| Literature DB >> 32457748 |
Aneesh Thakur1, Fernanda Endringer Pinto2, Harald Severin Hansen3, Peter Andersen4, Dennis Christensen4, Christian Janfelt1, Camilla Foged1.
Abstract
Understanding the in vivo fate of vaccine antigens and adjuvants and their safety is crucial for the rational design of mucosal subunit vaccines. Prime and pull vaccination using the T helper 17-inducing adjuvantEntities:
Keywords: H56/CAF01; antigen-presenting cells; drug delivery; mass spectrometry imaging; myeloid cells; pulmonary administration; subunit vaccine; tuberculosis
Mesh:
Substances:
Year: 2020 PMID: 32457748 PMCID: PMC7221191 DOI: 10.3389/fimmu.2020.00803
Source DB: PubMed Journal: Front Immunol ISSN: 1664-3224 Impact factor: 7.561
FIGURE 1Airway mucosal pull immunization after parenteral immunization with H56/CAF01 increases vaccine uptake by innate myeloid cells in the lungs as compared to parenteral or airway mucosal priming alone. BALB/c mice were immunized with Alexa Fluor® 647-labeled H56/DiR-labeled CAF01 via the i.m. or i.pulmon. or i.m. – i.pulmon. routes, and the vaccine uptake by lung cells was assessed by flow cytometry 3, 24, and 72 h post-immunization. Numbers of vaccine+ (H56+/CAF01+) (A) neutrophils (Ly6G+), (B) alveolar macrophages (F4/80+CD11b– ), (C) inflammatory monocytes (Ly6C+CD11b+), (D) B cells (CD19+), (E) moDCs (CD11c+F4/80+CD11b+CD64+), (F) CD11b+ DCs (CD11c+CD11b+), (G) pDCs (CD11c+Ly6C+F4/80– CD11b– ), (H) CD103+ DCs (CD11c+CD11b– CD103+), (I) interstitial macrophages (F4/80+CD11b+), and (J) eosinophils (SiglecF+) in the lungs. (K) Fraction of vaccine+ (H56+/CAF01+) cells in the lungs at 3, 24, and 72 h post-immunization. Data points represent n = 4, and they display mean values ± SEM. **p < 0.01, ***p < 0.001, ****p < 0.0001 vs. i.pulmon. immunization via two-way ANOVA with Tukey’s post-test.
FIGURE 2H56 uptake by different immune cells in the lungs following prime or prime – pull immunization with H56/CAF01. BALB/c mice were immunized with Alexa Fluor® 647-labeled H56/DiR-labeled CAF01 via i.m. or i.pulmon. or i.m. – i.pulmon. routes, and the H56+ uptake by lung cells was assessed by flow cytometry 3, 24, and 72 h post-immunization. Numbers of H56+ (A) neutrophils (Ly6G+), (B) alveolar macrophages (F4/80+CD11b– ), (C) inflammatory monocytes (Ly6C+CD11b+), (D) B cells (CD19+), (E) moDCs (CD11c+F4/80+CD11b+CD64+), (F) CD11b+ DCs (CD11c+CD11b+), (G) pDCs (CD11c+Ly6C+F4/80– CD11b– ), (H) CD103+ DCs (CD11c+CD11b– CD103+), (I) interstitial macrophages (F4/80+CD11b+), and (J) eosinophils (SiglecF+) in the lungs. (K) Fraction of H56+ cells in the lungs at 3, 24 and 72 h post-immunization. Data points represent n = 2, and they display mean values ± SEM. *p < 0.05, **p < 0.01, ***p < 0.001, ****p < 0.0001 vs. i.pulmon. immunization via two-way ANOVA with Tukey’s post-test.
