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Figure 4. BIRC2 Knockdown in Melanoma Cells Decreases Tumor Growth and Alters Inflammatory Cell Recruitment to the Tumor Micro- environment (A) B16F10 subclones expressing NTC or BIRC2 shRNA (sh3 or sh4) were implanted subcutaneously in female C57BL/6 mice, and tumor growth was monitored. (B–F) Tumors were harvested on day 35 and the percentage of CD8+/CD44+/CD69+ activated T cells (B), CD11b+/NK1.1+ NK cells (C), <t>CD11b+/CD11c+/F4/80</t>
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Figure 4. BIRC2 Knockdown in Melanoma Cells Decreases Tumor Growth and Alters Inflammatory Cell Recruitment to the Tumor Micro- environment (A) B16F10 subclones expressing NTC or BIRC2 shRNA (sh3 or sh4) were implanted subcutaneously in female C57BL/6 mice, and tumor growth was monitored. (B–F) Tumors were harvested on day 35 and the percentage of CD8+/CD44+/CD69+ activated T cells (B), CD11b+/NK1.1+ NK cells (C), <t>CD11b+/CD11c+/F4/80</t>
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Figure 4. BIRC2 Knockdown in Melanoma Cells Decreases Tumor Growth and Alters Inflammatory Cell Recruitment to the Tumor Micro- environment (A) B16F10 subclones expressing NTC or BIRC2 shRNA (sh3 or sh4) were implanted subcutaneously in female C57BL/6 mice, and tumor growth was monitored. (B–F) Tumors were harvested on day 35 and the percentage of CD8+/CD44+/CD69+ activated T cells (B), CD11b+/NK1.1+ NK cells (C), <t>CD11b+/CD11c+/F4/80</t>
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Figure 4. BIRC2 Knockdown in Melanoma Cells Decreases Tumor Growth and Alters Inflammatory Cell Recruitment to the Tumor Micro- environment (A) B16F10 subclones expressing NTC or BIRC2 shRNA (sh3 or sh4) were implanted subcutaneously in female C57BL/6 mice, and tumor growth was monitored. (B–F) Tumors were harvested on day 35 and the percentage of CD8+/CD44+/CD69+ activated T cells (B), CD11b+/NK1.1+ NK cells (C), <t>CD11b+/CD11c+/F4/80</t>
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FIGURE 2. Skin DCs constitu- tively express the NK1R. A–C and D–F are cross-sections of skin (ear) from two independent experiments showing the expression of the NK1R (green) by keratinocytes, epidermal LCs (arrowheads), and DDCs (ar- rows) (the latter two identified by their expression of <t>CD11c</t> in red). C and F, The yellow fluorescence is due to the overlap of red (CD11c) and green (NK1R). Cell nuclei were counterstained with 4,6-diamidino- 2-phenylindole (blue). Immunofluo- rescence, magnification: 200. G, The green histogram demonstrates the expression of NK1R by freshly isolated LCs gated on CD11c expres- sion. The gray histogram corresponds to negative control cells. The num- bers in the histogram represents the percentage of NK1R-positive LCs and the mean fluorescent intensity (between parentheses). Data are representative of two independent experiments.
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FIGURE 7 Flow cytometry analysis of dendritic cells (DCs) and T lymphocytes in immunized BALB/c mice. (A) The box graph shows the percentages of <t>CD11c+</t>
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FIGURE 7 Flow cytometry analysis of dendritic cells (DCs) and T lymphocytes in immunized BALB/c mice. (A) The box graph shows the percentages of <t>CD11c+</t>
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FIGURE 7 Flow cytometry analysis of dendritic cells (DCs) and T lymphocytes in immunized BALB/c mice. (A) The box graph shows the percentages of <t>CD11c+</t>
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Image Search Results


Figure 4. BIRC2 Knockdown in Melanoma Cells Decreases Tumor Growth and Alters Inflammatory Cell Recruitment to the Tumor Micro- environment (A) B16F10 subclones expressing NTC or BIRC2 shRNA (sh3 or sh4) were implanted subcutaneously in female C57BL/6 mice, and tumor growth was monitored. (B–F) Tumors were harvested on day 35 and the percentage of CD8+/CD44+/CD69+ activated T cells (B), CD11b+/NK1.1+ NK cells (C), CD11b+/CD11c+/F4/80

