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Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish

Cathepsin K (Cat K) is a predominant cysteine protease and highly potent collagenase expressed in osteoclasts. Cat K inhibitors are anti-resorptive agents to treat osteoporosis. A novel scaffold of cathepsin K inhibitors, exemplified by lead compound 1x, was used as the template for designing and sy...

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Autores principales: Xue, Si-tu, Wang, Ya-li, Han, Xiao-wan, Yi, Hong, Jiang, Wei, Si, Shu-yi, Guo, Hui-fang, Li, Zhuo-rong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9061869/
https://www.ncbi.nlm.nih.gov/pubmed/35518710
http://dx.doi.org/10.1039/c8ra10338k
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author Xue, Si-tu
Wang, Ya-li
Han, Xiao-wan
Yi, Hong
Jiang, Wei
Si, Shu-yi
Guo, Hui-fang
Li, Zhuo-rong
author_facet Xue, Si-tu
Wang, Ya-li
Han, Xiao-wan
Yi, Hong
Jiang, Wei
Si, Shu-yi
Guo, Hui-fang
Li, Zhuo-rong
author_sort Xue, Si-tu
collection PubMed
description Cathepsin K (Cat K) is a predominant cysteine protease and highly potent collagenase expressed in osteoclasts. Cat K inhibitors are anti-resorptive agents to treat osteoporosis. A novel scaffold of cathepsin K inhibitors, exemplified by lead compound 1x, was used as the template for designing and synthesizing a total of 61 derivatives that have not been reported before. An exploratory structure–activity relationship analysis identified the potent Cat K inhibitor A22, which displayed an IC(50) value of 0.44 μM against Cat K. A22 was very specific for Cat K and caused a significantly higher in vitro inhibition of the enzyme as compared to that of lead compound 1x. A surface plasmon resonance analysis confirmed in vitro binding of A22 to Cat K. Molecular docking studies indicated several favourable interaction sites for A22 within the active pocket of Cat K. Furthermore, A22 also blocked active osteoclasts in vitro and increased spinal bone density in zebrafish, in which it showed an activity that was higher than that of the marketed therapeutic bone metabolizer etidronate disodium. A22 represents a very promising lead compound for the development of novel antiresorptive agents functioning as orthosteric inhibitors of Cat K.
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spelling pubmed-90618692022-05-04 Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish Xue, Si-tu Wang, Ya-li Han, Xiao-wan Yi, Hong Jiang, Wei Si, Shu-yi Guo, Hui-fang Li, Zhuo-rong RSC Adv Chemistry Cathepsin K (Cat K) is a predominant cysteine protease and highly potent collagenase expressed in osteoclasts. Cat K inhibitors are anti-resorptive agents to treat osteoporosis. A novel scaffold of cathepsin K inhibitors, exemplified by lead compound 1x, was used as the template for designing and synthesizing a total of 61 derivatives that have not been reported before. An exploratory structure–activity relationship analysis identified the potent Cat K inhibitor A22, which displayed an IC(50) value of 0.44 μM against Cat K. A22 was very specific for Cat K and caused a significantly higher in vitro inhibition of the enzyme as compared to that of lead compound 1x. A surface plasmon resonance analysis confirmed in vitro binding of A22 to Cat K. Molecular docking studies indicated several favourable interaction sites for A22 within the active pocket of Cat K. Furthermore, A22 also blocked active osteoclasts in vitro and increased spinal bone density in zebrafish, in which it showed an activity that was higher than that of the marketed therapeutic bone metabolizer etidronate disodium. A22 represents a very promising lead compound for the development of novel antiresorptive agents functioning as orthosteric inhibitors of Cat K. The Royal Society of Chemistry 2019-03-14 /pmc/articles/PMC9061869/ /pubmed/35518710 http://dx.doi.org/10.1039/c8ra10338k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xue, Si-tu
Wang, Ya-li
Han, Xiao-wan
Yi, Hong
Jiang, Wei
Si, Shu-yi
Guo, Hui-fang
Li, Zhuo-rong
Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish
title Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish
title_full Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish
title_fullStr Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish
title_full_unstemmed Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish
title_short Novel cathepsin K inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish
title_sort novel cathepsin k inhibitors block osteoclasts in vitro and increase spinal bone density in zebrafish
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9061869/
https://www.ncbi.nlm.nih.gov/pubmed/35518710
http://dx.doi.org/10.1039/c8ra10338k
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