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A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia

Fibroblast growth factor-23 (FGF-23) interacts with a binary receptor complex composed of α-Klotho (α-KL) and FGF receptors (FGFRs) to regulate phosphate and vitamin D metabolism in the kidney. Excess FGF-23 production, which causes hypophosphatemia, is genetically inherited or occurs with chronic k...

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Autores principales: Xiao, Zhousheng, Riccardi, Demian, Velazquez, Hector A., Chin, Ai L., Yates, Charles R., Carrick, Jesse D., Smith, Jeremy C., Baudry, Jerome, Quarles, L. Darryl
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6544179/
https://www.ncbi.nlm.nih.gov/pubmed/27879395
http://dx.doi.org/10.1126/scisignal.aaf5034
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author Xiao, Zhousheng
Riccardi, Demian
Velazquez, Hector A.
Chin, Ai L.
Yates, Charles R.
Carrick, Jesse D.
Smith, Jeremy C.
Baudry, Jerome
Quarles, L. Darryl
author_facet Xiao, Zhousheng
Riccardi, Demian
Velazquez, Hector A.
Chin, Ai L.
Yates, Charles R.
Carrick, Jesse D.
Smith, Jeremy C.
Baudry, Jerome
Quarles, L. Darryl
author_sort Xiao, Zhousheng
collection PubMed
description Fibroblast growth factor-23 (FGF-23) interacts with a binary receptor complex composed of α-Klotho (α-KL) and FGF receptors (FGFRs) to regulate phosphate and vitamin D metabolism in the kidney. Excess FGF-23 production, which causes hypophosphatemia, is genetically inherited or occurs with chronic kidney disease. Among other symptoms, hypophosphatemia causes vitamin D deficiency and the bone-softening disorder rickets. Current therapeutics that target the receptor complex have limited utility clinically. Using a computationally driven, structure-based, ensemble docking and virtual high-throughput screening approach, we identified four novel compounds predicted to selectively inhibit FGF-23-induced activation of the FGFR/α-KL complex. Additional modeling and functional analysis found that Zinc13407541 bound to FGF-23 and disrupted its interaction with the FGFR1/α-KL complex; experiments in a heterologous cell expression system showed that Zinc13407541 selectivity inhibited α-KL-dependent FGF-23 signaling. Zinc13407541 also inhibited FGF-23 signaling in isolated renal tubules ex vivo and partially reversed the hypophosphatemic effects of excess FGF-23 in a mouse model. These chemical probes provide a platform to develop lead compounds to treat disorders caused by excess FGF-23.
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spelling pubmed-65441792019-05-31 A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia Xiao, Zhousheng Riccardi, Demian Velazquez, Hector A. Chin, Ai L. Yates, Charles R. Carrick, Jesse D. Smith, Jeremy C. Baudry, Jerome Quarles, L. Darryl Sci Signal Article Fibroblast growth factor-23 (FGF-23) interacts with a binary receptor complex composed of α-Klotho (α-KL) and FGF receptors (FGFRs) to regulate phosphate and vitamin D metabolism in the kidney. Excess FGF-23 production, which causes hypophosphatemia, is genetically inherited or occurs with chronic kidney disease. Among other symptoms, hypophosphatemia causes vitamin D deficiency and the bone-softening disorder rickets. Current therapeutics that target the receptor complex have limited utility clinically. Using a computationally driven, structure-based, ensemble docking and virtual high-throughput screening approach, we identified four novel compounds predicted to selectively inhibit FGF-23-induced activation of the FGFR/α-KL complex. Additional modeling and functional analysis found that Zinc13407541 bound to FGF-23 and disrupted its interaction with the FGFR1/α-KL complex; experiments in a heterologous cell expression system showed that Zinc13407541 selectivity inhibited α-KL-dependent FGF-23 signaling. Zinc13407541 also inhibited FGF-23 signaling in isolated renal tubules ex vivo and partially reversed the hypophosphatemic effects of excess FGF-23 in a mouse model. These chemical probes provide a platform to develop lead compounds to treat disorders caused by excess FGF-23. 2016-11-22 /pmc/articles/PMC6544179/ /pubmed/27879395 http://dx.doi.org/10.1126/scisignal.aaf5034 Text en http://creativecommons.org/licenses/by-nc-nd/4.0/ exclusive licensee American Association for the Advancement of Science.
spellingShingle Article
Xiao, Zhousheng
Riccardi, Demian
Velazquez, Hector A.
Chin, Ai L.
Yates, Charles R.
Carrick, Jesse D.
Smith, Jeremy C.
Baudry, Jerome
Quarles, L. Darryl
A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia
title A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia
title_full A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia
title_fullStr A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia
title_full_unstemmed A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia
title_short A computationally identified compound antagonizes excess FGF-23 signaling in renal tubules and a mouse model of hypophosphatemia
title_sort computationally identified compound antagonizes excess fgf-23 signaling in renal tubules and a mouse model of hypophosphatemia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6544179/
https://www.ncbi.nlm.nih.gov/pubmed/27879395
http://dx.doi.org/10.1126/scisignal.aaf5034
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