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1.
PLoS Biol ; 21(5): e3002111, 2023 05.
Article in English | MEDLINE | ID: mdl-37159457

ABSTRACT

Atypical chemokine receptors (ACKRs) scavenge chemokines and can contribute to gradient formation by binding, internalizing, and delivering chemokines for lysosomal degradation. ACKRs do not couple to G-proteins and fail to induce typical signaling induced by chemokine receptors. ACKR3, which binds and scavenges CXCL12 and CXCL11, is known to be expressed in vascular endothelium, where it has immediate access to circulating chemokines. ACKR4, which binds and scavenges CCL19, CCL20, CCL21, CCL22, and CCL25, has also been detected in lymphatic and blood vessels of secondary lymphoid organs, where it clears chemokines to facilitate cell migration. Recently, GPR182, a novel ACKR-like scavenger receptor, has been identified and partially deorphanized. Multiple studies point towards the potential coexpression of these 3 ACKRs, which all interact with homeostatic chemokines, in defined cellular microenvironments of several organs. However, an extensive map of ACKR3, ACKR4, and GPR182 expression in mice has been missing. In order to reliably detect ACKR expression and coexpression, in the absence of specific anti-ACKR antibodies, we generated fluorescent reporter mice, ACKR3GFP/+, ACKR4GFP/+, GPR182mCherry/+, and engineered fluorescently labeled ACKR-selective chimeric chemokines for in vivo uptake. Our study on young healthy mice revealed unique and common expression patterns of ACKRs in primary and secondary lymphoid organs, small intestine, colon, liver, and kidney. Furthermore, using chimeric chemokines, we were able to detect distinct zonal expression and activity of ACKR4 and GPR182 in the liver, which suggests their cooperative relationship. This study provides a broad comparative view and a solid stepping stone for future functional explorations of ACKRs based on the microanatomical localization and distinct and cooperative roles of these powerful chemokine scavengers.


Subject(s)
Signal Transduction , Animals , Mice , Chemokine CCL19/metabolism , Cell Movement
3.
Cell Rep ; 36(2): 109346, 2021 07 13.
Article in English | MEDLINE | ID: mdl-34260918

ABSTRACT

The spleen comprises defined microanatomical compartments that uniquely contribute to its diverse host defense functions. Here, we identify a vascular compartment within the red pulp of the spleen delineated by expression of the atypical chemokine receptor 4 (ACKR4) in endothelial cells. ACKR4-positive vessels form a three-dimensional sinusoidal network that connects via shunts to the marginal sinus and tightly surrounds the outer perimeter of the marginal zone. Endothelial cells lining this vascular compartment express ACKR4 as part of a distinct gene expression profile. We show that T cells enter the spleen largely through this peri-marginal sinus and initially localize extravascularly around these vessels. In the absence of ACKR4, homing of T cells into the spleen and subsequent migration into T cell areas is impaired, and organization of the marginal zone is severely affected. Our data delineate the splenic peri-marginal sinus as a compartment that supports spleen homing of T cells.


Subject(s)
Receptors, CCR/metabolism , Spleen/blood supply , Animals , Animals, Newborn , Blood Circulation , Cell Movement , Chemokine CCL19/metabolism , Endothelial Cells/metabolism , Lymphatic Vessels/metabolism , Macrophages/metabolism , Mice, Inbred C57BL , Mice, Knockout , T-Lymphocytes , Veins/metabolism
4.
Front Immunol ; 11: 605231, 2020.
Article in English | MEDLINE | ID: mdl-33628205

