The glucuronyltransferase B4GAT1 is required for initiation of LARGE-mediated α-dystroglycan functional glycosylation

Author:

Willer Tobias1234,Inamori Kei-ichiro12345,Venzke David1234,Harvey Corinne1234,Morgensen Greg1234,Hara Yuji12346,Beltrán Valero de Bernabé Daniel1234,Yu Liping7,Wright Kevin M8,Campbell Kevin P1234

Affiliation:

1. Department of Molecular Physiology and Biophysics, University of Iowa, Carver College of Medicine, Iowa City, United States

2. Department of Neurology, University of Iowa, Carver College of Medicine, Iowa City, United States

3. Department of Internal Medicine, University of Iowa, Carver College of Medicine, Iowa City, United States

4. Howard Hughes Medical Institute, University of Iowa, Carver College of Medicine, Iowa City, United States

5. Division of Glycopathology, Institute of Molecular Biomembrane and Glycobiology, Tohoku Pharmaceutical University, Komatsushima, Japan

6. Department of Synthetic Chemistry and Biological Chemistry, Graduate School of Engineering, Kyoto University, Kyoto, Japan

7. Medical Nuclear Magnetic Resonance Facility, University of Iowa, Carver College of Medicine, Iowa City, United States

8. Vollum Institute, Oregon Health and Science University, Portland, United States

Abstract

Dystroglycan is a cell membrane receptor that organizes the basement membrane by binding ligands in the extracellular matrix. Proper glycosylation of the α-dystroglycan (α-DG) subunit is essential for these activities, and lack thereof results in neuromuscular disease. Currently, neither the glycan synthesis pathway nor the roles of many known or putative glycosyltransferases that are essential for this process are well understood. Here we show that FKRP, FKTN, TMEM5 and B4GAT1 (formerly known as B3GNT1) localize to the Golgi and contribute to the O-mannosyl post-phosphorylation modification of α-DG. Moreover, we assigned B4GAT1 a function as a xylose β1,4-glucuronyltransferase. Nuclear magnetic resonance studies confirmed that a glucuronic acid β1,4-xylose disaccharide synthesized by B4GAT1 acts as an acceptor primer that can be elongated by LARGE with the ligand-binding heteropolysaccharide. Our findings greatly broaden the understanding of α-DG glycosylation and provide mechanistic insight into why mutations in B4GAT1 disrupt dystroglycan function and cause disease.

Funder

National Institutes of Health

Muscular Dystrophy Association

Howard Hughes Medical Institute

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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