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Molecular Mechanism of Z α1-Antitrypsin Deficiency

The Z mutation (E342K) of α1-antitrypsin (α1-AT), carried by 4% of Northern Europeans, predisposes to early onset of emphysema due to decreased functional α1-AT in the lung and to liver cirrhosis due to accumulation of polymers in hepatocytes. However, it remains unclear why the Z mutation causes in...

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Autores principales: Huang, Xin, Zheng, Ying, Zhang, Fei, Wei, Zhenquan, Wang, Yugang, Carrell, Robin W., Read, Randy J., Chen, Guo-Qiang, Zhou, Aiwu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4957051/
https://www.ncbi.nlm.nih.gov/pubmed/27246852
http://dx.doi.org/10.1074/jbc.M116.727826
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author Huang, Xin
Zheng, Ying
Zhang, Fei
Wei, Zhenquan
Wang, Yugang
Carrell, Robin W.
Read, Randy J.
Chen, Guo-Qiang
Zhou, Aiwu
author_facet Huang, Xin
Zheng, Ying
Zhang, Fei
Wei, Zhenquan
Wang, Yugang
Carrell, Robin W.
Read, Randy J.
Chen, Guo-Qiang
Zhou, Aiwu
author_sort Huang, Xin
collection PubMed
description The Z mutation (E342K) of α1-antitrypsin (α1-AT), carried by 4% of Northern Europeans, predisposes to early onset of emphysema due to decreased functional α1-AT in the lung and to liver cirrhosis due to accumulation of polymers in hepatocytes. However, it remains unclear why the Z mutation causes intracellular polymerization of nascent Z α1-AT and why 15% of the expressed Z α1-AT is secreted into circulation as functional, but polymerogenic, monomers. Here, we solve the crystal structure of the Z-monomer and have engineered replacements to assess the conformational role of residue Glu-342 in α1-AT. The results reveal that Z α1-AT has a labile strand 5 of the central β-sheet A (s5A) with a consequent equilibrium between a native inhibitory conformation, as in its crystal structure here, and an aberrant conformation with s5A only partially incorporated into the central β-sheet. This aberrant conformation, induced by the loss of interactions from the Glu-342 side chain, explains why Z α1-AT is prone to polymerization and readily binds to a 6-mer peptide, and it supports that annealing of s5A into the central β-sheet is a crucial step in the serpins' metastable conformational formation. The demonstration that the aberrant conformation can be rectified through stabilization of the labile s5A by binding of a small molecule opens a potential therapeutic approach for Z α1-AT deficiency.
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spelling pubmed-49570512016-08-08 Molecular Mechanism of Z α1-Antitrypsin Deficiency Huang, Xin Zheng, Ying Zhang, Fei Wei, Zhenquan Wang, Yugang Carrell, Robin W. Read, Randy J. Chen, Guo-Qiang Zhou, Aiwu J Biol Chem Protein Structure and Folding The Z mutation (E342K) of α1-antitrypsin (α1-AT), carried by 4% of Northern Europeans, predisposes to early onset of emphysema due to decreased functional α1-AT in the lung and to liver cirrhosis due to accumulation of polymers in hepatocytes. However, it remains unclear why the Z mutation causes intracellular polymerization of nascent Z α1-AT and why 15% of the expressed Z α1-AT is secreted into circulation as functional, but polymerogenic, monomers. Here, we solve the crystal structure of the Z-monomer and have engineered replacements to assess the conformational role of residue Glu-342 in α1-AT. The results reveal that Z α1-AT has a labile strand 5 of the central β-sheet A (s5A) with a consequent equilibrium between a native inhibitory conformation, as in its crystal structure here, and an aberrant conformation with s5A only partially incorporated into the central β-sheet. This aberrant conformation, induced by the loss of interactions from the Glu-342 side chain, explains why Z α1-AT is prone to polymerization and readily binds to a 6-mer peptide, and it supports that annealing of s5A into the central β-sheet is a crucial step in the serpins' metastable conformational formation. The demonstration that the aberrant conformation can be rectified through stabilization of the labile s5A by binding of a small molecule opens a potential therapeutic approach for Z α1-AT deficiency. American Society for Biochemistry and Molecular Biology 2016-07-22 2016-05-31 /pmc/articles/PMC4957051/ /pubmed/27246852 http://dx.doi.org/10.1074/jbc.M116.727826 Text en © 2016 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Protein Structure and Folding
Huang, Xin
Zheng, Ying
Zhang, Fei
Wei, Zhenquan
Wang, Yugang
Carrell, Robin W.
Read, Randy J.
Chen, Guo-Qiang
Zhou, Aiwu
Molecular Mechanism of Z α1-Antitrypsin Deficiency
title Molecular Mechanism of Z α1-Antitrypsin Deficiency
title_full Molecular Mechanism of Z α1-Antitrypsin Deficiency
title_fullStr Molecular Mechanism of Z α1-Antitrypsin Deficiency
title_full_unstemmed Molecular Mechanism of Z α1-Antitrypsin Deficiency
title_short Molecular Mechanism of Z α1-Antitrypsin Deficiency
title_sort molecular mechanism of z α1-antitrypsin deficiency
topic Protein Structure and Folding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4957051/
https://www.ncbi.nlm.nih.gov/pubmed/27246852
http://dx.doi.org/10.1074/jbc.M116.727826
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