Journal: Cell reports

Article Title: BIRC2 Expression Impairs Anti-Cancer Immunity and Immunotherapy Efficacy.

doi: 10.1016/j.celrep.2020.108073

Figure Lengend Snippet: Figure 4. BIRC2 Knockdown in Melanoma Cells Decreases Tumor Growth and Alters Inflammatory Cell Recruitment to the Tumor Micro- environment (A) B16F10 subclones expressing NTC or BIRC2 shRNA (sh3 or sh4) were implanted subcutaneously in female C57BL/6 mice, and tumor growth was monitored. (B–F) Tumors were harvested on day 35 and the percentage of CD8+/CD44+/CD69+ activated T cells (B), CD11b+/NK1.1+ NK cells (C), CD11b+/CD11c+/F4/80

Article Snippet: REAGENT or RESOURCE SOURCE IDENTIFIER Antibodies Anti-mouse BIRC2 Novus Biologicals Cat# NB100-56889 Anti-mouse b-Actin Santa Cruz Biotechnology Cat# sc-47778 Anti-mouse CD3 BioLegend Cat# 102102 Anti-mouse CD3 Novus Biologicals Cat# FAB4841G-100 Anti-mouse CD4 Novus Biologicals Cat# FAB554A-100 Anti-mouse CD8A Novus Biologicals Cat# NBP1-49045PE Anti-mouse CD11b Novus Biologicals Cat# NB110-89474AF405 Anti-mouse CD11c Novus Biologicals Cat# NB110-40766AF488 Anti-mouse CD25 Novus Biologicals Cat# NBP2-27425AF488 Anti-mouse CD28 BioLegend Cat# 100223 Anti-mouse CD44 Novus Biologicals Cat# NBP1-47386APC Anti-mouse CD45 Novus Biologicals Cat# NB100-77417AF488 Anti-mouse CD45 Novus Biologicals Cat# NB100-77417AF405 Anti-mouse CD69 Novus Biologicals Cat# NBP1-28011AF488 Anti-mouse CD80 Novus Biologicals Cat# NBP1-43385AF488 Anti-mouse CD314 Novus Biologicals Cat# FAB1547V-100UG Anti-mouse F4/80 Novus Biologicals Cat# NB600-404APC Anti-mouse FoxP3 Novus Biologicals Cat# NB100-39002PE Anti-human HIF-1a Novus Biologicals Cat# NB100-479 Anti-human HIF-1b Novus Biologicals Cat# NB100-124 Anti-human HIF-2a Novus Biologicals Cat# NB100-122 Anti-mouse IFNG Novus Biologicals Cat# IC485V-100UG Anti-mouse Ly6c Novus Biologicals Cat# NBP1-28046AF488 Anti-mouse Ly6g Novus Biologicals Cat# FAB1037A-100 Anti-mouse NK1.1 Novus Biologicals Cat# NB100-77528APC Anti-mouse p50 Novus Biologicals Cat# NBP2-6735 Anti-mouse Rel A Novus Biologicals Cat# NB100-2176 Anti-mouse Rel B Novus Biologicals Cat# NBP2-20123 Anti-mouse a-Tubulin Novus Biologicals Cat# NB600-506 Armenian Hamster IgG, anti-mouse CXCL9 (MIG) Bio X Cell Cat# BE0309 Polyclonal Armenian hamster IgG Bio X Cell Cat# BE0091 Syrian Hamster IgG, anti-mouse CTLA-4 Bio X Cell Cat# BP0131 Rat IgG2a, k, anti-mouse PD-1 (CD279) Bio X Cell Cat# BP0146 Rat IgG2a isotype control Bio X Cell Cat# BE0089 Chemicals, Peptides, and Recombinant Proteins Acriflavine Sigma Aldrich SKU # A8126 TRIzol Reagent Invitrogen Cat# 15596026 Puromycin Dihydrochloride ThermoFisher Cat# A1113803 ECL Prime Western Blotting System GE Healthcare SKU# GERPN2232 PolyJet In Vitro DNA Transfection Reagent Signagen Cat # SL100688 Rabbit anti-mouse IgG-HRP Santa Cruz Biotech Cat# sc-358914 Rabbit IgG HRP Linked Whole Ab GE Healthcare SKU# GENA934 (Continued on next page) e1 Cell Reports 32, 108073, August 25, 2020

