological-Associated Domains and Ectopic Retinal Enhancer-Gene Contact in Dominant Retinitis Pigmentosa
Author(s) -
Suzanne E. de Bruijn,
Alessia Fiorentino,
Diego Ottaviani,
Stephanie Fanucchi,
Uirá Souto Melo,
Julio C. Corral-Serrano,
Timo Mulders,
Michalis Georgiou,
Carlo Rivolta,
Nikolas Pontikos,
Gavin Arno,
Lisa Roberts,
Jacquie Greenberg,
Sílvia Albert,
Christian Gilissen,
Marco Aben,
George Rebello,
Simon Mead,
F. Lucy Raymond,
Jordi Corominas,
Claire E. L. Smith,
Hannie Kremer,
Susan M. Downes,
Graeme Black,
Andrew R. Webster,
Chris F. Inglehearn,
L. Ingeborgh van den Born,
Robert K. Koenekoop,
Michel Michaelides,
Raj Ramesar,
Carel B. Hoyng,
Stefan Mundlos,
Musa M. Mhlanga,
Frans P.M. Cremers,
Michael E. Cheetham,
Susanne Roosing,
Alison J. Hardcastle
Publication year - 2020
Publication title -
the american journal of human genetics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.661
H-Index - 302
eISSN - 1537-6605
pISSN - 0002-9297
DOI - 10.1016/j.ajhg.2020.09.002
Subject(s) - enhancer , retinitis pigmentosa , biology , ectopic expression , genetics , retinal , induced pluripotent stem cell , locus (genetics) , epigenetics , microbiology and biotechnology , gene , gene expression , embryonic stem cell , biochemistry
The cause of autosomal-dominant retinitis pigmentosa (adRP), which leads to loss of vision and blindness, was investigated in families lacking a molecular diagnosis. A refined locus for adRP on Chr17q22 (RP17) was delineated through genotyping and genome sequencing, leading to the identification of structural variants (SVs) that segregate with disease. Eight different complex SVs were characterized in 22 adRP-affected families with >300 affected individuals. All RP17 SVs had breakpoints within a genomic region spanning YPEL2 to LINC01476. To investigate the mechanism of disease, we reprogrammed fibroblasts from affected individuals and controls into induced pluripotent stem cells (iPSCs) and differentiated them into photoreceptor precursor cells (PPCs) or retinal organoids (ROs). Hi-C was performed on ROs, and differential expression of regional genes and a retinal enhancer RNA at this locus was assessed by qPCR. The epigenetic landscape of the region, and Hi-C RO data, showed that YPEL2 sits within its own topologically associating domain (TAD), rich in enhancers with binding sites for retinal transcription factors. The Hi-C map of RP17 ROs revealed creation of a neo-TAD with ectopic contacts between GDPD1 and retinal enhancers, and modeling of all RP17 SVs was consistent with neo-TADs leading to ectopic retinal-specific enhancer-GDPD1 accessibility. qPCR confirmed increased expression of GDPD1 and increased expression of the retinal enhancer that enters the neo-TAD. Altered TAD structure resulting in increased retinal expression of GDPD1 is the likely convergent mechanism of disease, consistent with a dominant gain of function. Our study highlights the importance of SVs as a genomic mechanism in unsolved Mendelian diseases.

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