Different macrophage polarization between drug-susceptible and multidrug-resistant pulmonary tuberculosis
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Published:2020-01-29
Issue:1
Volume:20
Page:
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ISSN:1471-2334
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Container-title:BMC Infectious Diseases
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language:en
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Short-container-title:BMC Infect Dis
Author:
Cho Hyun Jin, Lim Yun-Ji, Kim Jhingook, Koh Won-Jung, Song Chang-HwaORCID, Kang Min-Woong
Abstract
Abstract
Background
Macrophages play a key role in the infection process, and alternatively activated macrophages (M2 polarization) play important roles in persistent infection via the immune escape of pathogens. This suggests that immune escape of pathogens from host immunity is an important factor to consider in treatment failure and multidrug-resistant tuberculosis (MDR-TB)/extensively drug-resistant tuberculosis (XDR-TB). In this study, we investigated the association between macrophage polarization and MDR-TB/XDR-TB and the association between macrophage polarization and the anti-TB drugs used.
Methods
iNOS and arginase-1, a surface marker of polarized macrophages, were quantified by immunohistochemical staining and imaging analysis of lung tissues of patients who underwent surgical treatment for pulmonary TB. Drug susceptibility/resistance and the type and timing of anti-tuberculosis drugs used were investigated.
Results
The M2-like polarization rate and the ratio of the M2-like polarization rate to the M1-like polarization rate were significantly higher in the MDR-TB/XDR-TB group than in the DS-TB group. The association between a high M2-like polarization rate and MDR-TB/XDR-TB was more pronounced in patients with a low M1-like polarization rate. Younger age and a higher M2-like polarization rate were independent associated factors for MDR-TB/XDR-TB. The M2-like polarization rate was significantly higher in patients who received anti-TB drugs containing pyrazinamide continuously for 4 or 6 weeks than in those who received anti-TB drugs not containing pyrazinamide.
Conclusions
The M2-like polarization of macrophages is associated with MDR-TB/XDR-TB and anti-TB drug regimens including pyrazinamide or a combination of pyrazinamide, prothionamide and cycloserine.
Funder
Research fund of Chungnam National University and the Brain Korea 21 PLUS Project for Medical Science, Chungnam National University
Publisher
Springer Science and Business Media LLC
Subject
Infectious Diseases
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