A composite docking approach for the identification and characterization of ectosteric inhibitors of cathepsin K
Simon Law1,2, Preety Panwar2,3, Jody Li2,3
1Department of Biochemistry and Molecular Biology, Faculty of Medicine, University of British Columbia, Vancouver, British Columbia, Canada.
Abstract:
Cathepsin K (CatK) is a cysteine protease that plays an important role in mammalian intra- and extracellular protein turnover and is known for its unique and potent collagenase activity. Through studies on the mechanism of its collagenase activity, selective ectosteric sites were identified that are remote from the active site. Inhibitors targeting these ectosteric sites are collagenase selective and do not interfere with other proteolytic activities of the enzyme. Potential ectosteric inhibitors were identified using a computational approach to screen the druggable subset of and the entire 281,987 compounds comprising Chemical Repository library of the National Cancer Institute-Developmental Therapeutics Program (NCI-DTP). Compounds were scored based on their affinity for the ectosteric site. Here we compared the scores of three individual molecular docking methods with that of a composite score of all three methods together. The composite docking method was up to five-fold more effective at identifying potent collagenase inhibitors (IC50 < 20 μM) than the individual methods. Of 160 top compounds tested in enzymatic assays, 28 compounds revealed blocking of the collagenase activity of CatK at 100 μM. Two compounds exhibited IC50 values below 5 μM corresponding to a molar protease:inhibitor concentration of <1:12. Both compounds were subsequently tested in osteoclast bone resorption assays where the most potent inhibitor, 10-[2-[bis(2-hydroxyethyl)amino]ethyl]-7,8-diethylbenzo[g]pteridine-2,4-dione, (NSC-374902), displayed an inhibition of bone resorption with an IC50-value of approximately 300 nM and no cell toxicity effects.
Insights
Researchers identified selective inhibitors for Cathepsin K (CatK) collagenase activity using a composite docking method. This approach effectively identified potent inhibitors, with one compound significantly reducing bone resorption without toxicity.
Area of Science:
- Biochemistry
- Pharmacology
- Computational Chemistry
Background:
- Cathepsin K (CatK) is a cysteine protease crucial for protein turnover with potent collagenase activity.
- Selective ectosteric sites, remote from the active site, were identified for targeted inhibition.
- Ectosteric inhibitors offer collagenase selectivity, avoiding interference with other proteolytic functions.
Purpose of the Study:
- To identify selective ectosteric inhibitors of Cathepsin K (CatK) collagenase activity.
- To evaluate the efficacy of a composite molecular docking approach compared to individual methods.
- To assess the potential of identified inhibitors in blocking bone resorption.
Main Methods:
- Computational screening of the NCI-DTP Chemical Repository library using molecular docking.
- Comparison of three individual docking methods against a composite docking score.
- Enzymatic assays to test collagenase inhibition and osteoclast bone resorption assays.
Main Results:
- The composite docking method was up to five-fold more effective in identifying potent CatK collagenase inhibitors.
- 28 out of 160 tested compounds inhibited CatK collagenase activity at 100 μM.
- Two compounds showed IC50 values below 5 μM; one demonstrated potent inhibition of bone resorption (~300 nM IC50) without cytotoxicity.
Conclusions:
- A composite docking strategy enhances the identification of selective CatK ectosteric inhibitors.
- The identified inhibitor NSC-374902 shows significant potential for therapeutic applications in bone-related disorders.
- Targeting ectosteric sites offers a promising strategy for developing selective CatK inhibitors.
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