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Published on: May 18, 2017
alpha 1-Antitrypsin Mmalton (Phe52-deleted) forms loop-sheet polymers in vivo. Evidence for the C sheet mechanism of
D A Lomas1, P R Elliott, S K Sidhar
1Department of Haematology, University of Cambridge, United Kingdom.
Abstract:
The Z (Glu342-->Lys) and Siiyama (Ser53-->Phe) deficiency variants of alpha 1-antitrypsin result in the retention of protein in the endoplasmic reticulum of the hepatocyte by loop-sheet polymerization in which the reactive center loop of one molecule is inserted into a beta-pleated sheet of a second. We show here that antitrypsin Mmalton (Phe52-deleted), which is associated with the same liver inclusions, is also retained at an endoglycosidase H-sensitive stage of processing in the Xenopus oocyte and spontaneously forms polymers in vivo. These polymers, obtained from the plasma of an Mmalton/QO (null) bolton heterozygote, were much shorter than other antitrypsin polymers and contained a reactive center loop-cleaved species. Monomeric mutant antitrypsin was also isolated from the plasma. The monomeric component had a normal unfolding transition on transverse urea gradient gel electrophoresis and formed polymers in vitro more readily than M, but less readily than Z, antitrypsin. The A beta-sheet accommodated a reactive center loop peptide much less readily than Z antitrypsin, which in turn was less receptive than native M antitrypsin. The nonreceptive conformation of the A sheet in antitrypsin Mmalton had little effect on kinetic parameters, the formation of SDS-stable complexes, the S to R transition, and the formation of the latent conformation. Comparison of the results with similar findings of short chain polymers associated with the antithrombin variant Rouen VI (Bruce, D., Perry, D., Borg, J.-Y., Carrell, R. W., and Wardell, M. R. (1994) J. Clin. Invest. 94, 2265-2274) suggests that polymerization is more complicated than the mechanism proposed earlier. The Z, Siiyama, and Mmalton mutations favor a conformational change in the antitrypsin molecule to an intermediate between the native and latent forms. This would involve a partial overinsertion of the reactive loop into the A sheet with displacement of strand 1C and consequent loop-C sheet polymerization.
Insights
Alpha 1-antitrypsin deficiency variants, including Mmalton, cause protein misfolding and polymerization. These mutations lead to endoplasmic reticulum retention and altered protein conformations, suggesting complex polymerization mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Alpha 1-antitrypsin (AAT) deficiency variants, such as Z and Siiyama, cause protein misfolding and endoplasmic reticulum retention through loop-sheet polymerization.
- This polymerization involves the insertion of the reactive center loop of one AAT molecule into the beta-pleated sheet of another.
Purpose of the Study:
- To investigate the polymerization mechanism of the AAT Mmalton variant (Phe52-deleted).
- To compare the polymerization properties of Mmalton with native (M), Z, and Siiyama AAT variants.
Main Methods:
- Studied AAT Mmalton processing in Xenopus oocytes.
- Analyzed polymers from Mmalton/QO (null) bolton heterozygote plasma.
- Isolated and characterized monomeric Mmalton AAT.
- Utilized transverse urea gradient gel electrophoresis to assess protein unfolding.
- Compared polymerization kinetics and conformational changes with other AAT variants.
Main Results:
- Antitrypsin Mmalton is retained at an endoglycosidase H-sensitive stage and forms polymers in vivo.
- Mmalton polymers are shorter than other AAT polymers and contain a cleaved reactive center loop species.
- Monomeric Mmalton AAT unfolds normally but polymerizes in vitro more readily than M, but less readily than Z.
- The A beta-sheet of Mmalton is less receptive to reactive center loop peptides compared to Z and M AAT.
- Mutations Z, Siiyama, and Mmalton promote a conformational change towards an intermediate between native and latent forms.
Conclusions:
- The Mmalton mutation contributes to AAT polymerization via a mechanism potentially involving partial reactive loop insertion into the A sheet.
- Polymerization of AAT variants is more complex than previously understood.
- These findings highlight the diverse mechanisms underlying AAT polymerization and its associated health implications.
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