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bioRxiv · 10.1101/2020.06.07.138867

Modelling the effects of PPARβδ of innate inflammatory responses in lung tissues

Abstract

Peroxisome proliferator activated receptor beta/delta (PPAR{beta}/{delta}) is a nuclear receptor ubiquitously expressed in cells whose signaling controls inflammation and metabolism. However, there are great discrepancies in understanding the role of PPAR{beta}/{delta}, having both anti- and pro-effects on inflammation. Understanding the PPAR{beta}/{delta} mechanism of action may provide new molecular mechanisms for treating a variety of inflammatory-related diseases. We studied the PPAR{beta}/{delta}-regulation of LPS-induced inflammation of pulmonary artery, bronchi and parenchyma from rat, using different combinations of agonists (GW0742 or L-165402) and antagonists (GSK3787 or GSK0660). LPS-induced inflammation is largely regulated by PPAR{beta}/{delta} in the pulmonary artery, but it is a minor factor in bronchi or parenchyma. Agonists do not significantly inhibit inflammation, but activates the PPAR{beta}/{delta} induction mode of action. Surprisingly, co-incubation of the tissue with agonist plus antagonist shows anti-inflammatory effects and switches the PPAR{beta}/{delta} mode of action from induction to trans-repression, indicating that the PPAR{beta}/{delta} induction mode of action is pro-inflammatory and the trans-repression anti-inflammatory. Us of Computational chemistry methods indicates that PPAR{beta}/{delta} agonists are predicted to form polar interactions with the residues His287, His413 and Tyr437 whilst PPAR{beta}/{delta} antagonists form polar interactions with the residues Thr252 and Asn307. Further, our modelling indicates favorable binding energies and the feasibility of simultaneous binding of two ligands in the PPAR{beta}/{delta} binding pocket. In summary, this study provides novel insight into the complex relationship between ligand binding profiles and functional outcomes in a rat lung inflammation model, which will help inform the design of novel therapies for inflammatory lung diseases.

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BibTeXRIS

Perez-Diaz, N., Lione, L. A., Hutter, V., Mackenzie, L. S.. 2020-06-07. Modelling the effects of PPARβδ of innate inflammatory responses in lung tissues. https://doi.org/10.1101/2020.06.07.138867

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