Techniques: Knockdown, Expressing, shRNA

Figure 5. BIRC2 Knockdown in Breast Can- cer Cells Decreases Tumor Growth and Al- ters Inflammatory Cell Recruitment to the Tumor Microenvironment (A) EMT6 subclones expressing NTC or either of two shRNAs targeting BIRC2 (sh4 and sh5) were cultured at 20% O2 and analyzed for expression of BIRC2 protein by immunoblot assay. (B) EMT6 subclones (NTC, sh4, and sh5) were im- planted into the mammary fat pad of female BALB/c mice, and tumor volumes were determined (mean ± SEM; n = 4); *p < 0.05 (Kruskal-Wallis test with Benjamini-Hochberg post-test). (C–F) Tumors were harvested on day 13, and the percentage of CD8+/CD44+/CD69+ activated T cells (C), CD3/NK1.1+ NK cells (D), CD11b+/F4/ 80/CD11c+ DCs (E), and CD11b+/Ly6C+ MDSCs (F) was determined (mean ± SEM; n = 4); *p < 0.05 for the indicated pairs (Kruskal-Wallis test with Benjamini-Hochberg post-test). All immune cell populations were calculated as a percentage of the total number of live cells (based on forward and side scatter). (G) EMT6 subclones were implanted into the mammary fat pad of female SCID mice, and tumor growth was monitored. See also Figure S3B.

Journal: Cell reports

Article Title: BIRC2 Expression Impairs Anti-Cancer Immunity and Immunotherapy Efficacy.

doi: 10.1016/j.celrep.2020.108073

Figure Lengend Snippet: Figure 5. BIRC2 Knockdown in Breast Can- cer Cells Decreases Tumor Growth and Al- ters Inflammatory Cell Recruitment to the Tumor Microenvironment (A) EMT6 subclones expressing NTC or either of two shRNAs targeting BIRC2 (sh4 and sh5) were cultured at 20% O2 and analyzed for expression of BIRC2 protein by immunoblot assay. (B) EMT6 subclones (NTC, sh4, and sh5) were im- planted into the mammary fat pad of female BALB/c mice, and tumor volumes were determined (mean ± SEM; n = 4); *p < 0.05 (Kruskal-Wallis test with Benjamini-Hochberg post-test). (C–F) Tumors were harvested on day 13, and the percentage of CD8+/CD44+/CD69+ activated T cells (C), CD3/NK1.1+ NK cells (D), CD11b+/F4/ 80/CD11c+ DCs (E), and CD11b+/Ly6C+ MDSCs (F) was determined (mean ± SEM; n = 4); *p < 0.05 for the indicated pairs (Kruskal-Wallis test with Benjamini-Hochberg post-test). All immune cell populations were calculated as a percentage of the total number of live cells (based on forward and side scatter). (G) EMT6 subclones were implanted into the mammary fat pad of female SCID mice, and tumor growth was monitored. See also Figure S3B.