ABSTRACT

Diffuse large cell B cell lymphoma (DLBCL) accounts for approximately 30%-40% of all non-Hodgkin lymphoma (NHL) cases. Current first line DLBCL treatment results in long-term remission in more than 60% of cases. However, those patients with primary refractory disease or early relapse exhibit poor prognosis, highlighting a requirement for alternative therapies. Our aim was to develop a novel model of DLBCL that facilitates in vitro testing of current and novel therapies by replicating key components of the tumor microenvironment (TME) in a three-dimensional (3D) culture system that would enable primary DLBCL cell survival and study ex vivo. The TME is a complex ecosystem, comprising malignant and non-malignant cells, including cancer-associated fibroblasts (CAF) and tumor-associated macrophages (TAM) whose reciprocal crosstalk drives tumor initiation and growth while fostering an immunosuppressive milieu enabling its persistence. The requirement to recapitulate, at least to some degree, this complex, interactive network is exemplified by the rapid cell death of primary DLBCL cells removed from their TME and cultured alone in vitro. Building on previously described methodologies to generate lymphoid-like fibroblasts from adipocyte derived stem cells (ADSC), we confirmed lymphocytes, specifically B cells, interacted with this ADSC-derived stroma, in the presence or absence of monocyte-derived macrophages (MDM), in both two-dimensional (2D) cultures and a 3D collagen-based spheroid system. Furthermore, we demonstrated that DLBCL cells cultured in this system interact with its constituent components, resulting in their improved viability as compared to ex-vivo 2D monocultures. We then assessed the utility of this system as a platform to study therapeutics in the context of antibody-directed phagocytosis, using rituximab as a model immunotherapeutic antibody. Overall, we describe a novel 3D spheroid co-culture system comprising key components of the DLBCL TME with the potential to serve as a testbed for novel therapeutics, targeting key cellular constituents of the TME, such as CAF and/or TAM.


Subject(s)
Antineoplastic Agents, Immunological/pharmacology , Cancer-Associated Fibroblasts/drug effects , Lymphoma, Large B-Cell, Diffuse/drug therapy , Rituximab/pharmacology , Tumor Microenvironment , Tumor-Associated Macrophages/drug effects , Cancer-Associated Fibroblasts/immunology , Cancer-Associated Fibroblasts/metabolism , Cell Communication , Cell Culture Techniques , Coculture Techniques , Cytotoxicity, Immunologic/drug effects , Humans , Lymphoma, Large B-Cell, Diffuse/immunology , Lymphoma, Large B-Cell, Diffuse/metabolism , Phagocytosis/drug effects , Spheroids, Cellular , Tumor Cells, Cultured , Tumor-Associated Macrophages/immunology , Tumor-Associated Macrophages/metabolism
5.
Immunity ; 49(6): 1062-1076.e6, 2018 12 18.
Article in English | MEDLINE | ID: mdl-30446388

ABSTRACT

Neutrophils require directional cues to navigate through the complex structure of venular walls and into inflamed tissues. Here we applied confocal intravital microscopy to analyze neutrophil emigration in cytokine-stimulated mouse cremaster muscles. We identified differential and non-redundant roles for the chemokines CXCL1 and CXCL2, governed by their distinct cellular sources. CXCL1 was produced mainly by TNF-stimulated endothelial cells (ECs) and pericytes and supported luminal and sub-EC neutrophil crawling. Conversely, neutrophils were the main producers of CXCL2, and this chemokine was critical for correct breaching of endothelial junctions. This pro-migratory activity of CXCL2 depended on the atypical chemokine receptor 1 (ACKR1), which is enriched within endothelial junctions. Transmigrating neutrophils promoted a self-guided migration response through EC junctions, creating a junctional chemokine "depot" in the form of ACKR1-presented CXCL2 that enabled efficient unidirectional luminal-to-abluminal migration. Thus, CXCL1 and CXCL2 act in a sequential manner to guide neutrophils through venular walls as governed by their distinct cellular sources.


Subject(s)
Chemokine CXCL1 , Chemokine CXCL2 , Duffy Blood-Group System , Neutrophils , Receptors, Cell Surface , Transendothelial and Transepithelial Migration , Animals , Abdominal Muscles/drug effects , Abdominal Muscles/immunology , Abdominal Muscles/metabolism , Chemokine CXCL1/genetics , Chemokine CXCL1/immunology , Chemokine CXCL1/metabolism , Chemokine CXCL2/genetics , Chemokine CXCL2/immunology , Chemokine CXCL2/metabolism , Duffy Blood-Group System/genetics , Duffy Blood-Group System/immunology , Duffy Blood-Group System/metabolism , Endothelial Cells/drug effects , Endothelial Cells/immunology , Endothelial Cells/metabolism , Gene Expression Profiling , Gene Expression Regulation , Intercellular Junctions/drug effects , Intercellular Junctions/immunology , Intercellular Junctions/metabolism , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Neutrophils/cytology , Neutrophils/immunology , Neutrophils/metabolism , Receptors, Cell Surface/genetics , Receptors, Cell Surface/immunology , Receptors, Cell Surface/metabolism , Transendothelial and Transepithelial Migration/drug effects , Transendothelial and Transepithelial Migration/genetics , Transendothelial and Transepithelial Migration/immunology , Tumor Necrosis Factor-alpha/pharmacology
6.
J Leukoc Biol ; 104(2): 391-400, 2018 08.
Article in English | MEDLINE | ID: mdl-29601107

