Functional and structural deficiencies of Gemin5 variants associated with neurological disorders

Author:

Francisco-Velilla Rosario1ORCID,Embarc-Buh Azman1ORCID,del Caño-Ochoa Francisco23ORCID,Abellan Salvador1,Vilar Marçal2ORCID,Alvarez Sara4,Fernandez-Jaen Alberto56ORCID,Kour Sukhleen7,Rajan Deepa S7ORCID,Pandey Udai Bhan7,Ramón-Maiques Santiago23ORCID,Martinez-Salas Encarnacion1ORCID

Affiliation:

1. Centro de Biología Molecular Severo Ochoa (CBMSO), Consejo Superior de Investigaciones Cientificas - Universidad Autónoma de Madrid (CSIC-UAM), Madrid, Spain

2. Instituto de Biomedicina de Valencia (IBV-CSIC), Valencia, Spain

3. Centro de Investigación Biomédica en Red de Enfermedades Raras (CIBERER), Instituto de Salud Carlos III (ISCIII), Madrid, Spain

4. New Integrated Medical Genetics (NIMGENETICS), Madrid, Spain

5. Neuropediatric Department, Hospital Universitario Quirónsalud, Madrid, Spain

6. School of Medicine, Universidad Europea de Madrid, Madrid, Spain

7. Department of Pediatrics, Children’s Hospital of Pittsburgh, University of Pittsburgh Medical Center, Pittsburgh, PA, USA

Abstract

Dysfunction of RNA-binding proteins is often linked to a wide range of human disease, particularly with neurological conditions. Gemin5 is a member of the survival of the motor neurons (SMN) complex, a ribosome-binding protein and a translation reprogramming factor. Recently, pathogenic mutations in Gemin5 have been reported, but the functional consequences of these variants remain elusive. Here, we report functional and structural deficiencies associated with compound heterozygosity variants within the Gemin5 gene found in patients with neurodevelopmental disorders. These clinical variants are located in key domains of Gemin5, the tetratricopeptide repeat (TPR)–like dimerization module and the noncanonical RNA-binding site 1 (RBS1). We show that the TPR-like variants disrupt protein dimerization, whereas the RBS1 variant confers protein instability. All mutants are defective in the interaction with protein networks involved in translation and RNA-driven pathways. Importantly, the TPR-like variants fail to associate with native ribosomes, hampering its involvement in translation control and establishing a functional difference with the wild-type protein. Our study provides insights into the molecular basis of disease associated with malfunction of the Gemin5 protein.

Funder

Spanish Ministerio de Ciencia e Innovación and Fondo Europeo de Desarrollo Regional

Comunidad de Madrid

Fundación Ramón Areces

Publisher

Life Science Alliance, LLC

Subject

Health, Toxicology and Mutagenesis,Plant Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Ecology

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