| Literature DB >> 29209334 |
Daniel Regan-Komito1, Sophia Valaris1, Theodore S Kapellos1, Carlota Recio1, Lewis Taylor1, David R Greaves1, Asif J Iqbal1,2.
Abstract
Chemerin is a chemotactic protein that induces migration of several immune cells including macrophages, immature dendritic cells, and NK cells.Entities:
Keywords: CCRL2; G protein-coupled receptor; chemerin; chemokines; inflammation; neutrophils
Year: 2017 PMID: 29209334 PMCID: PMC5702352 DOI: 10.3389/fimmu.2017.01621
Source DB: PubMed Journal: Front Immunol ISSN: 1664-3224 Impact factor: 7.561
Figure 1Chemerin bioactivity and Ccrl2 expression are increased during inflammation. C57BL/6J male mice were injected i.p. with 100 µg zymosan. Animals were sacrificed at indicated time points, and peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. (A) Total neutrophils (black broken line) and inflammatory monocytes/macrophages (grey line) at indicated time points. (B) Total chemerin levels from the peritoneal exudate fluid were measured by ELISA at the indicated time points. (C) Chemerin bioactivity at the Cmklr1 receptor was measured in the peritoneal exudate fluid using CHO-K1 cells stably transfected with murine Cmklr1. Cmklr1 activity was assessed by quantification of β-arrestin recruitment to Cmklr1 as measured by luminescence. Dashed line represents background luminance. RLU, relative light units. Error bars represent SEM. n = 4–15 mice per time point and n = 4 independent experiments. Statistical significance was assessed using one-way analysis of variance (ANOVA) with Dunnett’s multiple comparison post hoc test. (D) C57BL/6J male mice were injected i.p. with 100 µg zymosan, and 4 h later steady state or zymosan challenged mice were sacrificed, and peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. Resident peritoneal macrophages from steady state mice and recruited neutrophils and monocytes were sorted by fluorescence-activated cell sorting into RLT buffer, and Ccrl2 mRNA expression was assessed by qPCR. Error bars represent SEM of n = 3 mice/group. (E,F) mRNA expression of Ccrl2 receptor was analysed by qPCR on bone marrow-derived macrophages (BMDMs) and human umbilical vein endothelial cells (HUVECs) following exposure to TLR ligands and cytokines for 16 h. Error bars represent SEM of n = 2 separate experiments. Statistical significance was assessed using one-way ANOVA with Dunnett’s multiple comparison post hoc test. *P ≤ 0.05, **P ≤ 0.01, ***P ≤ 0.001, ****P ≤ 0.0001.
Figure 2Deletion of Ccrl2 increased neutrophil mobilisation and recruitment to local sites of inflammation. 8- to 10-week-old male Ccrl2−− or age-matched littermate controls were injected with zymosan i.p. (100 µg/animal), and 4 h later, zymosan injected animals or steady state animals were sacrificed. Peritoneal cavities were lavaged with 5 ml ice-cold PBS supplemented with 2 mM EDTA. Cells were quantified using counting beads, and cell populations were analysed using flow cytometry. (A) Representative flow cytometry plots of the peritoneal cavities of wild-type (WT) and Ccrl2−− steady state mice or mice challenged with zymosan. Monocytes were defined as Ly6B.2 (7/4)hi, Ly6Glo and neutrophils were defined as Ly6B.2 (7/4)hi, Ly6Ghi. WT animals are presented on the left and Ccrl2−/− animals are presented on the right. (B–D) Total peritoneal cell counts from steady state animals or from animals 4 h post zymosan challenge. Error bars represent SEM of n = 4–13 animals/group and n = 2 independent experiments. (E–G) Blood cell counts in WT and Ccrl2−− mice. Error bars represent SEM. n = 4–9 animals/group and n = 2 independent experiments. (H–J) Quantified bone marrow cells. Error bars represent SEM. n = 4–9 animals/group from n = 2 independent experiments. Statistical significance was assessed using a two-way analysis of variance with Dunnett’s post hoc multiple comparisons test *P ≤ 0.05, **P ≤ 0.01, ***P ≤ 0.001, ****P ≤ 0.0001.
