| Literature DB >> 27842891 |
Sujay Basu1, Dinesh A Barawkar2, Vidya Ramdas2, Yogesh Waman2, Meena Patel2, Anil Panmand2, Santosh Kumar2, Sachin Thorat2, Rajesh Bonagiri2, Dilip Jadhav2, Partha Mukhopadhyay2, Vandna Prasad2, B Srinivasa Reddy2, Arnab Goswami2, Sandhya Chaturvedi2, Suraj Menon2, Azfar Quraishi2, Indraneel Ghosh2, Sushant Dusange2, Shalini Paliwal2, Abhay Kulkarni2, Vikas Karande2, Rhishikesh Thakre2, Gaurav Bedse2, Sreekanth Rouduri2, Jayasagar Gundu2, Venkata P Palle2, Anita Chugh2, Kasim A Mookhtiar3.
Abstract
A2BAdoR is a low affinity adenosine receptor that functions by Gs mediated elevation of cAMP and subsequent downstream signaling. The receptor has been implicated in lung inflammatory disorders like COPD and asthma. Several potent and selective A2BAdoR antagonists have been reported in literature, however most of the compounds suffer from poor pharmacokinetic profile. Therefore, with the aim to identify novel, potent and selective A2BAdoR antagonists with improved pharmacokinetic properties, we first explored more constrained form of MRS-1754 (4). To improve the metabolic stability, several linker modifications were attempted as replacement of amide linker along with different phenyl or other heteroaryls between C8 position of xanthine head group and terminal phenyl ring. SAR optimization resulted in identification of two novel A2BAdoR antagonists, 8-{1-[5-Oxo-1-(4-trifluoromethyl-phenyl)-pyrrolidin-3-ylmethyl]-1H-pyrazol-4-yl}-1,3-dipropyl-xanthine (31) and 8-(1-{2-Oxo-2-[4-(3-trifluoromethyl-phenyl)-piperazin-1-yl]-ethyl}-1H-pyrazol-4-yl)-1,3-dipropyl-xanthine (65), with high binding affinity (Ki = 1 and 1.5 nM, respectively) and selectivity for A2BAdoR with very good functional potency of 0.9 nM and 4 nM, respectively. Compound 31 and 65 also displayed good pharmacokinetic properties in mice with 27% and 65% oral bioavailability respectively. When evaluated in in vivo mice model of asthma, compound 65 also inhibited airway inflammation and airway reactivity in ovalbumin induced allergic asthma at 3 mpk dose.Entities:
Keywords: 2-Oxopyrrolidine; Adenosine receptors; Mouse liver microsomes; Pharmacokinetics; Xanthine
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Year: 2016 PMID: 27842891 DOI: 10.1016/j.ejmech.2016.11.007
Source DB: PubMed Journal: Eur J Med Chem ISSN: 0223-5234 Impact factor: 6.514