Overview of the Mechanisms that May Contribute to the Non-Redundant Activities of Interferon-Inducible CXC Chemokine Receptor 3 Ligands

被引:205
作者
Metzemaekers, Mieke [1 ]
Vanheule, Vincent [1 ]
Janssens, Rik [1 ]
Struyf, Sofie [1 ]
Proost, Paul [1 ]
机构
[1] Katholieke Univ Leuven, Rega Inst, Dept Microbiol & Immunol, Lab Mol Immunol, Leuven, Belgium
来源
FRONTIERS IN IMMUNOLOGY | 2018年 / 8卷
关键词
chemokine; CXCR3; G protein-coupled receptor; interferon-gamma; leukocyte migration; glycosaminoglycan; inflammation; posttranslational modification; DIPEPTIDYL PEPTIDASE-IV; CELL-ALPHA CHEMOATTRACTANT; REGULATORY T-CELLS; HIGH-AFFINITY BINDING; PLATELET FACTOR-IV; IN-VIVO; IFN-GAMMA; RHEUMATOID-ARTHRITIS; ENDOTHELIAL-CELLS; GLYCOSAMINOGLYCAN-BINDING;
D O I
10.3389/fimmu.2017.01970
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
The inflammatory chemokines CXCL9, CXCL10, and CXCL11 are predominantly induced by interferon (IFN)-gamma and share an exclusive chemokine receptor named CXC chemokine receptor 3 (CXCR3). With a prototype function of directing temporal and spatial migration of activated T cells and natural killer cells, and inhibitory effects on angiogenesis, these CXCR3 ligands have been implicated in infection, acute inflammation, autoinflammation and autoimmunity, as well as in cancer. Intense former research efforts led to recent and ongoing clinical trials using CXCR3 and CXCR3 ligand targeting molecules. Scientific evidence has claimed mutual redundancy, ligand dominance, collaboration or even antagonism, depending on the (patho) physiological context. Most research on their in vivo activity, however, illustrates that CXCL9, CXCL10, and CXCL11 each contribute to the activation and trafficking of CXCR3 expressing cells in a non-redundant manner. When looking into detail, one can unravel a multistep machinery behind final CXCR3 ligand functions. Not only can specific cell types secrete individual CXCR3 interacting chemokines in response to certain stimuli, but also the receptor and glycosaminoglycan interactions, major associated intracellular pathways and susceptibility to processing by particular enzymes, among others, seem ligand-specific. Here, we overview major aspects of the molecular properties and regulatory mechanisms of IFN-induced CXCR3 ligands, and propose that their in vivo non-redundancy is a reflection of the unprecedented degree of versatility that seems inherent to the IFN-related CXCR3 chemokine system.
引用
收藏
页数:21
相关论文
共 224 条
[1]   Tissue-specific programming of memory CD8 T cell subsets impacts protection against lethal respiratory virus infection [J].
Abboud, Georges ;
Desai, Pritesh ;
Dastmalchi, Farhad ;
Stanfield, Jessica ;
Tahiliani, Vikas ;
Hutchinson, Tarun E. ;
Salek-Ardakani, Shahram .
JOURNAL OF EXPERIMENTAL MEDICINE, 2016, 213 (13) :2897-2911
[2]   The CXC chemokine, monokine induced by interferon-γ, inhibits non-small cell lung carcinoma tumor growth and metastasis [J].
Addison, CL ;
Arenberg, DA ;
Morris, SB ;
Xue, YY ;
Burdick, MD ;
Mulligan, MS ;
Iannettoni, MD ;
Strieter, RM .
HUMAN GENE THERAPY, 2000, 11 (02) :247-261
[3]   Stromal cell-derived factors 1α and 1β, inflammatory protein-10 and interferon-inducible T cell chemo-attractant are novel substrates of dipeptidyl peptidase 8 [J].
Ajami, Katerina ;
Pitman, Melissa R. ;
Wilson, Claire H. ;
Park, Joohong ;
Menz, R. Ian ;
Starr, Amanda E. ;
Cox, Jennifer H. ;
Abbott, Catherine A. ;
Overall, Christopher M. ;
Gorrell, Mark D. .
FEBS LETTERS, 2008, 582 (05) :819-825
[4]   Treg-cell depletion promotes chemokine production and accumulation of CXCR3+ conventional T cells in intestinal tumors [J].
Akeus, Paulina ;
Langenes, Veronica ;
Kristensen, Jonas ;
von Mentzer, Astrid ;
Sparwasser, Tim ;
Raghavan, Sukanya ;
Quiding-Jarbrink, Marianne .
EUROPEAN JOURNAL OF IMMUNOLOGY, 2015, 45 (06) :1654-1666
[5]   Chemokine: Receptor structure, interactions, and antagonism [J].
Allen, Samantha J. ;
Crown, Susan E. ;
Handel, Tracy M. .
ANNUAL REVIEW OF IMMUNOLOGY, 2007, 25 :787-820
[6]   The CXCL10/CXCR3 Axis and Cardiac Inflammation: Implications for Immunotherapy to Treat Infectious and Noninfectious Diseases of the Heart [J].
Altara, Raffaele ;
Mallat, Ziad ;
Booz, George W. ;
Zouein, Fouad A. .
JOURNAL OF IMMUNOLOGY RESEARCH, 2016, 2016
[7]   Emerging importance of chemokine receptor CXCR3 and its ligands in cardiovascular diseases [J].
Altara, Raffaele ;
Manca, Marco ;
Brandao, Rita D. ;
Zeidan, Asad ;
Booz, George W. ;
Zouein, Fouad A. .
CLINICAL SCIENCE, 2016, 130 (07) :463-478
[8]   Small Molecule CXCR3 Antagonists [J].
Andrews, Stephen P. ;
Cox, Rhona J. .
JOURNAL OF MEDICINAL CHEMISTRY, 2016, 59 (07) :2894-2917
[9]   HUMAN INTERFERON-INDUCIBLE PROTEIN-10 IS A POTENT INHIBITOR OF ANGIOGENESIS IN-VIVO [J].
ANGIOLILLO, AL ;
SGADARI, C ;
TAUB, DD ;
LIAO, F ;
FARBER, JM ;
MAHESHWARI, S ;
KLEINMAN, HK ;
REAMAN, GH ;
TOSATO, G .
JOURNAL OF EXPERIMENTAL MEDICINE, 1995, 182 (01) :155-162
[10]   International Union of Pharmacology. LXXXIX. Update on the Extended Family of Chemokine Receptors and Introducing a New Nomenclature for Atypical Chemokine Receptors [J].
Bachelerie, Francoise ;
Ben-Baruch, Adit ;
Burkhardt, Amanda M. ;
Combadiere, Christophe ;
Farber, Joshua M. ;
Graham, Gerard J. ;
Horuk, Richard ;
Sparre-Ulrich, Alexander Hovard ;
Locati, Massimo ;
Luster, Andrew D. ;
Mantovani, Alberto ;
Matsushima, Kouji ;
Murphy, Philip M. ;
Nibbs, Robert ;
Nomiyama, Hisayuki ;
Power, Christine A. ;
Proudfoot, Amanda E. I. ;
Rosenkilde, Mette M. ;
Rot, Antal ;
Sozzani, Silvano ;
Thelen, Marcus ;
Yoshie, Osamu ;
Zlotnik, Albert .
PHARMACOLOGICAL REVIEWS, 2014, 66 (01) :1-79