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Chlorination of epithelial tight junction proteins by neutrophil myeloperoxidase promotes barrier dysfunction and mucosal inflammation
Ian M. Cartwright, Liheng Zhou, Samuel D. Koch, Nichole Welch, Daniel Zakharov, Rosemary Callahan, Calen A. Steiner, Mark E. Gerich, Joseph C. Onyiah, Sean P. Colgan
Ian M. Cartwright, Liheng Zhou, Samuel D. Koch, Nichole Welch, Daniel Zakharov, Rosemary Callahan, Calen A. Steiner, Mark E. Gerich, Joseph C. Onyiah, Sean P. Colgan
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Research Article Inflammation

Chlorination of epithelial tight junction proteins by neutrophil myeloperoxidase promotes barrier dysfunction and mucosal inflammation

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Abstract

Neutrophils (polymorphonuclear leukocytes, PMNs) comprise a major component of the immune cell infiltrate during acute mucosal inflammation and have an important role in molding the inflammatory tissue environment. While PMNs are essential to clearance of invading microbes, the major PMN antimicrobial enzyme myeloperoxidase (MPO) can also promote bystander tissue damage. We hypothesized that blocking MPO would attenuate acute colitis and prevent the development of chronic colitis by limiting bystander tissue damage. Using the acute and chronic dextran sodium sulfate model of murine colitis, we demonstrated that MPO-deficient mice experienced less inflammation and more rapidly resolved colitis relative to wild-type controls. Mechanistic studies demonstrated that activated MPO disrupted intestinal epithelial barrier function through the dysregulation of the epithelial tight junction proteins. Our findings revealed that activated MPO chlorinates tyrosine within several tight junction proteins, thereby promoting tight junction mislocalization and dysfunction. These observations in cell models and in murine colitis were validated in human intestinal biopsies from individuals with ulcerative colitis and revealed a strong correlation between disease severity (Mayo score) and tissue chlorinated tyrosine levels. In summary, these findings implicate MPO as a viable therapeutic target to limit bystander tissue damage and preserve mucosal barrier function during inflammation.

Authors

Ian M. Cartwright, Liheng Zhou, Samuel D. Koch, Nichole Welch, Daniel Zakharov, Rosemary Callahan, Calen A. Steiner, Mark E. Gerich, Joseph C. Onyiah, Sean P. Colgan

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Figure 6

Activated MPO disrupts the epithelial barrier.

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Activated MPO disrupts the epithelial barrier.
(A) Representative immuno...
(A) Representative immunofluorescence images of ZO-1 in Caco-2 IECs treated with 200 μg/mL scrambled, nonchlorinated, or chlorinated occludin peptide for 6 hours. Arrows mark regions of mislocalization or decreased expression. (B) Analysis of the TJ ratio in Caco-2 IECs treated with 200 μg/mL scrambled, nonchlorinated, or chlorinated occludin peptide for 6 hours. More than 30 total TJs were measured across biological replicates. A total of 3 biological replicates (cells cultured at different time points) used. (C) Caco-2 IECs were incubated with 200 μg/mL of scrambled, nonchlorinated, or chlorinated occludin peptide for 24 hours. After 24 hours the cells were analyzed for cell death using a fluorescence-based live/dead assay. (D) Transepithelial electrical resistance (TER) values over time and percentage initial TER in Caco-2 IECs following 6 hours’ exposure to control (pH 7.4), pH 5.0, 1 μg/mL MPO, 200 μM H2O2, or activated MPO, a combination of pH 5.0/MPO/H2O2, for 6 hours on both the apical and basolateral surfaces. Data represent 6 biological replicates, each replicate. (E) Representative immunofluorescence images of occludin in Caco-2 IECs following 6 hours’ exposure to control, pH 5.0, 1 μg/mL MPO, 200 μM H2O2, or activated MPO. Arrows indicate regions of aberrant occludin staining, loss of signal, and formation of distinct puncta. (F) Caco-2 IECs were incubated for 6 hours in the presence of low pH, H2O2, MPO, or a combo. After 6 hours the cells were analyzed for cell death using a fluorescence-based live/dead assay. Data are expressed as mean ± SD, and the P value was determined by 1-way ANOVA. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

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