| |
|
|
|
|
|
|
|||
|
Blood, 15 May 2006, Vol. 107, No. 10, pp. 3821-3831. Prepublished online as a Blood First Edition Paper on December 20, 2005; DOI 10.1182/blood-2004-01-0214.
CHEMOKINES, CYTOKINES, AND INTERLEUKINS Role of CXCR3 carboxyl terminus and third intracellular loop in receptor-mediated migration, adhesion and internalization in response to CXCL11From the Institute of Gene Therapy, Hadassah University Hospital, Jerusalem, Israel; Department of Cell Research and Immunology, Tel-Aviv University, Tel-Aviv, Israel; Department of Immunology, the Weizmann Institute of Science, Rehovot, Israel; and the Department of Bone Marrow Transplantation, Chaim Sheba Medical Center, Tel Hashomer, Israel.
The chemokine receptor CXCR3 is predominantly expressed on activated T and natural killer (NK) cells. CXCR3 and its ligands, CXCL11, CXCL10, and CXCL9, play a major role in T-helper 1 (Th1)dependent inflammatory responses. CXCL11 is the most dominant physiological inducer of adhesion, migration, and internalization of CXCR3. To study the role of CXCR3 carboxyl-terminus and the third intracellular (3i) loop in chemokine-mediated migration, adhesion, and CXCR3 internalization, we generated CXCR3 receptors mutated in their distal (Ser-Thr domain) or proximal (trileucine domain) membrane carboxyl terminus, and/or the third intracellular loop. We found that migration of CXCR3-expressing HEK 293 cells toward CXCL11 was pertussis toxindependent and required the membrane proximal carboxyl terminus of CXCR3. Internalization induced by CXCL11 and protein kinase C (PKC) activation was also regulated by the membrane proximal carboxyl terminus; however, only CXCL11-induced internalization required the LLL motif of this region. Internalization and Ca2+ flux induced by CXCL11 were independent of the 3i loop S245, whereas migration at high CXCL11 concentrations, integrin-dependent adhesion, and actin polymerization were S245 dependent. Our findings indicate that CXCL11-dependent CXCR3 internalization and cell migration are regulated by the CXCR3 membrane proximal carboxyl terminus, whereas adhesion is regulated by the 3i loop S245. Thus, distinct conformational changes induced by a given CXCR3 ligand trigger different downstream effectors of adhesion, motility, and CXCR3 desensitization.
Chemokine receptors (CKRs) are expressed widely on leukocytes, and have been implicated in their chemotactic recruitment to sites of inflammation.1 CXCR3 is an inflammatory, inducible type of chemokine receptor. It is expressed on activated effector and memory T cells, on the T helper (Th) subset, preferentially of the Th1 phenotype, on the subset of B cells, and on natural killer (NK) cells.2,3 CXCR3 was also shown to be functionally expressed on endothelial cells and on some tumors such as human melanoma.4,5 CXCR3 and its ligands, the CXC chemokines CXCL11 (I-TAC), CXCL10 (IP-10), and CXCL9 (Mig), play a role in Th1-dependent inflammatory responses, among them rheumatoid arthritis,6 multiple sclerosis,7,8 graft rejection,9,10 and hepatitis C.11,12 Binding of chemokines to CXCR3 induces cellular responses that are involved in leukocyte trafficking, most notably integrin activation, cytoskeletal changes, and chemotactic migration.13-15 CXCR3 activates multiple signaling pathways, including the Ras/ERK, Src, and PI3K pathways.3 The exposure of CKRs to high concentrations of chemokines often results in the rapid attenuation of receptor responsiveness and reduced biological response. This process, called "desensitization," is the consequence of a combination of different mechanisms. These mechanisms include receptor phosphorylation followed by uncoupling of the receptor from heterotrimeric G proteins and internalization of cell-surface receptors to intracellular endocytic vesicles.16 For most G proteincoupled receptors (GPCRs), including CKRs, agonist-induced phosphorylation occurs at the serine and threonine residues of the carboxyl terminus domain and/or the third intracellular (3i) loop. Internalization of both CCR5 and CXCR4 appears to require the serine/threonine-rich C tail. A highly conserved carboxyl-terminal, the Leu-Leu motif, has also been demonstrated to involve the endocytosis of various membrane proteins, including G proteincoupled b2-AR.17 Dileucine or Ile-Leu, present as the LLKIL or LKIL motif in CXCR2 and CXCR4, is also involved in the internalization of these receptors.18,19 In contrast to CXCR1, 2, and 4, it was recently suggested that the C terminal domain of human CXCR3 is not essential for CXCL11-dependent internalization of human CXCR3 overexpressed in murine 300-19 pre-B cells, and that the third extracellular domain of CXCR3 in these cells is predominantly involved in this process. Moreover, it was also shown that migration of murine 300-19 pre-B cells used in this study was dependent on the C terminal domain of CXCR3.20 Our findings indicate that CXCL11-dependent internalization of CXCR3 is regulated by the membrane proximal carboxyl terminus and the LLL motif. The migration of cells in response to CXCL11 was also dependent on the membrane proximal carboxyl terminus domain, whereas adhesion was regulated by the 3i loop S245, most likely through regulation of actin polymerization.
Materials Human recombinant CXCL9 and CXCL10 were purchased from R&D Systems (Minneapolis, MN) and CXCL11 from PeproTech (Rocky Hills, NJ). PMA was obtained from Sigma (St Louis, MO). Protein kinase C (PKC) inhibitors staurosporin and GF 109203X (GF) were obtained from Sigma, and rottlerin was obtained from Biomol Research Laboratories (Plymouth Meeting, PA). Pertussis toxin (PTx) was purchased from List Biological Laboratories (Campbell, CA). The recombinant protein human soluble vascular cell adhesion molecule-1 (sVCAM-1) was a generous gift from Dr R. Lobb (Biogen, Cambridge, MA). Human serum albumin (HSA; fraction V) was from Merck Bioscience (Schwalbech, Germany). Human cell lines Human embryonal kidney 293 (HEK 293) cells were maintained in Dulbecco modified Eagle medium (DMEM), whereas YTS, Jurkat, and RBL cells were maintained in RPMI (Gibco Laboratories, Grand Island, NY), both supplemented with 10% fetal bovine serum (FBS), 1 mM L-glutamine, 100 U/mL penicillin, and 0.01 mg/mL streptomycin (all from Biological Industries, Kibbutz Beth Haemek, Israel) (full medium) at 37°C in 5% CO2 atmosphere. HEK 293 stable transfectant cells were maintained in 450 to 700 mg/mL G418 (Calbiochem, San Diego, CA). Plasmid construction and stable transfectants
Human CXCR3 cDNA in pcDNA3-CXCR3 was kindly donated by B. Moser (University of Bern, Switzerland). The cDNAs of the COOH terminally truncated CXCR3 were amplified by the standard polymerase chain reaction (PCR) method. CXCR3 cDNA, EcoRI-XbaI gel-purified fragment of pcDNA3-CXCR3 served as a template. A common 5' primer containing the BamHI site and 3' mutagenic primers containing the EcoRI site were used to generate the truncations 349stop Flow cytometric analysis Cells (2-4 x 105) were resuspended in 0.2 mL fluorescence-activated cell-sorting (FACS) buffer (phosphate-buffered saline [PBS], 0.1% bovine serum albumin [BSA; Biological Industries], and 0.01% NaN3) and incubated with 1% BSA for 15 minutes on ice. Then, blocked cells were mixed with either PE-conjugated human-specific CXCR3 49801.111 monoclonal antibody (mAb) (R&D Systems; 1:40) or isotype-matched controls (IQ Products, Groningen, The Netherlands; 1:40) for 20 minutes on ice, and were washed with FACS buffer. Immunostained cells were analyzed by FACSCalibur flow cytometer (Becton Dickinson, Mountain View, CA), and data were analyzed using CellQuest software (BD Biosciences, San Jose, CA). Events (10 000) were acquired in list mode. Analyzed cells were also stained with 1 mg/mL propidium iodide (Sigma), and dead cells were gated out. Binding assay of biotinaleted CXCL11 to 293 cells expressing CXCR3 293-CXCR3 wild-type (WT) and mutant cells were trypsinized and counted. Cells (4 x 105) were suspended