Z-α 1 -antitrypsin polymers impose molecular filtration in the endoplasmic reticulum after undergoing phase transition to a solid state

Misfolding of secretory proteins in the endoplasmic reticulum (ER) features in many human diseases. In α -antitrypsin deficiency, the pathogenic Z variant aberrantly assembles into polymers in the hepatocyte ER, leading to cirrhosis. We show that α -antitrypsin polymers undergo a liquid:solid phase...

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Veröffentlicht in:Science advances 2022-04, Vol.8 (14), p.eabm2094
Hauptverfasser: Chambers, Joseph E, Zubkov, Nikita, Kubánková, Markéta, Nixon-Abell, Jonathon, Mela, Ioanna, Abreu, Susana, Schwiening, Max, Lavarda, Giulia, López-Duarte, Ismael, Dickens, Jennifer A, Torres, Tomás, Kaminski, Clemens F, Holt, Liam J, Avezov, Edward, Huntington, James A, George-Hyslop, Peter St, Kuimova, Marina K, Marciniak, Stefan J
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Sprache:eng
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Zusammenfassung:Misfolding of secretory proteins in the endoplasmic reticulum (ER) features in many human diseases. In α -antitrypsin deficiency, the pathogenic Z variant aberrantly assembles into polymers in the hepatocyte ER, leading to cirrhosis. We show that α -antitrypsin polymers undergo a liquid:solid phase transition, forming a protein matrix that retards mobility of ER proteins by size-dependent molecular filtration. The Z-α -antitrypsin phase transition is promoted during ER stress by an ATF6-mediated unfolded protein response. Furthermore, the ER chaperone calreticulin promotes Z-α -antitrypsin solidification and increases protein matrix stiffness. Single-particle tracking reveals that solidification initiates in cells with normal ER morphology, previously assumed to represent a healthy pool. We show that Z-α -antitrypsin-induced hypersensitivity to ER stress can be explained by immobilization of ER chaperones within the polymer matrix. This previously unidentified mechanism of ER dysfunction provides a template for understanding a diverse group of related proteinopathies and identifies ER chaperones as potential therapeutic targets.
ISSN:2375-2548
2375-2548
DOI:10.1126/sciadv.abm2094