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Impaired PPARγ activation by cadmium exacerbates infection-induced lung injury
Jennifer L. Larson-Casey, Shanrun Liu, Jennifer M. Pyles, Suzanne E. Lapi, Komal Saleem, Veena B. Antony, Manuel Lora Gonzalez, David K. Crossman, A. Brent Carter
Jennifer L. Larson-Casey, Shanrun Liu, Jennifer M. Pyles, Suzanne E. Lapi, Komal Saleem, Veena B. Antony, Manuel Lora Gonzalez, David K. Crossman, A. Brent Carter
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Research Article Infectious disease Pulmonology

Impaired PPARγ activation by cadmium exacerbates infection-induced lung injury

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Abstract

Emerging data indicate an association between environmental heavy metal exposure and lung disease, including lower respiratory tract infections (LRTIs). Here, we show by single-cell RNA sequencing an increase in Pparg gene expression in lung macrophages from mice exposed to cadmium and/or infected with Streptococcus pneumoniae. However, the heavy metal cadmium or infection mediated an inhibitory posttranslational modification of peroxisome proliferator-activated receptor γ (PPARγ) to exacerbate LRTIs. Cadmium and infection increased ERK activation to regulate PPARγ degradation in monocyte-derived macrophages. Mice harboring a conditional deletion of Pparg in monocyte-derived macrophages had more severe S. pneumoniae infection after cadmium exposure, showed greater lung injury, and had increased mortality. Inhibition of ERK activation with BVD-523 protected mice from lung injury after cadmium exposure or infection. Moreover, individuals residing in areas of high air cadmium levels had increased cadmium concentration in their bronchoalveolar lavage (BAL) fluid, increased barrier dysfunction, and showed PPARγ inhibition that was mediated, at least in part, by ERK activation in isolated BAL cells. These observations suggest that impaired activation of PPARγ in monocyte-derived macrophages exacerbates lung injury and the severity of LRTIs.

Authors

Jennifer L. Larson-Casey, Shanrun Liu, Jennifer M. Pyles, Suzanne E. Lapi, Komal Saleem, Veena B. Antony, Manuel Lora Gonzalez, David K. Crossman, A. Brent Carter

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Figure 4

ERK activation mediates phosphorylation of PPARγ.

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ERK activation mediates phosphorylation of PPARγ.
(A) Nuclear immunoblot...
(A) Nuclear immunoblot analysis of THP-1 cells exposed to vehicle or U0126 (10 μM, 1 hour) and CdCl2 (50 μM, 3 hours) with statistical quantification of (B) p-ERK and (C) p-PPARγ (S112). n = 3. (D) Nuclear immunoblot analysis of THP-1 cells transfected with empty vector or ERKDN and exposed to saline or CdCl2, with statistical quantification of (E) p-ERK and (F) p-PPARγ (S112). n = 3. (G) Nuclear immunoblot analysis of THP-1 cells transfected with empty vector or MEK1 and exposed to saline or CdCl2, with statistical quantification of (H) p-ERK and (I) p-PPARγ (S112) n = 3. (J) Representative confocal imaging of exposed MH-S cells. Scale bars: 10 μm. Statistical quantification of (K) p-ERK and (L) p-PPARγ (S112) staining n = 5. (M) Dot plot of percentage of Mapk1 expression in each cell cluster in exposed mice from lung tissue analyzed by single-cell RNA sequencing. AT1 and AT2, alveolar epithelial type I and II cells; IM, interstitial macrophages. (N) Immunoblot analysis of FACS-isolated BAL cells from exposed WT mice. Tissue-resident alveolar macrophages (TRAMs; CD45+CD11b+/–Ly6G–CD64+Ly6C–Siglec Fhi) and monocyte-derived macrophages (MDMs; CD45+CD11b+/–Ly6G–CD64+Ly6C–Siglec Flo). Data shown as mean ± SEM. **P < 0.001; ***P < 0.0001 by 1-way ANOVA with Tukey’s post hoc test (B, C, E, F, H, and I) or 2-tailed Student’s t test (K and L).

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