in 400 mL DMEM and 1% FCS and incubated for 10 minutes on ice. Biotinylated interferon-inducible T-cell alpha chemoattractant (I-TAC; Exalpha Biologicals, Watertown, MA) was then added and the cells were incubated for 30 minutes on ice and then washed in FACS buffer. Biotinylated I-TAC was added to the cells in the following concentrations: 5 nM, 20 nM, and 50 nM. Following incubation with Biotinylated I-TAC, cells were incubated for 30 minutes on ice with Strepavidin FITC (Jackson Immunoresearch Laboratories, West Grove, PA), diluted 1:700, and then washed with FACS buffer and suspended in 450 mL FACS buffer. Analysis of receptor internalization Cells (4 x 105) expressing the WT or mutated CXCR3 were incubated in 0.2 mL DMEM containing 1% FBS with chemokine or PMA at 37°C for the indicated time periods (HEK 293 were trypsinized prior to assay and incubated in full DMEM containing 10% FBS for 2 hours at 37°C to allow recovery). The cells were then rapidly cooled by dilution with 10-fold volumes of ice-cold FACS buffer and placed on ice. Cells were then stained with PE-conjugated specific anti-CXCR3 monoclonal antibodies at 4°C for 30 minutes and analyzed by flow cytometry. Percentage internalization of the receptor was calculated from the mean fluorescence intensity value for each sample compared with cells incubated with medium alone. When PKC inhibitors were used in assays, percentage of receptor internalization was calculated from the mean fluorescence intensity value for each sample compared with control cells treated with inhibitor alone, but without a stimulator. P values were calculated using the Student t test. Migration assay The migration of HEK 293 cells expressing WT and mutant CXCR3 was assessed by a 48-well microchemotaxis Boyden chamber technique as previously described.21 The migration of the human T-cellderived leukemic Jurkat cells,22 Rat mast cellderived leukemic RBL cells,23,24 and the human-derived NK leukemic cell line YTS25 were tested using a transwell migration assay as previously described.25 The effect of PTx on the migration of 293 cells was determined by preincubating the cells with the compound for 2 hours at 37°C, followed by washings. The statistical significance of the number of cells migrating in response to CXCL11 versus to BSA medium was evaluated using the Student t test. Trunsduction of hematopoietic cell lines using lentiviral vectors pRLL-hPGK-CXCR3-WPRE derived from self-inactivating (SIN) human immunodeficiency virus type 1 (HIV-1) carrying the WT or mutant human CXCR3 cDNAs was constructed by replacing the enhanced green fluorescent protein (EGFP) of the lentiviral vector pRLL.hPGK.EGFP.WPRE26 with the human WT or mutant CXCR3 cDNAs. Gene transfer derived from lentiviruses was done as previously described.27 Briefly, 2 x 106 HEK 293T packaging cells were seeded 24 hours prior to transfection in a 10-cm plate in full medium. The HIV-based virions were generated by transfection of the 293T cells by a 3-plasmid system: 10 mg of the transfer vector-pRLL-hPGK-CXCR3-WPRE; 6.5 mg of the packaging construct-CMVDR8.91; and 3.5 mg of the envelope-coding plasmid VSV-G in the presence of 80 mL FuGene 6 and the serum-free medium OptiMEM (Gibco Laboratories) in a final volume of 900 mL. After transfection (24 hours), the transfection supernatant was replaced with the target cell-line culture medium. Later (24 hours), viral supernatant was collected and used for infection of target cells (first infection): adherent HEK 293 cells, seeded 1 day before infection in a 12-well plate at 5 x 105 cells/well, were centrifuged with the viral supernatant and 5 mg/mL polybrene at 420g for 2 hours at room temperature (RT). Then, cells were incubated for 24 hours at 37°C in 5% CO2 atmosphere. Suspension cell lines were seeded at 3 x 105 cells/150 mL/well on the day of infection. Virions supernatant was x 10 concentrated by ultracentrifugation at 50 000g at 4°C for 2 hours. The virion pellet was gently resuspended in culture