Complementation of a pathogenic IFNGR2 misfolding mutation with modifiers of N-glycosylation

Author:

Vogt Guillaume12,Bustamante Jacinta12,Chapgier Ariane12,Feinberg Jacqueline12,Boisson Dupuis Stephanie12,Picard Capucine123,Mahlaoui Nizar4,Gineau Laure12,Alcaïs Alexandre12,Lamaze Christophe5,Puck Jennifer M.6,de Saint Basile Geneviève7,Khayat Claudia Djambas8,Mikhael Raymond8,Casanova Jean-Laurent124

Affiliation:

1. Laboratory of Human Genetics of Infectious Diseases, U550, Institut National de la Santé et de la Recherche Médicale (INSERM), 75015 Paris, France

2. University Paris René Descartes, Necker Medical School, 75015 Paris, France

3. Study Center of Primary Immunodeficiencies, APHP,

4. Pediatric Immunology-Hematology Unit, Necker Hospital, 75015 Paris, France

5. Trafic, Signaling and Delivery Laboratory, UMR144 Curie Centre National de la Recherche Scientifique, Institut Curie, 75005 Paris, France

6. Department of Pediatrics, University of California, San Francisco, San Francisco, CA 94143

7. Laboratory of Normal and Pathological Development of the Immune System, U768, INSERM, Necker-Enfants Malades Hospital, 75015 Paris, France

8. Department of Pediatrics, Hotel Dieu de France Hospital, 90262 Beirut, Lebanon

Abstract

Germline mutations may cause human disease by various mechanisms. Missense and other in-frame mutations may be deleterious because the mutant proteins are not correctly targeted, do not function correctly, or both. We studied a child with mycobacterial disease caused by homozygosity for a novel in-frame microinsertion in IFNGR2. In cells transfected with the mutant allele, most of the interferon γ receptor 2 (IFN-γR2) protein was retained within the cell, and that expressed on the cell surface had an abnormally high molecular weight (MW). The misfolding mutation was not gain-of-glycosylation, as it created no new N-glycosylation site. The mutant IFNGR2 allele was null, as the patient's cells did not respond to IFN-γ. Based on the well-established relationship between protein N-glycosylation and protein quality control processes, we tested 29 compounds affecting maturation by N-glycosylation in the secretory pathway. Remarkably, up to 13 of these compounds reduced the MW of surface-expressed mutant IFN-γR2 molecules and restored cellular responsiveness to IFN-γ. Modifiers of N-glycosylation may therefore complement human cells carrying in-frame and misfolding, but not necessarily gain-of-glycosylation, mutations in genes encoding proteins subject to trafficking via the secretory pathway. Some of these compounds are available for clinical use, paving the way for clinical trials of chemical complementation for various human genetic traits.

Publisher

Rockefeller University Press

Subject

Immunology,Immunology and Allergy

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