Article Snippet: REAGENT or RESOURCE SOURCE IDENTIFIER Antibodies Anti-mouse BIRC2 Novus Biologicals Cat# NB100-56889 Anti-mouse b-Actin Santa Cruz Biotechnology Cat# sc-47778 Anti-mouse CD3 BioLegend Cat# 102102 Anti-mouse CD3 Novus Biologicals Cat# FAB4841G-100 Anti-mouse CD4 Novus Biologicals Cat# FAB554A-100 Anti-mouse CD8A Novus Biologicals Cat# NBP1-49045PE Anti-mouse CD11b Novus Biologicals Cat# NB110-89474AF405 Anti-mouse CD11c Novus Biologicals Cat# NB110-40766AF488 Anti-mouse CD25 Novus Biologicals Cat# NBP2-27425AF488 Anti-mouse CD28 BioLegend Cat# 100223 Anti-mouse CD44 Novus Biologicals Cat# NBP1-47386APC Anti-mouse CD45 Novus Biologicals Cat# NB100-77417AF488 Anti-mouse CD45 Novus Biologicals Cat# NB100-77417AF405 Anti-mouse CD69 Novus Biologicals Cat# NBP1-28011AF488 Anti-mouse CD80 Novus Biologicals Cat# NBP1-43385AF488 Anti-mouse CD314 Novus Biologicals Cat# FAB1547V-100UG Anti-mouse F4/80 Novus Biologicals Cat# NB600-404APC Anti-mouse FoxP3 Novus Biologicals Cat# NB100-39002PE Anti-human HIF-1a Novus Biologicals Cat# NB100-479 Anti-human HIF-1b Novus Biologicals Cat# NB100-124 Anti-human HIF-2a Novus Biologicals Cat# NB100-122 Anti-mouse IFNG Novus Biologicals Cat# IC485V-100UG Anti-mouse Ly6c Novus Biologicals Cat# NBP1-28046AF488 Anti-mouse Ly6g Novus Biologicals Cat# FAB1037A-100 Anti-mouse NK1.1 Novus Biologicals Cat# NB100-77528APC Anti-mouse p50 Novus Biologicals Cat# NBP2-6735 Anti-mouse Rel A Novus Biologicals Cat# NB100-2176 Anti-mouse Rel B Novus Biologicals Cat# NBP2-20123 Anti-mouse a-Tubulin Novus Biologicals Cat# NB600-506 Armenian Hamster IgG, anti-mouse CXCL9 (MIG) Bio X Cell Cat# BE0309 Polyclonal Armenian hamster IgG Bio X Cell Cat# BE0091 Syrian Hamster IgG, anti-mouse CTLA-4 Bio X Cell Cat# BP0131 Rat IgG2a, k, anti-mouse PD-1 (CD279) Bio X Cell Cat# BP0146 Rat IgG2a isotype control Bio X Cell Cat# BE0089 Chemicals, Peptides, and Recombinant Proteins Acriflavine Sigma Aldrich SKU # A8126 TRIzol Reagent Invitrogen Cat# 15596026 Puromycin Dihydrochloride ThermoFisher Cat# A1113803 ECL Prime Western Blotting System GE Healthcare SKU# GERPN2232 PolyJet In Vitro DNA Transfection Reagent Signagen Cat # SL100688 Rabbit anti-mouse IgG-HRP Santa Cruz Biotech Cat# sc-358914 Rabbit IgG HRP Linked Whole Ab GE Healthcare SKU# GENA934 (Continued on next page) e1 Cell Reports 32, 108073, August 25, 2020

Techniques: Knockdown, Expressing, Cell Culture, Western Blot

Figure 6. BIRC2 Knockdown in B16F10 Cells Increases Anti-tumor Immunity by Increasing CXCL9 Expression (A) NTC and BIRC2-KD subclones were implanted into C57BL/6 mice. When BIRC2-KD tumors became palpable, mice were treated with anti-CXCL9 or IgG every 3 days. Tumor volumes were determined (mean ± SEM; n = 4); *p < 0.05 (Kruskal-Wallis test with Benjamini-Hochberg post-test). (B–E) Tumors were harvested on day 35, and the percentage of CD8+ T cells (relative to CD45+ population) (B), CD8+/CD44+/CD69+ T cells (C), CD3/NK1.1+ NK cells (D), and CD11b+/CD11c+/F4/80 DCs (E) was determined (mean ± SEM; n = 4); *p < 0.05 (Kruskal-Wallis test with Benjamini-Hochberg post-test). All immune cell populations (except B) were calculated as a percentage of the total live cells (based on forward and side scatter). (F–H) The Pearson correlation test was performed to compare CXCL9 mRNA expression with CD8+ T cell score (F), NK cell score (G), and DC score (H), using TCGA data from 481 human melanomas. See also Figures S3C and S4.

Journal: Cell reports

Article Title: BIRC2 Expression Impairs Anti-Cancer Immunity and Immunotherapy Efficacy.