medium and mixed with the target cells in the presence of polybrene. Infection was repeated 24 hours later (second infection). Clonally expanded transduced cells were screened and assayed for stably integrated CXCR3 cDNA and its level of expression was evaluated by FACS. Calcium influx assay Cells (1 x 106/mL) in DMEM containing 1% FBS were loaded with 10 µm of the Ca2+ indicator fluo-3 (Molecular Probes, Eugene, OR), which is nonfluorescent unless bound to Ca2+, for 30 minutes at 37°C. Cells were washed twice with modified Gay buffer (MGB; 5 mM KCl, 147 mM NaCl, 0.2 mM KH2PO4, 1.1 mM Na2HPO4, 5.5 mM glucose, 0.3 mM MgSO4.7H20, 1 mM MgCl2, 0.1% BSA, 10 mM HEPES [pH 7.4], and 1.3 mM Ca2+), resuspended at 1 x 106 cells/mL in the same buffer, and analyzed by FACS at FL1 (linear scale) versus time. Cells were acquired for 2 minutes before stimulation with chemokine, and 1 g/mL CXCL11 was added in 2-minute intervals to monitor calcium influx. Actin filament polymerization Cells (1 x 106) resuspended in DMEM containing 1% FBS were stimulated with 1 g/mL CXCL11 for the indicated time points at 37°C. Incubation was stopped by adding 3 volumes of 4% paraformaldehyde (PFA) at RT for 10 minutes, followed by washing with PBS and permeabilization on ice for 2 minutes with 0.2% Triton X-100 in PBS. Thereafter, cells were washed, stained with 2 mg/mL FITC-phalloidin (Sigma) at RT for 30 minutes, and washed again. F-actin was analyzed by FACS at FL1 in linear scale. Receptor-binding assay Binding assay was performed according to Colvin et al20 with modifications. WT or mutant CXCR3/HEK 293 or Jurkat cells (5 x 106) were incubated in a total volume of 150 µL binding buffer (0.5% BSA, 5 mM MgCl2, 1 mM CaCl2, 0.01% sodium azide, and 50 mM HEPES [pH 7.4]), 0.06 nM 125I-labeled CXCL11 (Amersham Biosciences, Piscataway, NJ), and increasing concentrations of unlabeled CXCL11 (R&D Systems). After 90 minutes at room temperature with shaking, the cells were washed 3 times with 1 mL binding buffer supplemented with 0.5 M NaCl. Radioactivity was measured in the dried pellet in a g counter. Adhesion assays The adhesion assays were performed in a flow chamber as previously described.25,28 Soluble, affinity-purified human sVCAM-1 and fibronectin (FN) were mixed in coating media (PBS buffered with 20 mM sodium bicarbonate [pH 8.5]) and absorbed as 10-mL drops on a polystyrene plate (60 x 15-mm Petri dish; Becton Dickinson, Lincoln Park, NJ) overnight at 4°C. The plate was then washed and blocked with human serum albumin (0.2% HSA) for 2 hours at 4°C. To coimmobilize CXCL11 with the adhesive substrates, the ligands (sVCAM-1 and FN) were coated in the presence of active (2 mg/mL) or heat-denatured CXCL11 and HSA (2 mg/mL), washed, and quenched as described previously. A polystyrene plate with coated adhesive substrates was assembled as the lower wall in a parallel plate flow chamber (260-mm gap), mounted on the stage of an inverted phase-contrast microscope (Diaphot 300; Nikon, Melville, NY) and extensively washed with binding medium. All flow experiments were conducted at 37°C. Jurkat cells were suspended in binding buffer perfused into the chamber and allowed to settle on the substrate-coated chamber wall for 1 minute. Flow was initiated and increased in 2- to 2.5-fold increments every 5 seconds, thereby generating controlled shear stresses on the wall generated by an automated syringe pump (Harvard Apparatus, Natick, MA). All flow experiments were recorded on videotape by a long integration camera (LIS-700 CCD; Applitech, Holon, Israel) and a SVHS time-lapse video recorder (AG-6730; Panasonic, Osaka, Japan), and analyzed as previously described.25,28 Statistical analysis Mean values were compared using the ANOVA (analysis of variance) test in Figures 3, 4, 6B-C, and 7B Whenever ANOVA was statistically significant, multiple comparisons were done. Level of significance was set at a P value below .05. Values for all measurements were expressed as the mean plus or minus SE.
