Cargando…

Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3

BACKGROUND AND PURPOSE: The chemokine receptor CXCR3 directs migration of T-cells in response to the ligands CXCL9/Mig, CXCL10/IP-10 and CXCL11/I-TAC. Both ligands and receptors are implicated in the pathogenesis of inflammatory disorders, including atherosclerosis and rheumatoid arthritis. Here, we...

Descripción completa

Detalles Bibliográficos
Autores principales: Nedjai, Belinda, Li, Hubert, Stroke, Ilana L, Wise, Emma L, Webb, Maria L, Merritt, J Robert, Henderson, Ian, Klon, Anthony E, Cole, Andrew G, Horuk, Richard, Vaidehi, Nagarajan, Pease, James E
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3417418/
https://www.ncbi.nlm.nih.gov/pubmed/21895630
http://dx.doi.org/10.1111/j.1476-5381.2011.01660.x
_version_ 1782240499387596800
author Nedjai, Belinda
Li, Hubert
Stroke, Ilana L
Wise, Emma L
Webb, Maria L
Merritt, J Robert
Henderson, Ian
Klon, Anthony E
Cole, Andrew G
Horuk, Richard
Vaidehi, Nagarajan
Pease, James E
author_facet Nedjai, Belinda
Li, Hubert
Stroke, Ilana L
Wise, Emma L
Webb, Maria L
Merritt, J Robert
Henderson, Ian
Klon, Anthony E
Cole, Andrew G
Horuk, Richard
Vaidehi, Nagarajan
Pease, James E
author_sort Nedjai, Belinda
collection PubMed
description BACKGROUND AND PURPOSE: The chemokine receptor CXCR3 directs migration of T-cells in response to the ligands CXCL9/Mig, CXCL10/IP-10 and CXCL11/I-TAC. Both ligands and receptors are implicated in the pathogenesis of inflammatory disorders, including atherosclerosis and rheumatoid arthritis. Here, we describe the molecular mechanism by which two synthetic small molecule agonists activate CXCR3. EXPERIMENTAL APPROACH: As both small molecules are basic, we hypothesized that they formed electrostatic interactions with acidic residues within CXCR3. Nine point mutants of CXCR3 were generated in which an acidic residue was mutated to its amide counterpart. Following transient expression, the ability of the constructs to bind and signal in response to natural and synthetic ligands was examined. KEY RESULTS: The CXCR3 mutants D112N, D195N and E196Q were efficiently expressed and responsive in chemotaxis assays to CXCL11 but not to CXCL10 or to either of the synthetic agonists, confirmed with radioligand binding assays. Molecular modelling of both CXCL10 and CXCR3 suggests that the small molecule agonists mimic a region of the ‘30s loop’ (residues 30–40 of CXCL10) which interacts with the intrahelical CXCR3 residue D112, leading to receptor activation. D195 and E196 are located in the second extracellular loop and form putative intramolecular salt bridges required for a CXCR3 conformation that recognizes CXCL10. In contrast, CXCL11 recognition by CXCR3 is largely independent of these residues. CONCLUSION AND IMPLICATIONS: We provide here a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3. Such findings may have implications for the design of CXCR3 antagonists. LINKED ARTICLE: This article is commented on by O'Boyle, pp. 895–897 of this issue. To view this commentary visit http://dx.doi.org/10.1111/j.1476-5381.2011.01759.x
format Online
Article
Text
id pubmed-3417418
institution National Center for Biotechnology Information
language English
publishDate 2012
publisher Blackwell Publishing Ltd
record_format MEDLINE/PubMed
spelling pubmed-34174182012-08-27 Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3 Nedjai, Belinda Li, Hubert Stroke, Ilana L Wise, Emma L Webb, Maria L Merritt, J Robert Henderson, Ian Klon, Anthony E Cole, Andrew G Horuk, Richard Vaidehi, Nagarajan Pease, James E Br J Pharmacol Research Papers with Commentary BACKGROUND AND PURPOSE: The chemokine receptor CXCR3 directs migration of T-cells in response to the ligands CXCL9/Mig, CXCL10/IP-10 and CXCL11/I-TAC. Both ligands and receptors are implicated in the pathogenesis of inflammatory disorders, including atherosclerosis and rheumatoid arthritis. Here, we describe the molecular mechanism by which two synthetic small molecule agonists activate CXCR3. EXPERIMENTAL APPROACH: As both small molecules are basic, we hypothesized that they formed electrostatic interactions with acidic residues within CXCR3. Nine point mutants of CXCR3 were generated in which an acidic residue was mutated to its amide counterpart. Following transient expression, the ability of the constructs to bind and signal in response to natural and synthetic ligands was examined. KEY RESULTS: The CXCR3 mutants D112N, D195N and E196Q were efficiently expressed and responsive in chemotaxis assays to CXCL11 but not to CXCL10 or to either of the synthetic agonists, confirmed with radioligand binding assays. Molecular modelling of both CXCL10 and CXCR3 suggests that the small molecule agonists mimic a region of the ‘30s loop’ (residues 30–40 of CXCL10) which interacts with the intrahelical CXCR3 residue D112, leading to receptor activation. D195 and E196 are located in the second extracellular loop and form putative intramolecular salt bridges required for a CXCR3 conformation that recognizes CXCL10. In contrast, CXCL11 recognition by CXCR3 is largely independent of these residues. CONCLUSION AND IMPLICATIONS: We provide here a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3. Such findings may have implications for the design of CXCR3 antagonists. LINKED ARTICLE: This article is commented on by O'Boyle, pp. 895–897 of this issue. To view this commentary visit http://dx.doi.org/10.1111/j.1476-5381.2011.01759.x Blackwell Publishing Ltd 2012-06 /pmc/articles/PMC3417418/ /pubmed/21895630 http://dx.doi.org/10.1111/j.1476-5381.2011.01660.x Text en © 2011 The Authors. British Journal of Pharmacology © 2011 The British Pharmacological Society
spellingShingle Research Papers with Commentary
Nedjai, Belinda
Li, Hubert
Stroke, Ilana L
Wise, Emma L
Webb, Maria L
Merritt, J Robert
Henderson, Ian
Klon, Anthony E
Cole, Andrew G
Horuk, Richard
Vaidehi, Nagarajan
Pease, James E
Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3
title Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3
title_full Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3
title_fullStr Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3
title_full_unstemmed Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3
title_short Small molecule chemokine mimetics suggest a molecular basis for the observation that CXCL10 and CXCL11 are allosteric ligands of CXCR3
title_sort small molecule chemokine mimetics suggest a molecular basis for the observation that cxcl10 and cxcl11 are allosteric ligands of cxcr3
topic Research Papers with Commentary
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3417418/
https://www.ncbi.nlm.nih.gov/pubmed/21895630
http://dx.doi.org/10.1111/j.1476-5381.2011.01660.x
work_keys_str_mv AT nedjaibelinda smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT lihubert smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT strokeilanal smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT wiseemmal smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT webbmarial smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT merrittjrobert smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT hendersonian smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT klonanthonye smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT coleandrewg smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT horukrichard smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT vaidehinagarajan smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3
AT peasejamese smallmoleculechemokinemimeticssuggestamolecularbasisfortheobservationthatcxcl10andcxcl11areallostericligandsofcxcr3