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One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes

Protein immobilization techniques play an important role in the development of assays for disease diagnosis and drug discovery. However, many of these approaches are not applicable to transmembrane proteins. G protein-coupled receptors (GPCRs) are the largest protein superfamily encoded by the human...

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Autores principales: Zeng, Kaizhu, Li, Qian, Wang, Jing, Yin, Guowei, Zhang, Yajun, Xiao, Chaoni, Fan, Taiping, Zhao, Xinfeng, Zheng, Xiaohui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5868316/
https://www.ncbi.nlm.nih.gov/pubmed/29629116
http://dx.doi.org/10.1039/c7sc03887a
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author Zeng, Kaizhu
Li, Qian
Wang, Jing
Yin, Guowei
Zhang, Yajun
Xiao, Chaoni
Fan, Taiping
Zhao, Xinfeng
Zheng, Xiaohui
author_facet Zeng, Kaizhu
Li, Qian
Wang, Jing
Yin, Guowei
Zhang, Yajun
Xiao, Chaoni
Fan, Taiping
Zhao, Xinfeng
Zheng, Xiaohui
author_sort Zeng, Kaizhu
collection PubMed
description Protein immobilization techniques play an important role in the development of assays for disease diagnosis and drug discovery. However, many of these approaches are not applicable to transmembrane proteins. G protein-coupled receptors (GPCRs) are the largest protein superfamily encoded by the human genome and are targeted by a quarter of all prescription drugs. GPCRs are highly dynamic and sensitive to changes in the ambient environment, and current immobilization methodologies are not suitable for GPCRs. We used haloalkane dehalogenase (Halo) as an immobilization tag fused to the β(2)-adrenoceptor (β(2)-AR), angiotensin II type 1 (AT(1)) and angiotensin II type 2 (AT(2)) receptors. The engineered Halo-tag covalently binds to a specific substrate chloroalkane through Asp 106 in the catalytic pocket. The Halo-tagged GPCRs were expressed in Escherichia coli at a suitable yield. Accordingly, we loaded cell lysate containing Halo-tagged GPCRs onto a macroporous silica gel coated with chloroalkane. Morphological characterization indicated a homogeneous monolayer of immobilized Halo-tagged GPCRs on the silica gel surface. The immobilized receptors proved to be surrounded by specific bound phospholipids including PG C18:1/C18:1. We observed a radio-ligand binding ability and ligand-induced conformational changes in the immobilized GPCRs, suggesting the preservation of bioactivity. This method is a one-step approach for the specific immobilization of GPCRs from cell lysates and validates that immobilized receptors retain canonical ligand binding capacity. Our immobilization strategy circumvents labor-intensive purification procedures and minimizes loss of activity. The immobilized receptors can be applied to high-throughput drug and interaction partner screening for GPCRs.
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spelling pubmed-58683162018-04-06 One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes Zeng, Kaizhu Li, Qian Wang, Jing Yin, Guowei Zhang, Yajun Xiao, Chaoni Fan, Taiping Zhao, Xinfeng Zheng, Xiaohui Chem Sci Chemistry Protein immobilization techniques play an important role in the development of assays for disease diagnosis and drug discovery. However, many of these approaches are not applicable to transmembrane proteins. G protein-coupled receptors (GPCRs) are the largest protein superfamily encoded by the human genome and are targeted by a quarter of all prescription drugs. GPCRs are highly dynamic and sensitive to changes in the ambient environment, and current immobilization methodologies are not suitable for GPCRs. We used haloalkane dehalogenase (Halo) as an immobilization tag fused to the β(2)-adrenoceptor (β(2)-AR), angiotensin II type 1 (AT(1)) and angiotensin II type 2 (AT(2)) receptors. The engineered Halo-tag covalently binds to a specific substrate chloroalkane through Asp 106 in the catalytic pocket. The Halo-tagged GPCRs were expressed in Escherichia coli at a suitable yield. Accordingly, we loaded cell lysate containing Halo-tagged GPCRs onto a macroporous silica gel coated with chloroalkane. Morphological characterization indicated a homogeneous monolayer of immobilized Halo-tagged GPCRs on the silica gel surface. The immobilized receptors proved to be surrounded by specific bound phospholipids including PG C18:1/C18:1. We observed a radio-ligand binding ability and ligand-induced conformational changes in the immobilized GPCRs, suggesting the preservation of bioactivity. This method is a one-step approach for the specific immobilization of GPCRs from cell lysates and validates that immobilized receptors retain canonical ligand binding capacity. Our immobilization strategy circumvents labor-intensive purification procedures and minimizes loss of activity. The immobilized receptors can be applied to high-throughput drug and interaction partner screening for GPCRs. Royal Society of Chemistry 2017-10-19 /pmc/articles/PMC5868316/ /pubmed/29629116 http://dx.doi.org/10.1039/c7sc03887a Text en This journal is © The Royal Society of Chemistry 2018 https://creativecommons.org/licenses/by/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Zeng, Kaizhu
Li, Qian
Wang, Jing
Yin, Guowei
Zhang, Yajun
Xiao, Chaoni
Fan, Taiping
Zhao, Xinfeng
Zheng, Xiaohui
One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes
title One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes
title_full One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes
title_fullStr One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes
title_full_unstemmed One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes
title_short One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes
title_sort one-step methodology for the direct covalent capture of gpcrs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5868316/
https://www.ncbi.nlm.nih.gov/pubmed/29629116
http://dx.doi.org/10.1039/c7sc03887a
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