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Published on: January 1, 2017
Structure-based design of an osteoclast-selective, nonpeptide src homology 2 inhibitor with in vivo antiresorptive
W Shakespeare1, M Yang, R Bohacek
1ARIAD Pharmaceuticals, Inc., Cambridge, MA 02139, USA. shakespw@ariad.com
Abstract:
Targeted disruption of the pp60(src) (Src) gene has implicated this tyrosine kinase in osteoclast-mediated bone resorption and as a therapeutic target for the treatment of osteoporosis and other bone-related diseases. Herein we describe the discovery of a nonpeptide inhibitor (AP22408) of Src that demonstrates in vivo antiresorptive activity. Based on a cocrystal structure of the noncatalytic Src homology 2 (SH2) domain of Src complexed with citrate [in the phosphotyrosine (pTyr) binding pocket], we designed 3',4'-diphosphonophenylalanine (Dpp) as a pTyr mimic. In addition to its design to bind Src SH2, the Dpp moiety exhibits bone-targeting properties that confer osteoclast selectivity, hence minimizing possible undesired effects on other cells that have Src-dependent activities. The chemical structure AP22408 also illustrates a bicyclic template to replace the post-pTyr sequence of cognate Src SH2 phosphopeptides such as Ac-pTyr-Glu-Glu-Ile (1). An x-ray structure of AP22408 complexed with Lck (S164C) SH2 confirmed molecular interactions of both the Dpp and bicyclic template of AP22408 as predicted from molecular modeling. Relative to the cognate phosphopeptide, AP22408 exhibits significantly increased Src SH2 binding affinity (IC(50) = 0.30 microM for AP22408 and 5.5 microM for 1). Furthermore, AP22408 inhibits rabbit osteoclast-mediated resorption of dentine in a cellular assay, exhibits bone-targeting properties based on a hydroxyapatite adsorption assay, and demonstrates in vivo antiresorptive activity in a parathyroid hormone-induced rat model.
Insights
Researchers discovered AP22408, a nonpeptide inhibitor of pp60(src) (Src) tyrosine kinase. This novel compound shows in vivo antiresorptive activity and targets osteoclasts, offering a potential treatment for bone diseases like osteoporosis.
Area of Science:
- Biochemistry
- Pharmacology
- Bone Biology
Background:
- pp60(src) (Src) tyrosine kinase is crucial for osteoclast function and bone resorption.
- Targeting Src is a promising therapeutic strategy for osteoporosis and other bone diseases.
Purpose of the Study:
- To discover and characterize a novel nonpeptide inhibitor of Src with in vivo antiresorptive activity.
- To design a bone-targeting Src inhibitor for enhanced osteoclast selectivity.
Main Methods:
- Structure-based design of a phosphotyrosine (pTyr) mimic (3',4'-diphosphonophenylalanine, Dpp) and a bicyclic template.
- X-ray crystallography to confirm binding of AP22408 to Lck SH2 domain.
- In vitro assays for Src SH2 binding affinity, osteoclast-mediated bone resorption, and hydroxyapatite adsorption.
- In vivo antiresorptive activity assessment in a rat model.
Main Results:
- AP22408 demonstrated significantly higher Src SH2 binding affinity compared to a cognate phosphopeptide.
- The compound exhibited bone-targeting properties and osteoclast selectivity.
- AP22408 effectively inhibited osteoclast-mediated bone resorption in vitro and in vivo.
Conclusions:
- AP22408 is a potent, bone-targeting nonpeptide Src inhibitor with demonstrated in vivo antiresorptive activity.
- The Dpp moiety and bicyclic template contribute to its efficacy and selectivity.
- AP22408 represents a promising therapeutic candidate for osteoporosis and related bone disorders.
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