ABSTRACT

Chemokines, small chemotactic cytokines, orchestrate cell migration by binding to their cognate chemokine receptors. While chemokine-mediated stimulation of typical G-protein-coupled chemokine receptors leads to cell migration, binding of chemokines to atypical chemokine receptors (ACKRs) does not induce canonical signaling. ACKRs are considered important chemokine scavengers, that can create gradients which help direct cells to sites of inflammation or to their immunological niches. Synthetic chemokines have been used in the past to study and decode chemokine-receptor interactions. Characterizing specific chemokine-ACKRs interactions is challenging because the chemokines bind multiple receptors; for example, the ACKR3 ligands CXCL12 and CXCL11 bind to the canonical receptors CXCR4 and CXCR3, respectively. Here, we present the engineering of a chemokine-like chimera, which selectively binds to ACKR3. The addition of a ybbR13 tag at the C-terminus allows site specific enzymatic labeling with a plethora of fluorescent dyes. The chimera is composed of the N-terminus of CXCL11 and the main body and C-terminus of CXCL12 and selectively interacts with ACKR3 with high affinity, while not interfering with binding of CXCL11 and CXCL12 to their cognate receptors. We further provide evidence that the chimera can be used to study ACKR3 function in vivo.


Subject(s)
Chemokine CXCL11/metabolism , Chemokine CXCL12/metabolism , Receptors, CXCR/metabolism , Animals , Chimera , Humans , Ligands , Mice , Protein Binding
7.
Nat Immunol ; 18(7): 753-761, 2017 Jul.
Article in English | MEDLINE | ID: mdl-28553950

ABSTRACT

Healthy individuals of African ancestry have neutropenia that has been linked with the variant rs2814778(G) of the gene encoding atypical chemokine receptor 1 (ACKR1). This polymorphism selectively abolishes the expression of ACKR1 in erythroid cells, causing a Duffy-negative phenotype. Here we describe an unexpected fundamental role for ACKR1 in hematopoiesis and provide the mechanism that links its absence with neutropenia. Nucleated erythroid cells had high expression of ACKR1, which facilitated their direct contact with hematopoietic stem cells. The absence of erythroid ACKR1 altered mouse hematopoiesis including stem and progenitor cells, which ultimately gave rise to phenotypically distinct neutrophils that readily left the circulation, causing neutropenia. Individuals with a Duffy-negative phenotype developed a distinct profile of neutrophil effector molecules that closely reflected the one observed in the ACKR1-deficient mice. Thus, alternative physiological patterns of hematopoiesis and bone marrow cell outputs depend on the expression of ACKR1 in the erythroid lineage, findings with major implications for the selection advantages that have resulted in the paramount fixation of the ACKR1 rs2814778(G) polymorphism in Africa.


Subject(s)
Duffy Blood-Group System , Erythroblasts , Hematopoiesis , Hematopoietic Stem Cells , Neutropenia , Neutrophils , Receptors, Cell Surface , Animals , Humans , Mice , Black People/genetics , Bone Marrow/pathology , Bone Marrow Cells/metabolism , Cell Proliferation , Duffy Blood-Group System/genetics , Duffy Blood-Group System/metabolism , Erythroblasts/metabolism , Flow Cytometry , Fluorescent Antibody Technique , Hematopoiesis/genetics , Hematopoietic Stem Cells/cytology , Hematopoietic Stem Cells/metabolism , Microscopy, Confocal , Neutropenia/genetics , Neutrophils/cytology , Neutrophils/metabolism , Receptors, Cell Surface/genetics , Receptors, Cell Surface/metabolism , Receptors, Chemokine/genetics , Receptors, Chemokine/metabolism
8.
Nat Immunol ; 15(7): 623-30, 2014 Jul.
Article in English | MEDLINE | ID: mdl-24813163

ABSTRACT

Afferent lymph-borne dendritic cells essentially rely on the chemokine receptor CCR7 for their transition from the subcapsular lymph node sinus into the parenchyma, a migratory step driven by putative gradients of CCR7 ligands. We found that lymph node fringes indeed contained physiological gradients of the chemokine CCL21, which depended on the expression of CCRL1, the atypical receptor for the CCR7 ligands CCL19 and CCL21. Lymphatic endothelial cells lining the ceiling of the subcapsular sinus, but not those lining the floor, expressed CCRL1, which scavenged chemokines from the sinus lumen. This created chemokine gradients across the sinus floor and enabled the emigration of dendritic cells. In vitro live imaging revealed that spatially confined expression of CCRL1 was necessary and sufficient for the creation of functional chemokine gradients.