Construction and expression of the CXCR3 mutants
To identify the CXCR3 regions that regulate the receptor-mediated migration, adhesion, and internalization, a series of CXCR3 variants with progressive truncations and site-specific mutations was generated either in the carboxyl terminus domain and/or the 3i loop, based on previous observations on involvement of Ser-Thr and dileucine domains in these processes in CXCR1, CXCR2, and CXCR4 (Figure 1, Table 1).18,19,24,29-31 The shortest truncation of the carboxyl terminus, 349stop
Migration mediated by CXCR3 toward CXCL11 depends mainly on its carboxyl terminus
To investigate whether the CXCR3 carboxyl-terminus and/or 3i loop are involved in the regulation of CXCR3-mediated biological response, the migration of WT and mutant CXCR3-expressing HEK 293 cells in response to CXCL11 was assayed. The migration of HEK 293 cells expressing WT CXCR3 and the mutated or truncated form of the C terminal of the receptor was dose dependent and PTx sensitive (Figures 3,4A). The migration peaked at a concentration of 50 to 100 ng/mL CXCL11 and was reduced at the concentration of 500 to 1000 ng/mL of the ligand. The migration of cells in response to 50 ng/mL CXCL11 was slightly reduced (28.7% ± 13.0%) when HEK 293 cells expressing 349stop
Previous studies of CXCR4 reported that its 3i loop was involved in the chemotactic regulation of HEK 293 cells expressing this receptor.31 We next questioned whether the potential 3i loop of CXCR3 played a role in mediating the migratory response. The CXCR3 3i loop contains a single serine, compared with the CXCR4 3i loop that includes several serine residues, which may suggest the involvement of this amino acid in chemotactic regulation (Table 1). Therefore, the 3i loop S245A and the double-mutant 37/S245A were tested. HEK 293 cells that expressed the mutant S245A, like WT CXCR3-expressing cells, were capable of sensing low chemotactic levels of CXCL11 (up to 100 ng/mL). This mutation did not significantly affect the level of the response (12.4% ± 11.9%) compared with WT CXCR3-expressing cells. The 37/S245A that also lacks all the Ser-Thr and the trileucine motifs in the C terminus inhibited the migration at a low CXCL11 concentration (50 ng/mL) in a level similar to 332-334L A versus the WT receptor (43.3% ± 6.7%) (Figures 3E-F,4B). These results suggest that CXCR3 domain(s) other than S245A play a role in this signaling event along with the C terminus, and remain to be discovered. Inhibition of CXCR3-mediated migration at high concentrations of CXCL11 requires S245 in the 3i loop Under an excess of chemoattractant, desensitization requires the discontinuation of leukocyte migration to reduce the inflammatory response. Our observations demonstrate that the migration of HEK 293 cells expressing the WT and impaired C terminus of CXCR3 was reduced at high levels (500 and 1000 ng/mL) of CXCL11 (Figure 3A-D). However, at these high ligand levels, the cells that expressed the 3i loop mutant S245A lost their ability to desensitize the response toward CXCL11 (Figure 3E). 37/S245A, similarly to S245A, was unable to desensitize the migratory response at high CXCL11 concentrations (Figure 3F). Taken together, these findings suggest that the C terminus of CXCR3 is unnecessary to attenuate the biological response toward high levels of CXCL11, and serine 245 in the 3i loop regulates this response. To further study the role that S245A plays in regulating the migration of cells in response to CXCL11, we expressed the WT and the S245A CXCR3 chemokine receptor mutant on a cell surface of human T-cellderived leukemic Jurkat cells, human NK cellderived YTS leukemic cell line, and the rat mast cellderived leukemic RBL cells, and tested their ability to migrate in response to CXCL11 (Figure 5). Jurkat cells