Literature DB >> 29947284

Acute inhalation of ozone induces DNA methylation of apelin in lungs of Long-Evans rats.

Colette N Miller1, Janice A Dye1, Mette C Schladweiler1, Judy H Richards1, Allen D Ledbetter1, Erica J Stewart2, Urmila P Kodavanti1.   

Abstract

Apelin has cardiopulmonary protective properties that promote vasodilation and maintenance of the endothelial barrier. While reductions in apelin have been identified as a contributor to various lung diseases, including pulmonary edema, its role in the effect of air pollutants has not been examined. Thus, in the current study, we sought to investigate if apelin is a downstream target of inhaled ozone and if such change in expression is related to altered DNA methylation in the lung. Male, Long-Evans rats were exposed to filtered air or 1.0 ppm ozone for 4 h. Ventilation changes were assessed using whole-body plethysmography immediately following exposure, and markers of pulmonary edema and inflammation were assessed in the bronchoaveolar lavage (BAL) fluid. The enzymatic regulators of DNA methylation were measured in the lung, along with methylation and hydroxymethylation of the apelin promoter. Data showed that ozone exposure was associated with increased enhanced pause and protein leakage in the BAL fluid. Ozone exposure reduced DNA cytosine-5-methyltransferase (DNMT) activity and Dnmt3a/b gene expression. Exposure-induced upregulation of proliferating cell nuclear antigen, indicative of DNA damage, repair, and maintenance methylation. Increased methylation and reduced hydroxymethylation were measured on the apelin promoter. These epigenetic modifications accompanied ozone-induced reduction of apelin expression and development of pulmonary edema. In conclusion, epigenetic regulation, specifically increased methylation of the apelin promoter downstream of DNA damage, may lead to reductions in protective signaling of the apelinergic system, contributing to the pulmonary edema observed following the exposure to oxidant air pollution.

Entities:  

Keywords:  Apelin; DNA methylation; ozone; pulmonary edema

Mesh:

Substances:

Year:  2018        PMID: 29947284      PMCID: PMC6681647          DOI: 10.1080/08958378.2018.1483984

Source DB:  PubMed          Journal:  Inhal Toxicol        ISSN: 0895-8378            Impact factor:   2.724


  5 in total

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2.  Ozone Exposure During Implantation Increases Serum Bioactivity in HTR-8/SVneo Trophoblasts.

Authors:  Colette N Miller; Erica J Stewart; Samantha J Snow; Wanda C Williams; Judy H Richards; Leslie C Thompson; Mette C Schladweiler; Aimen K Farraj; Urmila P Kodavanti; Janice A Dye
Journal:  Toxicol Sci       Date:  2019-04-01       Impact factor: 4.849

Review 3.  Air pollution-induced epigenetic changes: disease development and a possible link with hypersensitivity pneumonitis.

Authors:  Suranjana Mukherjee; Sanjukta Dasgupta; Pradyumna K Mishra; Koel Chaudhury
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4.  Fetal growth outcomes following peri-implantation exposure of Long-Evans rats to noise and ozone differ by sex.

Authors:  Colette N Miller; Urmila P Kodavanti; Erica J Stewart; Mette C Schladweiler; Judy H Richards; Samantha J Snow; Andres R Henriquez; Wendy M Oshiro; Aimen K Farraj; Mehdi S Hazari; Janice A Dye
Journal:  Biol Sex Differ       Date:  2019-12-02       Impact factor: 5.027

Review 5.  Environmental Disinfection of a Dental Clinic during the Covid-19 Pandemic: A Narrative Insight.

Authors:  Antonio Scarano; Francesco Inchingolo; Felice Lorusso
Journal:  Biomed Res Int       Date:  2020-10-28       Impact factor: 3.411

  5 in total

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