Subject(s)
Chemokine CCL21/physiology , Lymph Nodes/immunology , Receptors, CCR/physiology , Animals , Cell Movement , Dendritic Cells/physiology , Mice , Mice, Inbred C57BL
9.
Blood ; 120(23): 4552-9, 2012 Nov 29.
Article in English | MEDLINE | ID: mdl-23065152

ABSTRACT

Antibody-forming cells (AFCs) expressing the chemokine receptor CXCR3 are recruited to sites of inflammation where they help clear pathogens but may participate in autoimmune diseases. Here we identify a mechanism that induces CXCR3 expression by AFC and germinal center (GC) B cells. This happens when CD8 T cells are recruited into CD4 T cell-dependent B-cell responses. Ovalbumin-specific CD4 T cells (OTII) were transferred alone or with ovalbumin-specific CD8 T cells (OTI) and the response to subcutaneous alum-precipitated ovalbumin was followed in the draining lymph nodes. OTII cells alone induce T helper 2-associated class switching to IgG1, but few AFC or GC B cells express CXCR3. By contrast, OTI-derived IFN-γ induces most responding GC B cells and AFCs to express high levels of CXCR3, and diverse switching to IgG2a, IgG2b, with some IgG1. Up-regulation of CXCR3 by GC B cells and AFCs and their migration toward its ligand CXCL10 are shown to depend on B cells' intrinsic T-bet, a transcription factor downstream of the IFN-γR signaling. This model clarifies how precursors of long-lived AFCs and memory B cells acquire CXCR3 that causes their migration to inflammatory foci.


Subject(s)
B-Lymphocytes/immunology , CD8-Positive T-Lymphocytes/immunology , Cell Movement/immunology , Receptors, CXCR3/immunology , T-Box Domain Proteins/immunology , Vaccines/immunology , Adoptive Transfer , Alum Compounds , Animals , B-Lymphocytes/metabolism , CD4-Positive T-Lymphocytes/immunology , CD4-Positive T-Lymphocytes/metabolism , CD4-Positive T-Lymphocytes/transplantation , CD8-Positive T-Lymphocytes/metabolism , CD8-Positive T-Lymphocytes/transplantation , Cell Differentiation/immunology , Chemokine CXCL10/immunology , Chemokine CXCL10/metabolism , Flow Cytometry , Germinal Center/immunology , Germinal Center/metabolism , Immunization/methods , Interferon-gamma/immunology , Interferon-gamma/metabolism , Ligands , Mice , Mice, Inbred C57BL , Ovalbumin/immunology , Receptors, CXCR3/genetics , Receptors, CXCR3/metabolism , Reverse Transcriptase Polymerase Chain Reaction , T-Box Domain Proteins/genetics , T-Box Domain Proteins/metabolism , Th2 Cells/immunology , Th2 Cells/metabolism , Up-Regulation/genetics
10.
Exp Cell Res ; 317(5): 556-68, 2011 Mar 10.
Article in English | MEDLINE | ID: mdl-21272574

ABSTRACT

Atypical chemokine receptors (ACRs) are cell surface receptors with seven transmembrane domains structurally homologous to chemokine G-protein coupled receptors (GPCRs). However, upon ligation by cognate chemokines, ACRs fail to induce classical signaling and downstream cellular responses characteristic for GPCRs. Despite this, by affecting chemokine availability and function, ACRs impact on a multitude of pathophysiological events and have emerged as important molecular players in health and disease. This review discusses individual characteristics of the currently known ACRs, highlights their similarities and differences and attempts to establish their group identity. It summarizes the progress made in mapping ACR expression, understanding their diverse in vitro and in vivo functions of ACRs and uncovering their contributions to disease pathogeneses.


Subject(s)
Receptors, Chemokine/metabolism , Animals , Chemokines/immunology , Endothelial Cells/immunology , Erythrocytes/immunology , Humans , Receptors, Chemokine/immunology , Signal Transduction/immunology
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