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Bulleid, N. J.

Publications and source records attributed to Bulleid, N. J..

2 recordsLinked to original sources

The chemical chaperone 4-phenylbutyric acid rescues molecular cell defects of COL3A1 mutations that cause vascular Ehlers Danlos Syndrome

PurposeVascular Ehlers Danlos Syndrome (vEDS) is a connective tissue disorder caused by COL3A1 mutations for which there are no treatments due to a limited understanding of underlying mechanisms. We aimed to address this critical knowledge gap, focusing on collagen folding, to establish if targeting protein folding represents a potential therapeutic approach. MethodsWe performed a mechanistic analysis of two novel COL3A1 glycine mutations, G189S and G906R, using primary patient fibroblast cultures, and performed pre-clinical proof-of-concept treatments using FDA-approved chemical chaperones targeting protein folding and/or degradation. ResultsCOL3A1 mutations caused secretion of misfolded collagen III and intracellular collagen retention, leading to matrix defects and endoplasmic reticulum (ER) stress, with increased severity for the more C-terminal mutation. Promoting ER protein folding capacity through the chemical chaperone 4-phenylbutyric acid rescued the ER stress, thermostability of secreted collagen, matrix defects and apoptosis. Optimising treatment duration and dosage helped overcome allele-dependent treatment efficacy. In contrast, protein degradation alone or combined with targeting protein folding did not increase efficacy. ConclusionER stress is a molecular mechanism in vEDS that can be influenced by the position of COL3A1 mutation, and promoting protein folding is a putative mechanism-based therapeutic approach that can rescue intra- and extracellular defects.

genetics↗

A Cytosolic Reductase Pathway is Required for Complete N-Glycosylation of an STT3B-Dependent Acceptor Site.

N-linked glycosylation of proteins entering the secretory pathway is an essential post-translational modification required for protein stability and function. Previously, it has been shown that there is a temporal relationship between protein folding and glycosylation, which influences the occupancy of specific glycosylation sites. Here we use an in vitro translation system that reproduces the initial stages of secretory protein translocation, folding and glycosylation under defined redox conditions. We found that the efficiency of glycosylation of hemopexin was dependent upon a robust NADPH-dependent cytosolic reductive pathway, which could also be mimicked by the addition of a membrane impermeable reducing agent. The identified hypoglycosylated acceptor site is adjacent to a cysteine involved in a short range disulfide bond, which has been shown to be dependent on the STT3B-containing oligosaccharyl transferase. We also show that efficient glycosylation at this site is dependent on the STT3A-containing oligosaccharide transferase. Our results provide further insight into the important role of the ER redox conditions in glycosylation site occupancy and demonstrate a link between redox conditions in the cytosol and glycosylation efficiency.

cell biology↗