| Literature DB >> 32600317 |
Sayaka Ishihara1, Tsuyoshi Sato1, Guangwei Du2, Daniele Guardavaccaro3, Akihiko Nakajima4, Satoshi Sawai4, Tohru Kataoka5, Koko Katagiri6.
Abstract
<span class="abstract_title">BACKGROUND: Lymphocytes circulate between periphe<span class="Gene">ral lymphoid tissues via blood and lymphatic systems, and chemokine-induced migration is important in trafficking lymphocytes to distant sites. The small GTPase Rap1 is important in mediating lymphocyte motility, and Rap1-GEFs are involved in chemokine-mediated Rap1 activation. Here, we describe the roles and mechanisms of Rap1-GEFs in lymphocyte trafficking.Entities:
Keywords: Chemokine; Lymphocyte trafficking; Migration; Rap1
Mesh:
Substances:
Year: 2020 PMID: 32600317 PMCID: PMC7325102 DOI: 10.1186/s12915-020-00809-0
Source DB: PubMed Journal: BMC Biol ISSN: 1741-7007 Impact factor: 7.431
Fig. 1Deficiency of RA-GEF in T cells impaired Rap1 activation and homing. a (Top) GTP-bound Rap1 was analyzed by a pull-down assay using GST-Ral-GDS-RBD. Wild-type (WT) or RA-GEF-deficient (DKO) T cells were stimulated with CCL21 at the indicated times. Bound Rap1 (Rap1-GTP) and total Rap1 were detected with anti-Rap1. (Bottom) Phosphorylation (p-) of Mst1/2 was examined with anti-phosphorylated Mst1/2. Total Mst1 is shown below. b (Top) WT and DKO T cells were stimulated with CCL21 for 10 min at 37 °C. The cells were stained with anti-LFA-1, alexaFluor 633 anti-Rat Ig, and FITC-CD44. DIC, differential interference contrast. Scale bar, 5 μm. Cells with segregated LFA-1 and CD44 accompanied with elongated cell shapes were considered to be polarized cells. (Bottom) The graph shows the percentages of the polarized cells (n = 50). *P < 0.001 versus WT cells. c (Left) Displacement and velocity of WT and DKO T cells were measured on ICAM-1 with or without CCL21 (n = 50). *1P < 0.001, *2P < 0.002 versus WT T cells. (Right) Representative tracks of WT or DKO T cells on the ICAM-1 in the presence of CCL21 are shown. Each line represents a single-cell track. d WT and DKO T cells were labeled with CFSE and CMTMR, respectively, and injected into normal mice. After 1 h, lymphocytes from injected mice were analyzed. (Left) Ratios of the number of DKO cells in the blood or lymph nodes relative to WT cells (adjusted to 1) (n = 3). *P < 0.001 versus corresponding cells. (Right) Representative flow cytometry profiles are shown. The numbers indicate the ratio of DKO to WT cells. e The numbers of T cells and B cells from the lymph nodes, spleen, and blood from WT or DKO mice are shown (n = 10). Cells were stained with anti-CD3, anti-B220, and anti-CD45 and analyzed using the flow cytometry. *P < 0.001 versus WT mice. Each bar graph represents the means ± SEM
Fig. 2Defective thymic egress in RA-GEF DKO mice. a (Top) Representative CD4 and CD8 profiles of the thymus from WT or DKO mice. (Bottom) Percentages of CD4+CD8+ double-positive (DP), CD4+ or CD8+ single-positive cells from the thymi of WT or DKO mice (n = 10). *1P < 0.002, *2P < 0.001 versus corresponding WT cells. b (Top) Representative CD24 and Qa-2 profiles on CD4+ or CD8+ single-positive cells from the thymus of WT or DKO mice. (Bottom) The numbers of CD24low and Qa-2high, CD4+ or CD8+ single-positive (SP) cells from the thymi of WT or DKO mice (n = 5). *P < 0.001 versus corresponding WT cells. c (Top) Representative CD69 and TCRβ profiles of the thymus from WT or DKO mice. (Bottom) Percentages of TCRβ high CD69low and TCRβ high CD69high cells in thymocytes of WT or DKO mice (n = 5). *P < 0.001 versus corresponding WT cells. d (Left upper) Representative CD4 and CD8 profiles of the thymus from WT or Rap1a and b double knockout (DKO) mice. (Left lower) Percentages of CD4+CD8+ DP, CD4+ or CD8+ SP cells from the thymi from WT or Rap1a/b DKO mice (n = 10). *1P < 0.005, *2P < 0.002 versus corresponding WT cells. (Right upper) Representative CD69 and TCRβ profiles of the thymus from WT or Rap1a/b DKO mice are shown. (Right lower) Percentages of TCRβ high CD69low and TCRβ high CD69high cells from the thymi of WT or Rap1a/b DKO mice (n = 10). *P < 0.001 versus corresponding WT cells. Each bar graph represents the means ± SEM