doi: 10.1016/j.celrep.2020.108073

Figure Lengend Snippet: Figure 6. BIRC2 Knockdown in B16F10 Cells Increases Anti-tumor Immunity by Increasing CXCL9 Expression (A) NTC and BIRC2-KD subclones were implanted into C57BL/6 mice. When BIRC2-KD tumors became palpable, mice were treated with anti-CXCL9 or IgG every 3 days. Tumor volumes were determined (mean ± SEM; n = 4); *p < 0.05 (Kruskal-Wallis test with Benjamini-Hochberg post-test). (B–E) Tumors were harvested on day 35, and the percentage of CD8+ T cells (relative to CD45+ population) (B), CD8+/CD44+/CD69+ T cells (C), CD3/NK1.1+ NK cells (D), and CD11b+/CD11c+/F4/80 DCs (E) was determined (mean ± SEM; n = 4); *p < 0.05 (Kruskal-Wallis test with Benjamini-Hochberg post-test). All immune cell populations (except B) were calculated as a percentage of the total live cells (based on forward and side scatter). (F–H) The Pearson correlation test was performed to compare CXCL9 mRNA expression with CD8+ T cell score (F), NK cell score (G), and DC score (H), using TCGA data from 481 human melanomas. See also Figures S3C and S4.

Article Snippet: REAGENT or RESOURCE SOURCE IDENTIFIER Antibodies Anti-mouse BIRC2 Novus Biologicals Cat# NB100-56889 Anti-mouse b-Actin Santa Cruz Biotechnology Cat# sc-47778 Anti-mouse CD3 BioLegend Cat# 102102 Anti-mouse CD3 Novus Biologicals Cat# FAB4841G-100 Anti-mouse CD4 Novus Biologicals Cat# FAB554A-100 Anti-mouse CD8A Novus Biologicals Cat# NBP1-49045PE Anti-mouse CD11b Novus Biologicals Cat# NB110-89474AF405 Anti-mouse CD11c Novus Biologicals Cat# NB110-40766AF488 Anti-mouse CD25 Novus Biologicals Cat# NBP2-27425AF488 Anti-mouse CD28 BioLegend Cat# 100223 Anti-mouse CD44 Novus Biologicals Cat# NBP1-47386APC Anti-mouse CD45 Novus Biologicals Cat# NB100-77417AF488 Anti-mouse CD45 Novus Biologicals Cat# NB100-77417AF405 Anti-mouse CD69 Novus Biologicals Cat# NBP1-28011AF488 Anti-mouse CD80 Novus Biologicals Cat# NBP1-43385AF488 Anti-mouse CD314 Novus Biologicals Cat# FAB1547V-100UG Anti-mouse F4/80 Novus Biologicals Cat# NB600-404APC Anti-mouse FoxP3 Novus Biologicals Cat# NB100-39002PE Anti-human HIF-1a Novus Biologicals Cat# NB100-479 Anti-human HIF-1b Novus Biologicals Cat# NB100-124 Anti-human HIF-2a Novus Biologicals Cat# NB100-122 Anti-mouse IFNG Novus Biologicals Cat# IC485V-100UG Anti-mouse Ly6c Novus Biologicals Cat# NBP1-28046AF488 Anti-mouse Ly6g Novus Biologicals Cat# FAB1037A-100 Anti-mouse NK1.1 Novus Biologicals Cat# NB100-77528APC Anti-mouse p50 Novus Biologicals Cat# NBP2-6735 Anti-mouse Rel A Novus Biologicals Cat# NB100-2176 Anti-mouse Rel B Novus Biologicals Cat# NBP2-20123 Anti-mouse a-Tubulin Novus Biologicals Cat# NB600-506 Armenian Hamster IgG, anti-mouse CXCL9 (MIG) Bio X Cell Cat# BE0309 Polyclonal Armenian hamster IgG Bio X Cell Cat# BE0091 Syrian Hamster IgG, anti-mouse CTLA-4 Bio X Cell Cat# BP0131 Rat IgG2a, k, anti-mouse PD-1 (CD279) Bio X Cell Cat# BP0146 Rat IgG2a isotype control Bio X Cell Cat# BE0089 Chemicals, Peptides, and Recombinant Proteins Acriflavine Sigma Aldrich SKU # A8126 TRIzol Reagent Invitrogen Cat# 15596026 Puromycin Dihydrochloride ThermoFisher Cat# A1113803 ECL Prime Western Blotting System GE Healthcare SKU# GERPN2232 PolyJet In Vitro DNA Transfection Reagent Signagen Cat # SL100688 Rabbit anti-mouse IgG-HRP Santa Cruz Biotech Cat# sc-358914 Rabbit IgG HRP Linked Whole Ab GE Healthcare SKU# GENA934 (Continued on next page) e1 Cell Reports 32, 108073, August 25, 2020

