The mechanism of pathogenic α <sub>1</sub> -antitrypsin aggregation in the human liver
Abstract
Originating 2 to 3 millennia ago in a Scandinavian population, the SERPINA1 Z allele (Glu342Lys) is present in up to 2.5% of populations of Northern European descent and accounts for 95% of severe α 1 -antitrypsin deficiency. The α 1 -antitrypsin Z variant self-assembles into polymer chains that deposit within hepatocytes, predisposing to liver disease. Here, the 4.0Å subunit structure of polymers isolated directly from human liver tissue has been determined using cryoelectron microscopy. Challenges of flexibility, small subunit size, heterogeneous length, and preferred orientations were mitigated using antibody Fab domains and sample preparation strategies. This structure demonstrates that the formation of polymers in vivo involves self-incorporation of an exposed structural element (the reactive center loop) as an additional β-strand into the central β-sheet of α 1 -antitrypsin and displacement of a C-terminal region from one subunit with incorporation into the next. Unlike amyloid aggregation, this well-folded structure partially recapitulates a conformation adopted during normal function of the protein. These perturbations to the constituent α 1 -antitrypsin subunits of human tissue-derived polymers are consistent with a pronounced stability, their tendency toward long-chain forms, the ability of a subset to undergo canonical secretion, and the action of a class of small molecules that block polymerization in vivo.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (10)
Ibrahim Aldobiyan
Centre for Respiratory Biology, Division of Medicine
Emma L. K. Elliston
UCL Respiratory, Division of Medicine and the Institute of Structural and Molecular Biology, University College London
Narinder Heyer-Chauhan
UCL Respiratory, Division of Medicine and the Institute of Structural and Molecular Biology, University College London
Stefan T. Arold
Lingyun Zhao
Imaging and Characterization Core Lab, King Abdullah University of Science and Technology
Brandon Huntington
King Abdullah University of Science and Technology Center of Excellence for Smart Health, Biological and Environmental Science and Engineering Division, King Abdullah University of Science and Technology
Sarah M. Lowen
Centre for Respiratory Biology, Division of Medicine
Elena V. Orlova
Institute of Structural and Molecular Biology, School of Natural Sciences, Birkbeck, University of London
James A. Irving
Centre for Respiratory Biology, Division of Medicine
David A. Lomas
Centre for Respiratory Biology, Division of Medicine