Fig. 3S1P activates Rap1 in RA-GEF-1/2-dependent manner, which is critical for chemotaxis toward S1P gradient. a (Top) Emigration of thymocytes toward CCL19 from the thymus lobes in Transwell chemotactic chambers. CD4 and CD8 profiles of CD3-gating cells that emigrated from WT and RA-GEF DKO thymus after 3 h of incubation with CCL19 are shown. (Middle) The numbers of emigrated cells from three independent experiments using WT or DKO mice. *P < 0.001 versus corresponding WT cells. (Bottom) Thymus sections from WT and DKO mice stained for CD4 (green) and CD8 (red). Scale bar, 200 μm. b The migration of thymocytes toward S1P in Transwell chemotactic chambers. The cell numbers of CD4+ or CD8+, and CD62Lhigh cells that migrated toward S1P after 3 h of incubation with S1P (n = 3). *P < 0.001 versus corresponding WT cells. c (Top) WT or DKO T cells were stimulated with 1 μM of S1P for the indicated times, lysed, and subjected to a pull-down assay. Bound Rap1 (Rap1-GTP) and total Rap1 were detected with anti-Rap1. (Bottom) Phosphorylation (p-) of Mst1/2 in WT or DKO T cells stimulated with 1 μM of S1P for the indicated times was examined with anti-phosphorylated Mst1/2. Total Mst1 is shown below. d (Top left) The experimental set-up of scheme. Time-lapse sequences of WT and DKO T cells migrating toward the S1P source were recorded. (Top right) Displacement of WT and DKO T cells (n = 30). *P < 0.001 versus WT T cells. (Bottom) Representative tracks of WT or DKO T cell on ICAM-1 in response to S1P gradient are shown. Each line represents a single-cell track. Each bar graph represents the means ± SEM
Fig. 4Impaired retention of RA-GEF-deficient B cells within the bone marrow. a (Top) Representative B220 and IgM profiles of B220+-gated bone marrow cells from WT or RA-GEF B DKO (DKO) mice. (Middle) Cell numbers of IgMlow or IgMhigh, B220low immature B cells, IgMlow, B220high mature B cells in the bone marrow (n = 5). *1P < 0.001, *2P < 0.001, *3P < 0.001 versus corresponding WT cells. (Bottom) Representative CXCR4 and VLA-4 profiles of B220+ bone marrow cells. b (Top) Representative B220 and IgM profiles of B220+-gated blood cells from WT or DKO mice. (Middle) Representative IgM and IgD profiles of B220+-gated blood cells. (Bottom) Cell numbers of IgMhigh, IgDlow immature and IgMlow, IgD high mature B cells from B220+-gated blood cells (n = 5). *1P < 0.001, *2P < 0.001 versus corresponding WT cells. c (Top) Representative IgM and CD43 profiles of B220low, IgM−-gated cells (progenitor B cells) from the bone marrow of WT or DKO mice. (Bottom) Cell numbers of IgM−, CD43low pre-B and IgM−, CD43 high pro-B cells from B220low, IgM−-gated bone marrow cells (n = 5). *P < 0.001 versus corresponding WT cells. d (Top) Representative CD21 and CD23 profiles of B220+-gated spleen cells from WT or DKO mice. (Bottom) Cell numbers of CD21−, CD23− immature, CD21high, CD23 low marginal zone (MZB) and CD21high, CD23 high follicular (FOB) B cells from B220+-gated spleen cells (n = 3). *1P < 0.001, *2P < 0.001 versus corresponding WT cells. e (Left) Lysates from WT or DKO B cells stimulated with CXCL12 at the indicated times were subjected to the pull-down assay. Bound Rap1 (Rap1-GTP) and total Rap1 were detected with anti-Rap1. (Right upper) Displacement of WT or DKO B cells was measured on VCAM-1 with or without CXCL12 (n = 30). (Lower) Representative tracks of WT or DKO B cells with CXCL12 are shown. Each line represents a single-cell track. Each bar graph represents the means ± SEM
