AGAP1-associated endolysosomal trafficking abnormalities link gene–environment interactions in neurodevelopmental disorders

Author:

Lewis Sara A.12ORCID,Bakhtiari Somayeh12,Forstrom Jacob12,Bayat Allan345ORCID,Bilan Frédéric67ORCID,Le Guyader Gwenaël67,Alkhunaizi Ebba89ORCID,Vernon Hilary10ORCID,Padilla-Lopez Sergio R.12,Kruer Michael C.1211ORCID

Affiliation:

1. Barrow Neurological Institute, Phoenix Children's Hospital 1 Pediatric Movement Disorders Program , , Phoenix, AZ 85016 , USA

2. University of Arizona College of Medicine Phoenix 2 Departments of Child Health, Neurology, Genetics and Cellular & Molecular Medicine , , Phoenix, AZ 85004 , USA

3. Institute for Regional Health Services 3 , , 5230 Odense , Denmark

4. University of Southern Denmark 3 , , 5230 Odense , Denmark

5. Danish Epilepsy Center 4 Department of Epilepsy Genetics and Personalized Medicine , , 4293 Dianalund , Denmark

6. Service de Génétique, CHU de Poitiers 5 , 86000 Poitiers , France

7. INSERM U1084 6 Laboratoire de Neurosciences Experimentales et Cliniques , , 86000 Poitiers , France

8. North York General Hospital 7 Department of Medical Genetics , , Toronto, ON M3J0K2 , Canada

9. The Hospital for Sick Children, University of Toronto 8 Division of Clinical and Metabolic Genetics, Department of Pediatrics , , Toronto, ON M3J0K2 , Canada

10. Johns Hopkins University 9 Department of Genetic Medicine , , Baltimore, MD , USA

11. Arizona State University 10 Programs in Neuroscience, Molecular & Cellular Biology, and Biomedical Informatics , , Tempe, AZ 85287 , USA

Abstract

ABSTRACT AGAP1 is an Arf1 GTPase-activating protein that regulates endolysosomal trafficking. Damaging variants have been linked to cerebral palsy and autism. We report three new cases in which individuals had microdeletion variants in AGAP1. The affected individuals had intellectual disability (3/3), autism (3/3), dystonia with axial hypotonia (1/3), abnormalities of brain maturation (1/3), growth impairment (2/3) and facial dysmorphism (2/3). We investigated mechanisms potentially underlying AGAP1 variant-mediated neurodevelopmental impairments using the Drosophila ortholog CenG1a. We discovered reduced axon terminal size, increased neuronal endosome abundance and elevated autophagy compared to those in controls. Given potential incomplete penetrance, we assessed gene–environment interactions. We found basal elevation in the phosphorylation of the integrated stress-response protein eIF2α (or eIF2A) and inability to further increase eIF2α phosphorylation with subsequent cytotoxic stressors. CenG1a-mutant flies had increased lethality from exposure to environmental insults. We propose a model wherein disruption of AGAP1 function impairs endolysosomal trafficking, chronically activating the integrated stress response and leaving AGAP1-deficient cells susceptible to a variety of second-hit cytotoxic stressors. This model may have broader applicability beyond AGAP1 in instances where both genetic and environmental insults co-occur in individuals with neurodevelopmental disorders.

Funder

National Institutes of Health

Publisher

The Company of Biologists

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology and Microbiology (miscellaneous),Medicine (miscellaneous),Neuroscience (miscellaneous)

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