Techniques: Knockdown, Expressing

FIGURE 2. Skin DCs constitu- tively express the NK1R. A–C and D–F are cross-sections of skin (ear) from two independent experiments showing the expression of the NK1R (green) by keratinocytes, epidermal LCs (arrowheads), and DDCs (ar- rows) (the latter two identified by their expression of CD11c in red). C and F, The yellow fluorescence is due to the overlap of red (CD11c) and green (NK1R). Cell nuclei were counterstained with 4,6-diamidino- 2-phenylindole (blue). Immunofluo- rescence, magnification: 200. G, The green histogram demonstrates the expression of NK1R by freshly isolated LCs gated on CD11c expres- sion. The gray histogram corresponds to negative control cells. The num- bers in the histogram represents the percentage of NK1R-positive LCs and the mean fluorescent intensity (between parentheses). Data are representative of two independent experiments.

Journal: Journal of immunology (Baltimore, Md. : 1950)

Article Title: In vivo signaling through the neurokinin 1 receptor favors transgene expression by Langerhans cells and promotes the generation of Th1- and Tc1-biased immune responses.

doi: 10.4049/jimmunol.178.11.7006

Figure Lengend Snippet: FIGURE 2. Skin DCs constitu- tively express the NK1R. A–C and D–F are cross-sections of skin (ear) from two independent experiments showing the expression of the NK1R (green) by keratinocytes, epidermal LCs (arrowheads), and DDCs (ar- rows) (the latter two identified by their expression of CD11c in red). C and F, The yellow fluorescence is due to the overlap of red (CD11c) and green (NK1R). Cell nuclei were counterstained with 4,6-diamidino- 2-phenylindole (blue). Immunofluo- rescence, magnification: 200. G, The green histogram demonstrates the expression of NK1R by freshly isolated LCs gated on CD11c expres- sion. The gray histogram corresponds to negative control cells. The num- bers in the histogram represents the percentage of NK1R-positive LCs and the mean fluorescent intensity (between parentheses). Data are representative of two independent experiments.

Article Snippet: Flow cytometric analysis of single-cell suspensions LC-enriched epidermal cell suspensions were blocked with 10% normal donkey serum and incubated (30 min, 4°C) with PE anti-CD11c mAb in combination with goat anti-mouse NK1R polyclonal Ab, recognizing the N terminus epitope of the human and mouse NK1R (Santa Cruz Biotechnology), followed by FITC-conjugated donkey anti-goat IgG, F(ab )2 (Jackson ImmunoResearch Laboratories).

Techniques: Expressing, Isolation, Negative Control

FIGURE 5. The NK1R agonist enhances the abilities of the GG to promote sDLN inflammation and homing of activated LCs. A–D, Structure of sDLNs (inguinal) excised from nontreated control mice (A) and from animals treated (24 h prior) with: the NK1R agonist (i.d.) (B), GG (pCMV-Luc) (C), or GG plus NK1R agonist (D). sDLNs from treated mice show sinus hyperplasia characterized by the presence of cells with abundant pale cytoplasm (some with morphological features of DCs indicated by arrows and detailed in the insets) located mainly within the subcortical and paracortical areas (dotted lines). Additionally, 1-m gold beads were detected in the cytoplasm of DCs 24 h after GG treatments alone or in combination with the NK1R agonist (illustrated in insets of C and D and indicated by asterisks). H&E stain: magnification, 400; insets, 1000. E–H, Identification of the population of LCs coexpressing langerin (CD207 (green)) and CD11c (red) (arrows) in the paracortical areas of sDLNs (inguinal) excised from nonimmunized control mice (E) and from animals treated (24 h prior) with NK1R agonist (i.d.) (F), GG (pCMV-Luc) (G), or GG plus NK1R agonist (H). Insets show CD11clangerin LCs at higher magnification. Immunofluorescence: magnification, 200; insets, 1000. I, Quantification by flow cytometry of CD11cCD11bMHC-II (IAb)highlan- gerin epidermal LCs and CD11cCD11bMHC-II (IAb)highlangerin DDCs in the sDLNs (inguinal) of nonimmunized control mice and animals treated (24 h prior) with NK1R agonist (i.d.), GG (pCMV-Luc), or GG plus NK1R agonist. Data are representative of two independent experiments. J, Comparative analysis of tg Luc expression in sDLNs 24 h after GG delivery of pNFB-Luc or pCMV-Luc in the presence (or not; control) of the NK1R agonist. Means 1 SD of the fold increase of RLU compared with background levels are illustrated. Three independent experiments were performed.

