Rare variants in <i>BMAL1</i> are associated with a neurodevelopmental syndrome

V Vishnu Anand Cuddapah (Jan and Dan Duncan Neurological Research Institute, Texas Children’s Hospital) D Dechun Chen (HHMI, University of Pennsylvania) B Bumsik Cho R Rebecca Moore (HHMI, University of Pennsylvania) M Mohnish Suri (Nottingham Clinical Genetics Service, Nottingham University Hospitals National Health Service Trust) H Hana Safraou (Laboratoire de Génomique médicale, Centre Hospitalier Universitaire Dijon-Bourgogne) F Frederic Tran-Mau-Them (Laboratoire de Génomique médicale, Centre Hospitalier Universitaire Dijon-Bourgogne) A Ashley Wilson (New York Genome Center) J Jacqueline Odgis (Icahn School of Medicine at Mount Sinai) A Atteeq U. Rehman (New York Genome Center) C Carol Saunders (Department of Pathology and Laboratory Medicine, Children’s Mercy–Kansas City and Departments of Pediatrics and Pathology, University of Missouri-Kansas City School of Medicine) S Shiva Ganesan (Division of Neurology, The Epilepsy NeuroGenetics Initiative, Department of Biomedical and Health Informatics, Children’s Hospital of Philadelphia) V Vaidehi Jobanputra (New York Genome Center) S Stephen W. Scherer I Ingo Helbig A Amita Sehgal

Abstract

Through international gene-matching efforts, we identified 10 individuals with ultrarare heterozygous variants, including 5 de novo variants, in BMAL1 , a core component of the molecular clock. Instead of an isolated circadian phenotype seen with disease-causing variants in other molecular clock genes, all individuals carrying BMAL1 variants surprisingly share a clinical syndrome manifest as developmental delay and autism spectrum disorder, with variably penetrant sleep disturbances, seizures, and marfanoid habitus. Variants were functionally tested in cultured cells using a Per2 -promoter driven luciferase reporter and revealed both loss-of-function and gain-of-function changes in circadian rhythms. The tested BMAL1 variants disrupted PER2 mRNA cycling, but did not cause significant shifts in cellular localization or binding with CLOCK. Conserved variants were further tested in Drosophila , which confirmed variant-dependent effects on behavioral rhythms. Remarkably, flies expressing variant cycle , the ortholog of BMAL1 , also demonstrated deficits in short- and long-term memory, reminiscent of the highly prevalent developmental delay observed in our cohort. We suggest that ultrarare variants in the BMAL1 core clock gene contribute to a neurodevelopmental disorder.

Article Details

Volume / Issue Vol. 122, Issue 31
Published August 05, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (16)

V

Vishnu Anand Cuddapah

Jan and Dan Duncan Neurological Research Institute, Texas Children’s Hospital

D

Dechun Chen

HHMI, University of Pennsylvania

B

Bumsik Cho

R

Rebecca Moore

HHMI, University of Pennsylvania

M

Mohnish Suri

Nottingham Clinical Genetics Service, Nottingham University Hospitals National Health Service Trust

H

Hana Safraou

Laboratoire de Génomique médicale, Centre Hospitalier Universitaire Dijon-Bourgogne

F

Frederic Tran-Mau-Them

Laboratoire de Génomique médicale, Centre Hospitalier Universitaire Dijon-Bourgogne

A

Ashley Wilson

New York Genome Center

J

Jacqueline Odgis

Icahn School of Medicine at Mount Sinai

A

Atteeq U. Rehman

New York Genome Center

C

Carol Saunders

Department of Pathology and Laboratory Medicine, Children’s Mercy–Kansas City and Departments of Pediatrics and Pathology, University of Missouri-Kansas City School of Medicine

S

Shiva Ganesan

Division of Neurology, The Epilepsy NeuroGenetics Initiative, Department of Biomedical and Health Informatics, Children’s Hospital of Philadelphia

V

Vaidehi Jobanputra

New York Genome Center

S

Stephen W. Scherer

I

Ingo Helbig

A

Amita Sehgal