Related Experiment Video
Updated: Aug 14, 2026

Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
Neurovascular Involvement in Arterial Tortuosity Syndrome Associated with a Homozygous SLC2A10 p.(Trp162Ter) Variant:
Serdar Bozlak1,2, Cuneyd Yavas1, Evrim Yalcin1
1Department of Molecular Biology and Genetics, Faculty of Engineering and Natural Sciences, Biruni University, Istanbul 34015, Turkey.
Abstract:
Arterial Tortuosity Syndrome (ATS) is a rare autosomal recessive connective tissue disorder caused by pathogenic variants in SLC2A10, which encodes the facilitative glucose transporter GLUT10. Although its vascular features are well recognized, the molecular consequences of many truncating variants remain poorly understood. We report a patient with ATS carrying a homozygous nonsense variant, c.485G > A (p.Trp162Ter), identified by whole-exome sequencing. Quantitative real-time PCR assessed SLC2A10 expression, and integrated bioinformatic analyses (structural modeling, druggability prediction, transmembrane topology, molecular docking, and molecular dynamics) explored its structural impact. The patient presented with severe systemic arterial tortuosity, congenital cardiovascular anomalies, hernias, connective tissue abnormalities, and neurovascular involvement involving cerebral tortuosity and distal intracranial narrowing. Structural modeling revealed extensive truncation of GLUT10 and loss of multiple α-helical domains, with transmembrane helices reduced from twelve to five. Docking of nine known ligands showed weaker binding to the mutant, and Compound 892 bound most strongly to the wild type (-7.469 kcal/mol). Across 300 ns simulations, the mutant complex proved markedly less stable. qRT-PCR showed no significant transcript differences among patient, carriers, and controls. Our findings broaden the neurovascular spectrum of SLC2A10-related ATS and demonstrate that p.(Trp162Ter) severely disrupts GLUT10 architecture, topology, and ligand binding.