as well as the YTS human cells expressing CXCR4 were previously shown to migrate well in response to CXCL12.22,25 RBL rat cells were extensively used to study chemokine-induced migration and internalization of various chemokine receptors, including the CXCR1 and CXCR2 chemokine receptors.23,24 Surprisingly, we found that both RBL as well as YTS cells overexpressing the human CXCR3 chemokine receptor poorly migrate in response to CXCL11 (Figure 5B). It is important to note that overexpression of CXCR4 in YTS cells and overexpression of CXCR1 in RBL cells resulted in a significant migration of the cells toward the relevant chemokines CXCL12 and CXCL8.22,25 In contrast to RBL and YTS cells, the migration of Jurkat cells expressing WT CXCR3 was significant and dose dependent. WT CXCR3 and the S245A mutant bound iodinated CXCL11 at similarly high levels of affinity (0.2-0.4 nM) as determined by IC50 values (Figure 1; Table 1). Interestingly, Jurkat cells bound CXCL11 at an affinity 10-fold higher than that of HEK 293 cells. This may be the result of pretreatment of HEK 293 cells with trypsin prior to the performance of the binding assay. Jurkat cells that expressed the mutant S245A and the WT CXCR3 were capable of sensing low chemotactic levels of CXCL11 (50 ng/mL). Furthermore, this mutation did not significantly affect the level of migration of cells in response to CXCL11 (20% versus 25%). Similar to HEK 293 cells, the migration of Jurkat cells that expressed the 3i loop mutant S245A was not desensitized at high CXCL11 concentrations (Figure 5C). However, in contrast to HEK 293 cells, high levels of CXCL11 induced only a minor reduction in the migration of Jurkat cells that expressed the WT CXCR3. Taken together, these findings suggest that the response of cells toward a high concentration of CXCL11 is also dependent on the type of cell tested.
Internalization of CXCR3 induced by ligand and PMA is differentially regulated through its membrane-proximal carboxyl terminus Desensitization of a biological response can be regulated through the chemokine receptor internalization. We therefore tested the role of the carboxyl terminal domains and/or the S245 3i loop of CXCR3 in the receptor internalization. To determine the kinetics of CXCR3 internalization induced by the ligand CXCL11 and PMA, an internalization assay was performed in a time-course manner in WT CXCR3-expressing HEK 293 cells. These cells were stimulated with either 1 mg/mL CXCL11 or 100 ng/mL PMA. CXCL11 induced a marked internalization of CXCR3 within 2 hours (61.9 ± 2.8%), whereas the internalization mediated by PMA was slower, reaching a similar extent after 5 hours (68.8 ± 1.4%) (Figure 6A). Several members of the CXC CKR family, such as CXCR4, are subject to modulation of internalization by the PKC pathway. We found that the phorbol ester PMA could also induce internalization of CXCR3 in interleukin-2 (IL-2)activated NK and CXCR3-HEK 293 cells (data not shown). In comparing the pattern of CXCL11 effect on CXCR3 internalization between the hematopoietic and CXCR3-HEK 293 cells, we found that RBL-expressing CXCR3 and CXCR3-HEK 293 cells similarly reduced their CXCR3 expression by approximately 40% after 1 hour of incubation with 1 mg/mL CXCL11, whereas both Jurkat and YTS cells rapidly reduced their CXCR3 expression by approximately 80% (Figure 7A). However, slow or rapid internalization of CXCR3 did not correlate with the migration potential of the cells since in the slow internalizer (RBL cells) and the fast internalizer (YTS cells), migration in response to CXCL11 was poor. These studies using 4 different cell types confirm not only that HEK 293 cells are suitable for studying CXCR3, but suggest that the function and biochemical behavior of CXCR3 are dependent on the type of cells used.
