SMCHD1 is a target for gene activation therapy to treat Prader-Willi syndrome

Prader-Willi syndrome (PWS) is a neurodevelopmental disorder caused by loss of expression from the active paternal allele at an imprinted cluster on chromosome 15. Current treatments address individual symptoms rather than the underlying cause of disease. Because all patients preserve a normal but epigenetically silenced maternal copy of these genes, activation of this copy offers a potential disease-modifying therapy. Here, we investigated the epigenetic regulator SMCHD1. First, we demonstrated that SMCHD1 represses the PWS locus in both mice and humans, supporting its relevance as a therapeutic target. Second, we found that SMCHD1 represses the entire PWS locus in neural lineages, extending its previously known role beyond only part of the cluster. Deleting Smchd1 after early development in vivo activated PWS genes in disease-relevant mouse tissues including hypothalamus and improved phenotypes in a PWS mouse model. Despite broader genome-wide binding, postearly development targeting of SMCHD1 appeared remarkably safe, supporting its potential for gene activation therapy for PWS.

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Publication Details

Journal
Science Advances
Published
2026-10-09
DOI
https://doi.org/10.1126/sciadv.aej5702
Primary Topic
Genetic Syndromes and Imprinting
Type
article
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article

SMCHD1 is a target for gene activation therapy to treat Prader-Willi syndrome

Andrew Keniry, Tamara J Beck, Sarah Kinkel, James M. Murphy et al.
Science Advances
Genetic Syndromes and Imprinting
article

SMCHD1 is a target for gene activation therapy to treat Prader-Willi syndrome

Andrew Keniry, Tamara J Beck, Sarah Kinkel, James M. Murphy, Susanne Theiß, Kelsey A. Breslin, Anna K. Le Fevre, Hannah Kate Vanyai, Quentin A. Gouil, Marnie E. Blewitt, Megan Iminitoff, Merlin Thomas, Caleb Chew, Christian P. Schaaf
article en

Abstract

Prader-Willi syndrome (PWS) is a neurodevelopmental disorder caused by loss of expression from the active paternal allele at an imprinted cluster on chromosome 15. Current treatments address individual symptoms rather than the underlying cause of disease. Because all patients preserve a normal but epigenetically silenced maternal copy of these genes, activation of this copy offers a potential disease-modifying therapy. Here, we investigated the epigenetic regulator SMCHD1. First, we demonstrated that SMCHD1 represses the PWS locus in both mice and humans, supporting its relevance as a therapeutic target. Second, we found that SMCHD1 represses the entire PWS locus in neural lineages, extending its previously known role beyond only part of the cluster. Deleting Smchd1 after early development in vivo activated PWS genes in disease-relevant mouse tissues including hypothalamus and improved phenotypes in a PWS mouse model. Despite broader genome-wide binding, postearly development targeting of SMCHD1 appeared remarkably safe, supporting its potential for gene activation therapy for PWS.

Science AdvancesVol. 12(41)
The University of Melbourne (AU), Walter and Eliza Hall Institute of Medical Research (AU), Heidelberg University (DE), Monash University (AU)
Openalex Percentile: Top 14%
Genetic Syndromes and Imprinting
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