Fig. 5PLD2 is critical for chemokine-dependent PA generation at the plasma membrane. a (Top) Displacement (left) and velocity (right) of T cells were measured on ICAM-1 with or without CCL21 in the presence or absence of 1 or 2 μM of CAY10593, CAY10594, and 5 or 10 μM of R59022 (n = 30). *1P < 0.002, *2P < 0.001 versus WT T cells. (Bottom) Representative tracks of T cells treated with the indicated inhibitors with CCL21 are shown. Each line represents a single-cell track. b (Left upper) Displacement and velocity of scramble (control) or PLD2-knockdown cells were measured on the ICAM-1 with or without CXCL12 (n = 30). *P < 0.001 versus control cells. (Left lower) Representative tracks of control or PLD2 KD cells with CXCL12 are shown. Each line represents a single-cell track. (Right) BAF cells treated with or without CAY10594 were stimulated with CXCL12 at the indicated times, lysed, and subjected to the pull-down assay. Bound Rap1 (Rap1-GTP) and total Rap1 were detected with anti-Rap1. c PASS-GFP-expressing control cells were stimulated with CXCL12 for the indicated times. Time 0 represents the first time-lapse image; subsequent images were obtained in the same focal plane. Scale bar, 5 μm. d Distribution of PASS-GFP and RA-GEF-1 in BAF cells that were untreated (none) or treated with CXCL12 for 10 min in the presence (middle) or absence (top) of CAY10594 is shown. Scale bar, 5 μm. (Bottom) The graph shows the percentages of cells with the polarized membrane localization of PASS at the plasma membrane (n = 30). *P < 0.001 versus CXCL12-stimulated cells in the absence of CAY10594. Each bar graph represents the means ± SEM
Fig. 6PA-dependent Rap1-GTP localization at the plasma membrane induces the development of the front membrane. a (Left) The FRET-based Rap1 activity sensor-expressing BAF cells were stimulated with CXCL12 in the presence or absence of CAY10594. An image of mTurquoise/Venus ratio represents FRET efficiency. (Center) The FRET efficiency at 6 μm edge region of plasma membrane is shown after CXCL12 stimulation (n = 20). Values are normalized to the level at zero point. The blue arrow marks the addition of CXCL12. (Right) The percentages of cells showing more than 1.3-fold increase in the FRET efficiency at the plasma membrane at 120 s after CXCL12 stimulation are shown (n = 20). *P < 0.001 versus CXCL12-stimulated cells without CAY10594. b (Left upper) Co-localization of PASS-GFP (PA) and Ral-GDS-RBD-mCherry (Rap1-GTP) in BAF cells at 10 min after CXCL12 stimulation with or without CAY10594 is shown. (Lower) We measured the ratios of Ral-GDS localized in the cytoplasm, plasma membrane, and PASS-concentrated region of plasma membrane of the cells. The graph shows percentages of cells showing that more than 50% of Ral-GDS was localized in each region (n = 30). (Right upper) Localization of Spa1-GFP and Ral-GDS-RBD-mCherry in BAF cells treated with CXCL12 is shown. (Lower) We measured the ratios of Spa1 localized in the cytoplasm, plasma membrane, and Ral-GDS-concentrated region of plasma membrane of the cells. The graph shows percentages of cells showing that more than 50% of Spa1 was localized in each region (n = 30). c Distribution of the Ral-GDS-RBD-mCherry and FITC-conjugated anti-CD44 in BAF cells on CXCL12 and ICAM-1-coated surface with (lower) or without (upper) CAY10594 is shown. Time 0 represents the first time-lapse image; subsequent images were obtained in the same focal plane. The asterisk symbol (*) shows the certain position. d Localization of PASS-GFP and Ral-GDS-RBD-mCherry in BAF cells on CXCL12 and ICAM-1-coated surface is shown. Each bar graph represents the means ± SEM. Scale bar, 5 μm
Fig. 7The de-phosphorylation of RA-GEF is necessary for Rap1 activation. a Mouse T cells untreated or treated with okadaic acid (OA) or staurosporine were stimulated with CCL21 and subjected to a pull-down assay. Bound Rap1 (Rap1-GTP) and total Rap1 were detected with anti-Rap1. b (Upper left) The de-phosphorylation of RA-GEF-2 in T cells stimulated with or without CCL21 for 60 s in the presence or absence of OA or staurosporine was analyzed by Phos-tag (upper) or conventional (lower) SDS-PAGE followed by immunoblotting with anti-RA-GEF-2. (Right) Quantification of ①, ②, and ③ bands, which is presented as percentage