Local mediators (pg/ml) produced in peritoneal exudate cell fluid following 4 h challenge with 100 µg zymosan i.p. as measured by Luminex.
| IL-6 | CCL2 | CCL3 | CCL4 | CXCL1 | CXCL2 | CXCL10 | |
|---|---|---|---|---|---|---|---|
| ns | ns | ns | ns | ns | ns | ns | |
| Wild type | 759 ± 123 | 1,218 ± 81 | 34.50 ± 5.3 | 744.3 ± 41 | 78.6 ± 6.4 | 506 ± 166 | 620 ± 50 |
| 705 ± 83 | 1,013 ± 21 | 26.40 ± 2.1 | 736.8 ± 32 | 127.8 ± 28 | 400 ± 148 | 525 ± 24 | |
Data are presented as mean ± SEM of n = 8 animals.
Statistical significance was assessed by a Student’s unpaired t-test, ns = P > 0.05.
Figure 3Increased neutrophil recruitment in Ccrl2−− mice was associated with increased CXCL1 and chemerin levels at early time points. (A–C) 8- to 10-week-old male C57BL/6J wild-type (WT) mice were injected with zymosan i.p. (100 µg/animal), and animals were sacrificed at indicated time points. Peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. Mediator levels were quantified by ELISA. Error bars represent SEM. n = 4–15 mice per time point and n = 2 independent experiments. Statistical significance was assessed using one-way analysis of variance with Dunnett’s multiple comparisons post hoc test. (D–L) 8- to 10-week-old male Ccrl2−− or age-matched littermate control mice were injected with zymosan i.p. (100 µg/animal), and animals were sacrificed 2 h later. Cells were quantified using counting beads, and cell populations were analysed using flow cytometry. (D,E) Total peritoneal cell counts following 2 h zymosan challenge. (F) CXCL1 and chemerin (G) levels in the peritoneum of Ccrl2−− and WT mice quantified by ELISA. (H,I) Blood neutrophils and monocytes in WT and Ccrl2−− mice. (J,K) Plasma levels of CXCL1 and chemerin quantified by ELISA. Data are presented as mean ± SEM. n = 8 animals/group and n = 2 independent experiments. Statistical significance was assessed using a Student’s unpaired t-test. *P ≤ 0.05, **P ≤ 0.01.
Figure 4Mice lacking Ccrl2 displayed exaggerated neutrophil recruitment during acute inflammation independently of stimulus. 8- to 10-week-old male Ccrl2−− mice or age-matched littermate controls were injected with 4% thioglycollate, and 1 h later, animals were sacrificed. Peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. Cells were quantified using counting beads, and cell populations were analysed using flow cytometry. (A) Representative flow cytometry plots of the peritoneal cavities of wild-type (WT) and Ccrl2−− mice treated with thioglycollate. Neutrophils were defined as Ly6B.2 (7/4)hi and Ly6Ghi (B,C) Total peritoneal cell counts following 1-h thioglycollate challenge. (D) CXCL1 and chemerin (E) levels in the peritoneum of Ccrl2−− and WT mice quantified by ELISA. Total blood leucocytes (F) and neutrophils (G) in WT and Ccrl2−− mice. (H) Plasma CXCL1 and chemerin (I) levels in Ccrl2−− and WT quantified by ELISA. Mean ± SEM. n = 5 animals/group and n = 1 experiment. Statistical significance was assessed using a Student’s unpaired t-test. *P ≤ 0.05.
