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Polymerized Z-α-1 antitrypsin leads to lung injury in a murine model of emphysema
Maria Magallón Serrano, Nazli Khodayari, William Bowers, Edward P. Manning, Xinran Liu, Jungnam Lee, Tammy O. Flagg, Regina Oshins, Aidan Griffin, Sahil Patel, Jorge E. Lascano, Divay Chandra, Susan M. Majka, Irina Petrache, Mark L. Brantly, Karina A. Serban
Maria Magallón Serrano, Nazli Khodayari, William Bowers, Edward P. Manning, Xinran Liu, Jungnam Lee, Tammy O. Flagg, Regina Oshins, Aidan Griffin, Sahil Patel, Jorge E. Lascano, Divay Chandra, Susan M. Majka, Irina Petrache, Mark L. Brantly, Karina A. Serban
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Research Article Cell biology Genetics Pulmonology

Polymerized Z-α-1 antitrypsin leads to lung injury in a murine model of emphysema

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Abstract

In α-1 antitrypsin (AAT) deficiency (AATD), emphysema is classically linked to protease-antiprotease imbalance caused by decreased antiprotease AAT due levels and function. This decrease is secondary to the impaired release of Z-AAT polymers from hepatocytes carrying Pi*Z, E342K mutation in SERPENA1 gene. Whether the accumulation of Z-AAT polymers in distal lungs contributes directly to emphysema pathogenesis has remained unexplored due to the lack of suitable model systems. We characterized lung injury and airspace enlargement in a Z-AAT–overexpressing murine model. We generated Z-AAT Serpina1Null mice overexpressing human (E342K) SERPENA1 in Serpina1Null mice and analyzed pulmonary phenotypes in young and aged animals, complemented by translational studies using primary cells, bronchoalveolar lavage fluid (BALf), and lung tissue from individuals who have never smoked and individuals with AATD. Young Z-AAT Serpina1Null mice accumulated Z-AAT polymers in hepatocytes, plasma, and BALf, exhibited spontaneous neutrophilic lung inflammation, increased alveolo-capillary permeability, and premature airspace enlargement, which was worse in older Z-AAT Serpina1Null mice. Moreover, Z-AAT polymers accumulated in alveolar type-2 epithelial (AT2) cells and lung macrophages, associated with endoplasmic reticulum (ER) stress, mitochondria dysfunction, and incomplete autophago-lysosomal fusion, which we recapitulated in lung samples from individuals with AATD. These findings support the pathogenic role of Z-AAT polymer accumulation in distal lung epithelium as a driver of epithelial, endothelial, and macrophage dysfunction linked to AATD emphysema.

Authors

Maria Magallón Serrano, Nazli Khodayari, William Bowers, Edward P. Manning, Xinran Liu, Jungnam Lee, Tammy O. Flagg, Regina Oshins, Aidan Griffin, Sahil Patel, Jorge E. Lascano, Divay Chandra, Susan M. Majka, Irina Petrache, Mark L. Brantly, Karina A. Serban

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Figure 1

Generation and phenotypic characterization of Z-AAT Serpina1Null murine model.

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Generation and phenotypic characterization of Z-AAT Serpina1Null murine ...
Graphic representation of (A) the human SERPENA1 gene on the chromosome 14, q arm, position q2.13. Note the SNP NC-000014.9:g.94378610 C>T (rs 28929474) in the exon V leading to the E [GAG] > K [AAG], E342K mutant AAT. (B) the 23-kb pMA-pHuman-Serpina1 construct harboring the glutamic acid to lysine substitution at residue 366 (E366K, also designated 342; G to A; rs 28929474) (C) Genotype identification of the Z-AAT Serpina1Null versus WT mice using SNP Genotyping TaqMan allelic discrimination assay. (D) Somatic integration of pMA-pHuman-Serpina1construct as demonstrated by equal, 5–6 copy number in the liver, lung, buffy coat and AT2 cells of Z-AAT Serpina1Null mice (E) Human SERPENA1 gene expression in the liver, lung, buffy coat, and AT2 cells of Z-AAT Serpina1Null mice relative to 18S control gene (F) Representative H&E, Periodic Acid Shiff globules after treatment with Diastase (PASD), Picro-Sirius Red (PSR) staining and α-smooth muscle actin (α-SMA) images of liver tissue from 4-mo old WT, Serpina1Null and Z-AAT Serpina1Null mice; scale 100 μm. Note increased PASD, PSR, and α-SMA staining (marked with *) in Z-AAT Serpina1Null mice. (G and H) Human AAT measured by nephelometry (G) and human Z-AAT polymers (H) measured by custom-made ELISA with specific 2C1 antibody (Hycult) against Z-AAT polymers in the plasma of 4-, 7- and greater than 12-month-old Z-AAT Serpina1Null versus Serpina1Null and WT mice. The red line, panel G represents the upper level (8 μM/mL) of serum AAT in Pi*ZZ individuals. Data are presented as mean ± SD, 1-way ANOVA, followed by Tukey’s multiple comparisons, #P < 0.05 versus 4-mo-old same genotype mice, *P < 0.05 versus same age WT mice.

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