To determine whether similar mechanisms were involved in ligand- and PMA-mediated internalization of CXCR3, the effect of PKC inhibitors on the receptor internalization was investigated. CXCR3-expressing HEK 293 cells were pretreated with staurosporin, a general inhibitor of PKC, and then challenged with a ligand or PMA. Subsequently, cell-surface CXCR3 levels were determined by FACS (Figure 6B). Staurosporin completely inhibited the PMA-induced internalization of CXCR3. In contrast, the ligand-induced internalization of the receptor was not blocked. To identify which PKC isotype was involved in the PMA-induced internalization process, similar experiments were performed with GF 109203X or rottlerin, preferential inhibitors of PKC or PKC , respectively. The results suggest that PKC is involved in CXCR3 PMA-induced internalization in HEK 293 cells, as GF 109203X significantly blocked its internalization. In contrast, the ligand-induced internalization was not affected by either one of the PKC inhibitors. These results indicate that ligand- and PKC-induced internalization of CXCR3 are regulated differentially. The mechanisms of ligand- and PMA-induced internalization of CXCR3 are not known. We therefore examined the role of CXCR3 carboxyl-terminus and third intracellular loop in receptor internalization.
To reduce the effect of receptor recycling on the levels of CXCR3 cell surface to a minimum, the internalization of the mutant receptors was assayed in response to CXCL11 and PMA after 1 hour. The truncated 349stop
Dileucine or Ile-Leu motif present in CXCR2 and CXCR4, was shown to regulate the internalization of these receptors.18,19 To assess its role in CXCR3 internalization, a site-directed mutagenesis of the candidate LLL in the membrane proximal portion of CXCR3 C-tail was generated (332-334L
The 3i loop, S245, is involved in the inhibition of the migratory response to CXCL11 (Figures 3,5C). We found that the S245A CXCR3 mutant was equally well internalized compared with the WT CXCR3 receptor in all cell lines tested (Figure 7A-B). Interestingly, when the S245A mutation was introduced in the CXCR3 truncated receptor 332stop S245 3i loop of CXCR3 regulates actin polymerization and adhesion, but not calcium mobilization To further study the mechanism by which the 3i loop S245 regulates migration, we tested the intracellular calcium mobilization induced by CXCL11 in HEK 293 clones expressing WT CXCR3 and the 3i loop mutant S245A. Both cells responded equivalently to a primary dose of CXCL11 by inducing a transient rise of intracellular free Ca2+, which was desensitized by a subsequent challenge with a similar dose of the ligand (Figure 8A). Among the requirements for chemokine-dependent integrin-mediated adhesion and migration are an increased rate of actin polymerization and an extensive reorganization of the F-actinbased cytoskeleton. We therefore analyzed actin-filament polymerization in HEK 293 cells expressing WT or mutated S245A CXCR3. Cells were pretreated with CXCL11 at various time points, and promotion of actin polymerization was measured by binding of FITC-phalloidin, that stabilizes the filaments against depolymerization. Chemotactic concentration of 100 ng/mL CXCL11 within 1 minute did not induce a remarkable change of actin polymerization in either WT or S245 CXCR3-expressing cells (data not shown). However, 1 mg/mL CXCL11 promoted a time-dependent burst of actin polymerization in WT CXCR3-expressing cells, while such response was abrogated by the S245A mutant (Figure 8B). An increased rate of actin polymerization was associated with an increased integrin activation resulting in firm adhesion, as well as in reduced migration. To study the involvement of CXCR3 serine 245 in integrin-mediated adhesion, we used Jurkat cells expressing endogenous very late antigen 4 (VLA-4) and either the WT CXCR3 or the S245A mutant CXCR3. The influence of immobilized CXCL11 on VLA-4dependent Jurkat cell adhesion and spreading was tested