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Cholesterol metabolism promotes B-cell positioning during immune pathogenesis of chronic obstructive pulmonary disease

Authors :
Bayram, Hasan (ORCID 0000-0002-5236-766X & YÖK ID 4890)
Jia, Jie; Conlon, Thomas M.; Sarker, Rim S. J.; Tasdemir, Demet; Smirnova, Natalia F.; Srivastava, Barkha; Verleden, Stijn E.; Guneş, Gizem; Wu, Xiao; Prehn, Cornelia; Gao, Jiaqi; Heinzelmann, Katharina; Lintelmann, Jutta; Irmler, Martin; Pfeiffer, Stefan; Schloter, Michael; Zimmermann, Ralf; de Angelis, Martin Hrabe; Beckers, Johannes; Adamski, Jerzy; Eickelberg, Oliver; Yıldırım, Ali Önder
School of Medicine
Department of Pulmonology
Bayram, Hasan (ORCID 0000-0002-5236-766X & YÖK ID 4890)
Jia, Jie; Conlon, Thomas M.; Sarker, Rim S. J.; Tasdemir, Demet; Smirnova, Natalia F.; Srivastava, Barkha; Verleden, Stijn E.; Guneş, Gizem; Wu, Xiao; Prehn, Cornelia; Gao, Jiaqi; Heinzelmann, Katharina; Lintelmann, Jutta; Irmler, Martin; Pfeiffer, Stefan; Schloter, Michael; Zimmermann, Ralf; de Angelis, Martin Hrabe; Beckers, Johannes; Adamski, Jerzy; Eickelberg, Oliver; Yıldırım, Ali Önder
School of Medicine
Department of Pulmonology
Source :
EMBO Molecular Medicine
Publication Year :
2018

Abstract

The development of chronic obstructive pulmonary disease (COPD) pathogenesis remains unclear, but emerging evidence supports a crucial role for inducible bronchus-associated lymphoid tissue (iBALT) in disease progression. Mechanisms underlying iBALT generation, particularly during chronic CS exposure, remain to be defined. Oxysterol metabolism of cholesterol is crucial to immune cell localization in secondary lymphoid tissue. Here, we demonstrate that oxysterols also critically regulate iBALT generation and the immune pathogenesis of COPD. In both COPD patients and cigarette smoke (CS)-exposed mice, we identified significantly upregulated CH25H and CYP7B1 expression in airway epithelial cells, regulating CS-induced B-cell migration and iBALT formation. Mice deficient in CH25H or the oxysterol receptor EBI2 exhibited decreased iBALT and subsequent CS-induced emphysema. Further, inhibition of the oxysterol pathway using clotrimazole resolved iBALT formation and attenuated CS-induced emphysema invivo therapeutically. Collectively, our studies are the first to mechanistically interrogate oxysterol-dependent iBALT formation in the pathogenesis of COPD, and identify a novel therapeutic target for the treatment of COPD and potentially other diseases driven by the generation of tertiary lymphoid organs.<br />NA

Details

Database :
OAIster
Journal :
EMBO Molecular Medicine
Notes :
pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1200731102
Document Type :
Electronic Resource