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Targeting cannabinoid receptor 1 for antagonism in pro-fibrotic alveolar macrophages mitigates pulmonary fibrosis
Abhishek Basu, Muhammad Arif, Kaelin M. Wolf, Madeline Behee, Natalie Johnson, Lenny Pommerolle, Ricardo H. Pineda, John Sembrat, Charles N. Zawatsky, Szabolcs Dvorácskó, Nathan J. Coffey, Joshua K. Park, Seray B. Karagoz, Grzegorz Godlewski, Tony Jourdan, Judith Harvey-White, Melanie Königshoff, Malliga R. Iyer, Resat Cinar
Abhishek Basu, Muhammad Arif, Kaelin M. Wolf, Madeline Behee, Natalie Johnson, Lenny Pommerolle, Ricardo H. Pineda, John Sembrat, Charles N. Zawatsky, Szabolcs Dvorácskó, Nathan J. Coffey, Joshua K. Park, Seray B. Karagoz, Grzegorz Godlewski, Tony Jourdan, Judith Harvey-White, Melanie Königshoff, Malliga R. Iyer, Resat Cinar
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Research Article Immunology Inflammation Pulmonology

Targeting cannabinoid receptor 1 for antagonism in pro-fibrotic alveolar macrophages mitigates pulmonary fibrosis

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Abstract

Pulmonary fibrosis (PF) is a life-threatening disease that requires effective and well-tolerated therapeutic modalities. Previously, the distinct pathogenic roles of cannabinoid receptor 1 (CB1R) and inducible nitric oxide synthase (iNOS) in the lungs and their joint therapeutic targeting were highlighted in PF. However, the cell-specific role of CB1R in PF has not been explored. Here, we demonstrate that CB1R in alveolar macrophages (AMs) mediates the release of anandamide into the alveoli, which promotes PF by inducing pro-fibrotic macrophages that are accessible to locally delivered antifibrotic therapy. A multitargeted therapy may improve therapeutic efficacy in PF. Pulmonary delivery of 0.5 mg/kg/d MRI-1867 (zevaquenabant), a peripherally acting hybrid CB1R/iNOS inhibitor, was as effective as systemic delivery of 10 mg/kg/d and also matched the efficacy of nintedanib in mitigating bleomycin-induced PF. A systems pharmacology approach revealed that zevaquenabant and nintedanib treatments reversed pathologic changes in both distinct and shared PF-related pathways, which are conserved in human and mouse. Moreover, zevaquenabant treatment also attenuated fibrosis and pro-fibrotic mediators in human precision-cut lung slices. These findings establish CB1R-expressing AMs as a therapeutic target and support local delivery of dual CB1R/iNOS inhibitor zevaquenabant by inhalation as an effective, well-tolerated, and safe strategy for PF.

Authors

Abhishek Basu, Muhammad Arif, Kaelin M. Wolf, Madeline Behee, Natalie Johnson, Lenny Pommerolle, Ricardo H. Pineda, John Sembrat, Charles N. Zawatsky, Szabolcs Dvorácskó, Nathan J. Coffey, Joshua K. Park, Seray B. Karagoz, Grzegorz Godlewski, Tony Jourdan, Judith Harvey-White, Melanie Königshoff, Malliga R. Iyer, Resat Cinar

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Figure 5

Pulmonary delivery of MRI-1867 at a reduced dose reveals antifibrotic efficacy.

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Pulmonary delivery of MRI-1867 at a reduced dose reveals antifibrotic ef...
(A and B) Pharmacokinetic profile and area under the curve of MRI-1867 at 0.5 mg/kg b.w. O.P. and 10 mg/kg b.w. I.P. doses showing similar concentrations in the lungs over 24 hours (unpaired t test, P > 0.05, n = 3 per group). (C and D) Comparative exposure of MRI-1867 in the serum and brain between O.P. (0.5 mg/kg b.w.) and I.P. (10 mg/kg b.w.) doses, indicating reduced exposure via pulmonary delivery (n = 3 per group). (E) Upper gastrointestinal motility assay showing in vivo systemic peripheral CB1R antagonism potency of MRI-1867 (1-way ANOVA, ****P < 0.0001, **P < 0.01, n = 5–8 per group). (F) Improvement in body weight loss was found after treatment with MRI-1867 (n = 8–10 per group). (G) Attenuation of hydroxyproline content by MRI-1867 treatment showing antifibrotic efficacy (1-way ANOVA, ****P < 0.0001, **P < 0.01, n = 8–22 per group). (H) Masson’s trichrome staining of the mice lung showed a reduction in the collagen deposition and alveolar space constriction by the treatment with MRI-1867. (I and J) MRI-1867 via both O.P. and I.P. dosage showed comparable improvement in pulmonary functions as depicted by FEV and FVC (1-way ANOVA, ****P < 0.0001, ***P < 0.001, **P < 0.01, *P < 0.05, n = 4–14 per group). (K and L) MRI-1867 at both dosages reduced anandamide levels in the BALF and lungs (1-way ANOVA, ****P < 0.0001, **P < 0.01, *P < 0.05, n = 4–7 per group). (M and N) MRI-1867 at 0.5 mg/kg b.w. O.P. dose reduced the gene expression of Cnr1 and Nos2 at a similar degree as compared with the I.P. dose of 10 mg/kg b.w. (1-way ANOVA, ***P < 0.001, **P < 0.01, *P < 0.05, n = 4–14 per group.) GI, gastrointestinal.

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