on plates coated with sVCAM and CXCL11 (2 mg/mL), or FN (5 mg/mL) and CXCL11 (2 mg/mL). As a negative control, the plates were coated with either sVCAM or FN and denatured CXCL11. The cells were allowed to settle on the substrate-coated chamber wall for 1 minute. Flow was initiated and increased in 2- to 2.5-fold increments every 5 seconds. In the presence of shear stress, without functional CXCL11 cells failed to arrest on VCAM-1 or FN (Figure 9A-B). When VCAM-1 or FN were coimmobilized with CXCL11, the Jurkat cells expressing the WT CXCR3 firmly arrested on VCAM-1 or FN (Figure 9A-B). In contrast, Jurkat cells expressing the S245A mutant CXCR3 exhibited attenuated adhesion to VCAM-1 or FN (Figure 9A-B and Movies S1-S2, which are available on the Blood website; see the Supplemental Movies link at the top of the online article). Furthermore, when subjected to an immediate pulse of high shear stress (5 dyn/cm2), mutant expressing cells immediately detached from the VCAM-1/CXCL11 substrate, whereas cells expressing WT CXCR3 remained firmly bound (Figure 9C). In order to test the ability of adherent cells to spread on the integin ligand in response to CXCL11, cells were allowed to settle on the substrate for 1 minute and were subjected for a constant shear stress of 5 dyn/cm2 for 15 minutes. The interaction of cells with the coated substrate under shear flow were recorded on a videotape with a long-integration LIS-700 CCD video camera and SVHS video recorder with time-lapse. We found that whereas the Jurkat cells expressing the WT CXCR3 readily spread on the coated substrate, the mutant-expressing cells failed to spread on the VCAM-1/CXCL11-coated substrate (Movies S3-S4). Thus, the 3i loop S245 is essential for both rapid VLA-4 activation triggered by CXCL11 as well as for subsequent VLA-4mediated cell spreading induced by the CXCR3 ligand.
These results suggest a role for S245 at 3i loop in regulating both integrin adhesion strengthening as well as cell spreading on integrin ligands in response to CXCL11 signals under shear flow.
Studies of CXCR3 involvement in the trafficking of immune cells to sites of inflammation and its biological effects are widespread. However, little is known about the regulation of migration, adhesion, and internalization of this receptor. The carboxyl terminus of CXCR3 consists of two main defined domains, the potential phosphorylation Ser-Thr and the trileucine domains, which are separated by an undefined domain of 14 amino acids (amino acids 335-348). This organization differs from that of the carboxyl terminus of the other CXC CKRs, CXCR1, CXCR2, and CXCR4. In CXCR1 and CXCR2, the Ser-Thr domain is separated from the L-LKIL by only 6 amino acids, while in CXCR4 the Ser and Thr residues are dispersed also upstream to the LKIL motif. CXCR3 3i loop also diverges in the organization and frequency of the potential Ser-Thr and leucines. In contrast to CXCR1 and CXCR2 and like CXCR4, the 3i loop of CXCR3 contains an additional serine, which is a potential phosphorylation site (Table 1).
In this research, we have constructed a progressive truncated (349stop
To study the CXCR3 parts that regulate the receptor function, we first established the relevance of HEK 293 cells in CXCR3-mediated migration toward its ligand CXCL11. Heterotrimeric G proteins of the G
CXCR3-mediated cell migration is of importance to determine the type of inflammatory responses. The migration of HEK 293 cells expressing WT CXCR3 and the mutated or truncated form of the C terminal of the receptor was dose dependent and desensitized at high doses of CXCL11. This pattern of migratory response is typical for other CXC CKRs. The study of the mechanism of CXCR3 migratory response revealed that the migration under low and chemotactic dose of CXCL11 is regulated mainly through the C terminus of the receptor, while most of the regulation is attributed to the trileucine motif, as the 332-334L | |||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||