of each band. *1P < 0.006 versus unstimulated cells without OA, *2P < 0.01 versus unstimulated cells without OA, *3P < 0.05 versus unstimulated cells with OA, *4P < 0.001 versus CCL21-stimulated cells without OA. (Lower left) The de-phosphorylation of RA-GEF-2 in BAF cells stimulated with or without CXCL12 in the presence or absence of OA or staurosporine was analyzed by Phos-tag (upper) or conventional (lower) SDS-PAGE followed by immunoblotting with anti-RA-GEF-2. (Right) Quantification of ①, ②, and ③ bands, which is presented as percentage of each band. *1P < 0.005 versus unstimulated cells without OA, *2P < 0.04 versus unstimulated cells without okadaic acid, *3P < 0.008 versus unstimulated cells with OA, *4P < 0.004 versus CXCL12-stimulated cells without OA. C (Left)The de-phosphorylation of flag-RA-GEF-1 in BAF cells stimulated with or without CXCL12 in the presence or absence of OA or staurosporine was analyzed by Phos-tag (upper) or conventional (lower) SDS-PAGE followed by immunoblotting with anti-flag. (Right) Quantification of ①, ②, and ③ bands, which is presented as percentage of each band. *1P < 0.02 versus unstimulated cells without OA, *2P < 0.03 versus unstimulated cells without OA, *3P < 0.04 versus CCL21-stimulated cells without OA. The R value of 1.0 is defined as the position of the BPB dye. A representative of three independent experiments is shown. Each bar graph represents the means ± SEM
Fig. 8RA-GEF was basally phosphorylated by WNK1. a (Left) Total halo-WNK1 was detected with anti-halo. Actin was a loading control. (Middle) Control or WNK1-expressing BAF cells with or without OA were analyzed by Phos-tag (upper) or conventional (lower) SDS-PAGE followed by immunoblotting with anti-RA-GEF-2. (Right) Quantification of ①, ②, and ③ bands, which is presented as percentage of each band. *1P < 0.01 versus control cells with OA. b (Left) Total halo-WNK1 was detected with anti-halo. Actin was a loading control. (Middle) Flag-RA-GEF-1, and control or WNK1-expressing 293T cells with or without OA were analyzed by Phos-tag (upper) or conventional (lower) SDS-PAGE followed by immunoblotting with anti-flag. (Right) Quantification of ①, ②, and ③ bands, which is presented as percentage of each band. *1P < 0.002, *2P < 0.002 versus control cells in the presence or absence of OA. c (Left) Total WNK1 was detected with anti-WNK1. Actin was a loading control. (Middle top) Control or WNK1-knockdown (KD) BAF cells with or without OA were analyzed by Phos-tag (upper) or conventional (lower) SDS-PAGE followed by immunoblotting with anti-RA-GEF-2. (Bottom) Quantification of the abundance of ①, ②, and ③ bands, which is presented as percentage of each band. *P < 0.05 versus control cells in the presence of OA. (Right top) Control or WNK1KD, flag-RA-GEF-1-expressing BAF cells with or without OA were analyzed by Phos-tag (upper) or conventional (lower) SDS-PAGE followed by immunoblotting with anti-flag. The Phos-tag blot of flag-RA-GEF-1 was cropped from a same blot. (Bottom) Quantification of ①, ②, and ③ bands, which is presented as percentage of each band. *1P < 0.009, *2P < 0.008 versus control cells in the absence or presence of OA. The R value of 1.0 is defined as the position of the BPB dye. A representative of three independent experiments is shown. Each bar graph represents the means ± SEM
Fig. 9Model for RA-GEF regulation in T cells. In unstimulated cells, RA-GEF is distributed at the cytoplasm, and their phosphorylation/de-phosphorylation at similar residue(s) is co-occurring by WNK1 and other kinases, and PP2A. Gαi protein-coupled receptor (GPCR)-mediated signaling produces PA at the plasma membrane via PLD2, and RA-GEF translocates to the PA-generated region of plasma membrane. GPCR-mediated signaling phosphorylates RA-GEF at different residue(s), which activates RA-GEF. Activated RA-GEF converts Rap1-GDP to Rap1-GTP at PA-concentrated region of the plasma membrane and induces the protrusion, which develops the front membrane