Abstract

The screening of biologically active chemical compound libraries can be an efficient way to reposition Food and Drug Adminstration (FDA)-approved drugs or to discover new therapies for human diseases. Particulate matter with an aerodynamic diameter equal to or less than 2.5 μm (PM2.5) is a form of air pollutant that causes significant lung damage when inhaled. This study illustrates drug repositioning with biapenem (BIPM) for the modulation of PM-induced lung injury. Biapenem was used for the treatment of severe infections. Mice were treated with BIPM via tail-vein injection after the intratracheal instillation of PM2.5. Alterations in the lung wet/dry weight, total protein/total cell count and lymphocyte count, inflammatory cytokines in the bronchoalveolar lavage fluid (BALF), vascular permeability, and histology were monitored in the PM2.5-treated mice. BIPM effectively reduced the pathological lung injury, lung wet/dry weight ratio, and hyperpermeability caused by PM2.5. Enhanced myeloperoxidase (MPO) activity by PM2.5 in the pulmonary tissue was inhibited by BIPM. Moreover, increased levels of inflammatory cytokines and total protein by PM2.5 in the BALF were also decreased by BIPM treatment. In addition, BIPM markedly suppressed PM2.5-induced increases in the number of lymphocytes in the BALF. Additionally, the activity of mammalian target of rapamycin (mTOR) was increased by BIPM. Administration of PM2.5 increased the expression levels of toll-like receptor 4 (TLR4), MyD88, and the autophagy-related proteins LC3 II and Beclin 1, which were suppressed by BIPM. In conclusion, these findings indicate that BIPM has a critical anti-inflammatory effect due to its ability to regulate both the TLR4-MyD88 and mTOR-autophagy pathways, and may thus be a potential therapeutic agent against diesel PM2.5-induced pulmonary injury.

Highlights

  • The traditional drug discovery process, with the design and validation of new chemicals, is a time-consuming and expensive process [1,2,3]

  • Result, we found that biapenem

  • We were interested in the potential application of BIPM in the treatment of the current were interested in research the potential application ofincreases

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Summary

Introduction

The traditional drug discovery process, with the design and validation of new chemicals, is a time-consuming and expensive process [1,2,3]. 2.5 μm (PM2.5 ) insystems diameter, a well-known indicator air pollution, has adverse effects onthat the exert respiratory effects, including polycyclic aromatic hydrocarbons, oxygenated volatile organic compounds, and and circulatory systems [8]. The relationship between PM2.5 and inflammation has been identified as playing a pulmonary disease—and the secretion of inflammatory (ILs) and tumor role in a variety of lung diseases—such as asthma, acute lungcytokines injury, and(interleukins chronic obstructive pulmonary necrosis factorthe (TNF)-α) were induced by PM. Because there is a significant correlation between exposure [14], thereand is a the high-priority need to develop new prevention treatment strategies respiratory to PM risk of asthma, and the incidence and and mortality of lung cancerfor [14], there is a.

Results
Effects of
Effects of BIPM onon
Effects
Discussion
Reagents
Animals and Husbandry
Protein Concentration and Cell Count in the BALF
Permeability Assays
Western Blot Analysis
4.10. Statistical Analysis
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