Figure 5Treatment with an anti-chemerin blocking antibody attenuated the exaggerated inflammatory responses observed in Ccrl2−− mice. (A) CHO-K1 cells stably transfected with murine Cmklr1 were plated out in a 96-well plate for 48 h before stimulation. Cells were challenged with indicated concentrations of anti-chemerin antibody or isotype control before challenge with 20 nM murine chemerin. Cmklr1 activity was assessed by quantification of β-arrestin recruitment to Cmklr1 as measured by luminescence. RLU, relative light units. Error bars = SD of three technical replicates of one experiment. (B) Representative real-time chemotaxis trace of biogel-elicited peritoneal exudate cells (PECs). 8- to 10-week-old male C57BL/6J mice were injected i.p. with 2% Bio-gel (polyacrylamide beads) and sacrificed 4 days later. Peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. Cells were pretreated with vehicle or anti-chemerin antibody (ab) for 45 min. A gradient of 5 nM of the 5 nM chemerin was allowed to form, and chemotaxis was measured of 4 × 105 cells (400,000 cells/well) for 3 h. (C) Schematic of in vivo experimental design. (D–G) 8- to 10-week-old male Ccrl2−− mice were pretreated with 100 ng of anti-chemerin blocking antibody or isotype control IgG antibody i.p. for 24 h before challenge with zymosan for 4 h. Animals were sacrificed, and peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. Cells were quantified using counting beads, and cell populations were analysed using flow cytometry (D) Total cells. (E) Total neutrophils. (F). Total monocytes. Levels of CXCL1 (G) and IL-6 (H) in the peritoneum of indicated groups were quantified by ELISA. Mean ± SEM. n = 2–8 mice/group. Statistical significance was assessed using a Student’s unpaired t-test. *P ≤ 0.05, **P ≤ 0.01.
Figure 6Recombinant chemerin pretreatment increased inflammatory cell recruitment in mice during acute inflammation. (A) 8- to 10-week-old male C57BL/6J mice were pretreated (i.p.) with recombinant murine chemerin (4 µg/mouse) or PBS for 1 h before challenge with zymosan i.p. (100 μg/mouse). 4 h later, mice were sacrificed, and peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. Cells were quantified using counting beads, and cell populations were analysed using flow cytometry. (B) Representative flow cytometry plots of the peritoneal cavities of wild-type and Ccrl2−− mice challenged with indicated treatments. Monocytes were defined as Ly6B.2 (7/4)hi, Ly6Glo and neutrophils were defined as Ly6B.2 (7/4)hi, Ly6Ghi. (C) Total CD45+ leucocytes recruited to the peritoneum of indicated groups following zymosan challenge. (D) Total neutrophils recruited to the peritoneum of indicated groups following zymosan challenge. (E) Total monocytes recruited to the peritoneum of indicated groups following zymosan challenge. Error bars represent SEM. n = 3–7 mice/group and n = 2 independent experiments. Levels of CXCL1 (F) and IL-6 (G) in the peritoneum of indicated groups. Mean ± SEM. n = 6–7 mice/group. Statistical significance was assessed using a Student’s unpaired t-test. *P ≤ 0.05, **P ≤ 0.01.
Figure 7Absence of Ccrl2 had no effect on the migratory behaviour of leucocytes towards macrophage or neutrophil chemoattractants. 8- to 10-week-old male Ccrl2−− mice and age-matched littermate controls were injected i.p. with 2% Bio-gel (polyacrylamide beads) and sacrificed 4 days later. Peritoneal cavities were lavaged with ice-cold PBS supplemented with 2 mM EDTA. (A) Representative histogram cytometry plots displaying Cmklr1 expression on biogel elicited macrophages and neutrophils. Macrophages were defined as F4/80hi, Ly6B.2 (7/4)lo, Ly6Glo, neutrophils were defined as Ly6B.2 (7/4)hi, Ly6Ghi. (B,E) A gradient of 5 nM of the indicated chemoattractant was allowed to form, and chemotaxis was measured of 4 × 105 cells (400,000 cells/well) for 3 h. Representative chemotaxis traces of wild type and Ccrl2−− peritoneal exudate cell chemotaxis to 5 nM chemerin (B) or 5 nM C5a. (C). (D) Max–Min analysis and (E) slope analysis. Error bars are SEM of four experiments with independent macrophage preparations. Significance was assessed using two-way analysis of variance with Sidak’s multiple comparison test. ns = P > 0.05.