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Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis

Trytophan Hydroxylase Type I (TPH1), most abundantly expressed in the gastrointestinal tract, initiates the synthesis of serotonin by catalyzing hydroxylation of tryptophan in the presence of biopterin and oxygen. We have previously described three series of novel, periphery-specific TPH1 inhibitors...

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Autores principales: Cianchetta, Giovanni, Stouch, Terry, Yu, Wangsheng, Shi, Zhi-Cai, Tari, Leslie W., Swanson, Ronald V., Hunter, Michael J, Hoffman, Isaac D., Liu, Qingyun
Formato: Texto
Lenguaje:English
Publicado: Bentham Open 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2885594/
https://www.ncbi.nlm.nih.gov/pubmed/20556201
http://dx.doi.org/10.2174/1875397301004010019
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author Cianchetta, Giovanni
Stouch, Terry
Yu, Wangsheng
Shi, Zhi-Cai
Tari, Leslie W.
Swanson, Ronald V.
Hunter, Michael J
Hoffman, Isaac D.
Liu, Qingyun
author_facet Cianchetta, Giovanni
Stouch, Terry
Yu, Wangsheng
Shi, Zhi-Cai
Tari, Leslie W.
Swanson, Ronald V.
Hunter, Michael J
Hoffman, Isaac D.
Liu, Qingyun
author_sort Cianchetta, Giovanni
collection PubMed
description Trytophan Hydroxylase Type I (TPH1), most abundantly expressed in the gastrointestinal tract, initiates the synthesis of serotonin by catalyzing hydroxylation of tryptophan in the presence of biopterin and oxygen. We have previously described three series of novel, periphery-specific TPH1 inhibitors that selectively deplete serotonin in the gastrointestinal tract. We have now determined co-crystal structures of TPH1 with three of these inhibitors at high resolution. Analysis of the structural data showed that each of the three inhibitors fills the tryptophan binding pocket of TPH1 without reaching into the binding site of the cofactor pterin, and induces major conformational changes of the enzyme. The enzyme-inhibitor complexes assume a compact conformation that is similar to the one in tryptophan complex. Kinetic analysis showed that all three inhibitors are competitive versus the substrate tryptophan, consistent with the structural data that the compounds occupy the tryptophan binding site. On the other hand, all three inhibitors appear to be uncompetitive versus the cofactor 6-methyltetrahydropterin, which is not only consistent with the structural data but also indicate that the hydroxylation reaction follows an ordered binding mechanism in which a productive complex is formed only if tryptophan binds only after pterin, similar to the kinetic mechanisms of tyrosine and phenylalanine hydroxylase.
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spelling pubmed-28855942010-06-16 Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis Cianchetta, Giovanni Stouch, Terry Yu, Wangsheng Shi, Zhi-Cai Tari, Leslie W. Swanson, Ronald V. Hunter, Michael J Hoffman, Isaac D. Liu, Qingyun Curr Chem Genomics Article Trytophan Hydroxylase Type I (TPH1), most abundantly expressed in the gastrointestinal tract, initiates the synthesis of serotonin by catalyzing hydroxylation of tryptophan in the presence of biopterin and oxygen. We have previously described three series of novel, periphery-specific TPH1 inhibitors that selectively deplete serotonin in the gastrointestinal tract. We have now determined co-crystal structures of TPH1 with three of these inhibitors at high resolution. Analysis of the structural data showed that each of the three inhibitors fills the tryptophan binding pocket of TPH1 without reaching into the binding site of the cofactor pterin, and induces major conformational changes of the enzyme. The enzyme-inhibitor complexes assume a compact conformation that is similar to the one in tryptophan complex. Kinetic analysis showed that all three inhibitors are competitive versus the substrate tryptophan, consistent with the structural data that the compounds occupy the tryptophan binding site. On the other hand, all three inhibitors appear to be uncompetitive versus the cofactor 6-methyltetrahydropterin, which is not only consistent with the structural data but also indicate that the hydroxylation reaction follows an ordered binding mechanism in which a productive complex is formed only if tryptophan binds only after pterin, similar to the kinetic mechanisms of tyrosine and phenylalanine hydroxylase. Bentham Open 2010-04-14 /pmc/articles/PMC2885594/ /pubmed/20556201 http://dx.doi.org/10.2174/1875397301004010019 Text en © Cianchetta et al.; Licensee Bentham Open. http://creativecommons.org/licenses/by-nc/3.0/ This is an open access article licensed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted, non-commercial use, distribution and reproduction in any medium, provided the work is properly cited.
spellingShingle Article
Cianchetta, Giovanni
Stouch, Terry
Yu, Wangsheng
Shi, Zhi-Cai
Tari, Leslie W.
Swanson, Ronald V.
Hunter, Michael J
Hoffman, Isaac D.
Liu, Qingyun
Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis
title Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis
title_full Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis
title_fullStr Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis
title_full_unstemmed Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis
title_short Mechanism of Inhibition of Novel Tryptophan Hydroxylase Inhibitors Revealed by Co-crystal Structures and Kinetic Analysis
title_sort mechanism of inhibition of novel tryptophan hydroxylase inhibitors revealed by co-crystal structures and kinetic analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2885594/
https://www.ncbi.nlm.nih.gov/pubmed/20556201
http://dx.doi.org/10.2174/1875397301004010019
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