Journal: Journal of immunology (Baltimore, Md. : 1950)

Article Title: In vivo signaling through the neurokinin 1 receptor favors transgene expression by Langerhans cells and promotes the generation of Th1- and Tc1-biased immune responses.

doi: 10.4049/jimmunol.178.11.7006

Figure Lengend Snippet: FIGURE 5. The NK1R agonist enhances the abilities of the GG to promote sDLN inflammation and homing of activated LCs. A–D, Structure of sDLNs (inguinal) excised from nontreated control mice (A) and from animals treated (24 h prior) with: the NK1R agonist (i.d.) (B), GG (pCMV-Luc) (C), or GG plus NK1R agonist (D). sDLNs from treated mice show sinus hyperplasia characterized by the presence of cells with abundant pale cytoplasm (some with morphological features of DCs indicated by arrows and detailed in the insets) located mainly within the subcortical and paracortical areas (dotted lines). Additionally, 1-m gold beads were detected in the cytoplasm of DCs 24 h after GG treatments alone or in combination with the NK1R agonist (illustrated in insets of C and D and indicated by asterisks). H&E stain: magnification, 400; insets, 1000. E–H, Identification of the population of LCs coexpressing langerin (CD207 (green)) and CD11c (red) (arrows) in the paracortical areas of sDLNs (inguinal) excised from nonimmunized control mice (E) and from animals treated (24 h prior) with NK1R agonist (i.d.) (F), GG (pCMV-Luc) (G), or GG plus NK1R agonist (H). Insets show CD11clangerin LCs at higher magnification. Immunofluorescence: magnification, 200; insets, 1000. I, Quantification by flow cytometry of CD11cCD11bMHC-II (IAb)highlan- gerin epidermal LCs and CD11cCD11bMHC-II (IAb)highlangerin DDCs in the sDLNs (inguinal) of nonimmunized control mice and animals treated (24 h prior) with NK1R agonist (i.d.), GG (pCMV-Luc), or GG plus NK1R agonist. Data are representative of two independent experiments. J, Comparative analysis of tg Luc expression in sDLNs 24 h after GG delivery of pNFB-Luc or pCMV-Luc in the presence (or not; control) of the NK1R agonist. Means 1 SD of the fold increase of RLU compared with background levels are illustrated. Three independent experiments were performed.

Article Snippet: Flow cytometric analysis of single-cell suspensions LC-enriched epidermal cell suspensions were blocked with 10% normal donkey serum and incubated (30 min, 4°C) with PE anti-CD11c mAb in combination with goat anti-mouse NK1R polyclonal Ab, recognizing the N terminus epitope of the human and mouse NK1R (Santa Cruz Biotechnology), followed by FITC-conjugated donkey anti-goat IgG, F(ab )2 (Jackson ImmunoResearch Laboratories).

Techniques: Control, Staining, Cytometry, Expressing

FIGURE 7 Flow cytometry analysis of dendritic cells (DCs) and T lymphocytes in immunized BALB/c mice. (A) The box graph shows the percentages of CD11c+

Journal: Frontiers in immunology

Article Title: Immunization with a novel mRNA vaccine, TGGT1_216200 mRNA-LNP, prolongs survival time in BALB/c mice against acute toxoplasmosis.

doi: 10.3389/fimmu.2023.1161507

Figure Lengend Snippet: FIGURE 7 Flow cytometry analysis of dendritic cells (DCs) and T lymphocytes in immunized BALB/c mice. (A) The box graph shows the percentages of CD11c+

Article Snippet: 106 cells were conditioned in 100 mL of PBS and stained with anti-mouse CD11c-fluorescein isothiocyanate (FITC), CD83Phycoerythrin (PE), and CD86-PE (eBioscience) at 4°C in dark conditions for 40 min. Flow cytometry (Beckman Coulter Inc., Brea, frontiersin.org CA, USA) was used to sort and count cells after washing and collection to investigate the surface markers of dendritic cells (DCs).

Techniques: Flow Cytometry