A neurodevelopmental disorder associated with an activating de novo missense variant in ARF1

Author:

Ishida Morié1,Otero María G2,Freeman Christina2,Sánchez-Lara Pedro A3,Guardia Carlos M45,Pierson Tyler Mark2678ORCID,Bonifacino Juan S1

Affiliation:

1. Eunice Kennedy Shiver National Institute of Child Health and Human Development, National Institutes of Health Neurosciences and Cellular and Structural Biology Division, , Bethesda, MD 20892 , USA

2. Cedars-Sinai Medical Center Board of Governors Regenerative Medicine Institute, , Los Angeles, CA 90048 , USA

3. Cedars-Sinai Medical Center Division of Medical Genetics, Department of Pediatrics, , Los Angeles, CA 90048 , USA

4. Eunice Kennedy Shiver National Institute of Child Health and Human Development Neurosciences and Cellular and Structural Biology Division, , National Institutes of Health, Bethesda, MD 20892 , USA

5. National Institute of Environmental Health Sciences, National Institutes of Health Reproductive and Developmental Biology Laboratory, , Research Triangle Park, NC 27703 , USA

6. Cedars-Sinai Medical Center Division of Pediatric Neurology, Department of Pediatrics, , Los Angeles, CA 90048 , USA

7. Cedars-Sinai Medical Center Department of Neurology, , Los Angeles, CA 90048 , USA

8. Cedars-Sinai Medical Center Center for the Undiagnosed Patient, , Los Angeles, CA 90048 , USA

Abstract

Abstract ADP-ribosylation factor 1 (ARF1) is a small GTPase that regulates membrane traffic at the Golgi apparatus and endosomes through recruitment of several coat proteins and lipid-modifying enzymes. Here, we report a pediatric patient with an ARF1-related disorder because of a monoallelic de novo missense variant (c.296 G > A; p.R99H) in the ARF1 gene, associated with developmental delay, hypotonia, intellectual disability and motor stereotypies. Neuroimaging revealed a hypoplastic corpus callosum and subcortical white matter abnormalities. Notably, this patient did not exhibit periventricular heterotopias previously observed in other patients with ARF1 variants (including p.R99H). Functional analysis of the R99H-ARF1 variant protein revealed that it was expressed at normal levels and properly localized to the Golgi apparatus; however, the expression of this variant caused swelling of the Golgi apparatus, increased the recruitment of coat proteins such as coat protein complex I, adaptor protein complex 1 and GGA3 and altered the morphology of recycling endosomes. In addition, we observed that the expression of R99H-ARF1 prevented dispersal of the Golgi apparatus by the ARF1-inhibitor brefeldin A. Finally, protein interaction analyses showed that R99H-ARF1 bound more tightly to the ARF1-effector GGA3 relative to wild-type ARF1. These properties were similar to those of the well-characterized constitutively active Q71L-ARF1 mutant, indicating that the pathogenetic mechanism of the R99H-ARF1 variant involves constitutive activation with resultant Golgi and endosomal alterations. The absence of periventricular nodular heterotopias in this R99H-ARF1 subject also indicates that this finding may not be a consistent phenotypic expression of all ARF1-related disorders.

Funder

Cedars-Sinai institutional funding program

Cedars-Sinai Diana and Steve Marienhoff Fashion Industries Guild Endowed Fellowship in Pediatric Neuromuscular Diseases

Fashion Industries Guild Endowed Fellowship for the Undiagnosed Diseases Program

National Institute of Environmental Health Sciences

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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