Metabolomic profiling of doxycycline treatment in chronic obstructive pulmonary disease

•The serum NMR metabolomic profiling in doxycycline treated group of COPD patients is proposed.•Clear discrimination between pre and post doxycycline treated COPD patients is substantiated.•The metabolites associated with lung function improvement in add-on doxycycline group is reported.•No improvem...

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Veröffentlicht in:Journal of pharmaceutical and biomedical analysis 2017-01, Vol.132, p.103-108
Hauptverfasser: Singh, Brajesh, Jana, Saikat K., Ghosh, Nilanjana, Das, Soumen K., Joshi, Mamata, Bhattacharyya, Parthasarathi, Chaudhury, Koel
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Sprache:eng
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Zusammenfassung:•The serum NMR metabolomic profiling in doxycycline treated group of COPD patients is proposed.•Clear discrimination between pre and post doxycycline treated COPD patients is substantiated.•The metabolites associated with lung function improvement in add-on doxycycline group is reported.•No improvement in lung function is evidenced in standard therapy patients. Serum metabolic profiling can identify the metabolites responsible for discrimination between doxycycline treated and untreated chronic obstructive pulmonary disease (COPD) and explain the possible effect of doxycycline in improving the disease conditions. 1H nuclear magnetic resonance (NMR)-based metabolomics was used to obtain serum metabolic profiles of 60 add-on doxycycline treated COPD patients and 40 patients receiving standard therapy. The acquired data were analyzed using multivariate principal component analysis (PCA), partial least-squares-discriminant analysis (PLS-DA), and orthogonal projection to latent structure with discriminant analysis (OPLS-DA). A clear metabolic differentiation was apparent between the pre and post doxycycline treated group. The distinguishing metabolites lactate and fatty acids were significantly down-regulated and formate, citrate, imidazole and l-arginine upregulated. Lactate and folate are further validated biochemically. Metabolic changes, such as decreased lactate level, inhibited arginase activity and lowered fatty acid level observed in COPD patients in response to add-on doxycycline treatment, reflect the anti-inflammatory action of the drug. Doxycycline as a possible therapeutic option for COPD seems promising.
ISSN:0731-7085
1873-264X
DOI:10.1016/j.jpba.2016.09.034