A Recurrent De Novo Heterozygous COG4 Substitution Leads to Saul-Wilson Syndrome, Disrupted Vesicular Trafficking, and Altered Proteoglycan Glycosylation

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Date: January 18, 2019
Authors:
Alvaro H. Serrano Russi, Andrew Jackson, Angela L. Duker, Anna Hammarsjo, Ann Nordgren, Aurelie Clement, Benjamin D. Solomon, Bernardo Blanco-Sanchez, Bobby G. Ng, Carlos R. Ferreira, Clare V. Logan, Coleman T. Turgeon, Cynthia J. Tifft, Daniel R. Carvalho, David A. Parry, David Adams, Dawn Earl, Ellen Macnamara, Emma Tham, Fulya Taylan, Ganka Douglas, Gen Nishimura, George E. Tiller, Giedre Grigelioniene, Hanne Buciek Hove, Heiko Bratke, Hudson H. Freeze, Jakob Ek, Jennifer B. Phillips, Jeremy Wegner, John A. Phillips III, Kazuhiro Aoki, Kelly Radtke, Kimiyo M. Raymond, Lauren Brick, Luis Rohena, Lynne A. Wolfe, Mariska Davids, Mariya Kozenko, Marte Gjøl Haug, May C.V. Malicdan, Megan T. Cho, Melissa Gabriel, Michael B. Bober, Michael Tiemeyer, Monte Westerfield, Prashant Sharma, Rizwan Hamid, Tara Weixel, Tito Onyekweli, William A. Gahl, William G. Wilson, Zhi-Jie Xia, Zöe Powis
Journal: American journal of human genetics
Journal Volume: 103

Abstract

The conserved oligomeric Golgi (COG) complex is involved in intracellular vesicular transport, and is composed of eight subunits distributed in two lobes, lobe A (COG1-4) and lobe B (COG5-8). We describe fourteen individuals with Saul-Wilson syndrome, a rare form of primordial dwarfism with characteristic facial and radiographic features. All affected subjects harbored heterozygous de novo variants in COG4, giving rise to the same recurrent amino acid substitution (p.Gly516Arg). Affected individuals’ fibroblasts, whose COG4 mRNA and protein were not decreased, exhibited delayed anterograde vesicular trafficking from the ER to the Golgi and accelerated retrograde vesicular recycling from the Golgi to the ER. This altered steady-state equilibrium led to a decrease in Golgi volume, as well as morphologic abnormalities with collapse of the Golgi stacks. Despite these abnormalities of the Golgi apparatus, protein glycosylation in sera and fibroblasts from affected subjects was not notably altered, but decorin, a proteoglycan secreted into the extracellular matrix, showed altered Golgi-dependent glycosylation. In summary, we define a specific heterozygous COG4 substitution as the molecular basis of Saul-Wilson syndrome, a rare skeletal dysplasia distinct from biallelic COG4-CDG.