FIGURE 3Intramuscular (i.m.) prime-intrapulmonary (i.pulmon.) pull immunization with H56/CAF01 increases vaccine uptake by lung endothelial cells and type I epithelial cells as compared to either i.m. or i.pulmon. immunization alone. BALB/c mice were immunized with Alexa Fluor-labeled H56/DiR-labeled CAF01 via the i.m. or i.pulmon. or i.m. – i.pulmon. routes, and vaccine uptake by lung cells was assessed by flow cytometry 3, 24, and 72 h post-immunization. Numbers of vaccine+ (H56+/CAF01+) (A) hematopoietic lineage cells (CD45+CD31– CD326– ), (B) endothelial cells (CD45– CD31+CD326– ), (C) type I epithelial cells (CD45– CD31– CD326+CD74– Podoplanin+), (D) type II epithelial cells (CD45– CD31– CD326+CD74+Podoplanin– ), and (E) lineage-negative cells (CD45– CD31– CD326– ) in the lungs. (F) Fraction of vaccine+ (H56+/CAF01+) cells in the lungs at 3, 24, and 72 h post-immunization. Data points represent mean values ± SEM (n = 4). ***p < 0.001, ****p < 0.0001 vs. i.pulmon. immunization via two-way ANOVA with Tukey’s post-test.
FIGURE 4H56 uptake by epithelial cells, endothelial cells, hematopoietic lineage cells, and lineage-negative cells in the lungs following prime or prime – pull immunization with H56/CAF01. BALB/c mice were immunized with Alexa Fluor® 647-labeled H56/DiR-labeled CAF01 via the i.m. or i.pulmon. or i.m. – i.pulmon. routes, and the H56+ uptake by lung cells was assessed by flow cytometry 3, 24 and 72 h post-immunization. Numbers of vaccine+ (H56+/CAF01+) (A) hematopoietic lineage cells (CD45+CD31– CD326– ), (B) endothelial cells (CD45– CD31+CD326– ), (C) type I epithelial cells (CD45– CD31– CD326+CD74– Podoplanin+), (D) type II epithelial cells (CD45– CD31– CD326+CD74+Podoplanin– ), and (E) lineage-negative cells (CD45– CD31– CD326– ) in the lungs. (F) Fraction of H56+ cells in the lungs at 3, 24, and 72 h post-immunization. Data points represent n = 2 and display mean values ± SEM. *p < 0.05, ****p < 0.0001 vs. i.pulmon. immunization via two-way ANOVA with Tukey’s post-test.
FIGURE 5Differential vaccine uptake by innate myeloid and antigen-presenting cells following parenteral or mucosal prime and parenteral prime-mucosal pull immunization with H56/CAF01. BALB/c mice were immunized with Alexa Fluor®-labeled H56/DiR-labeled CAF01 via the i.m. or i.pulmon. or i.m. – i.pulmon. routes, and the vaccine uptake by spleen cells was assessed by flow cytometry 3, 24, and 72 h post-immunization. Numbers of vaccine+ (H56+/CAF01+) (A) neutrophils (Ly6G+), (B) pDCs (CD11c+Ly6C+F4/80– CD11b– ), (C) inflammatory monocytes (Ly6C+CD11b+), (D) moDCs (CD11c+F4/80+CD11b+CD64+), (E) CD8α+ DCs (CD11c+CD11b– CD8α +), (F) CD11b+ DCs (CD11c+CD11b+), (G) B cells (CD19+), (H) macrophages (F4/80+CD11b+), and (I) eosinophils (SiglecF+) in the spleen. (J) Fraction of vaccine+ (H56+/CAF01+) cells in the spleen at 3, 24, and 72 h post-immunization. Data points represent n = 4, and they display mean values ± SEM. *p < 0.05, **p < 0.01, ***p < 0.001, ****p < 0.0001 vs. i.m. immunization via two-way ANOVA with Tukey’s post-test.
FIGURE 6H56 uptake by splenic cells following parenteral or airway mucosal prime or parenteral prime – airway mucosal pull immunization with H56/CAF01. BALB/c mice were immunized with Alexa Fluor® 647-labeled H56/DiR-labeled CAF01 via i.m. or i.pulmon. or i.m. – i.pulmon. routes, and the H56+ uptake by spleen cells was assessed by flow cytometry 3, 24, and 72 h post-immunization. Numbers of (A) neutrophils (Ly6G+), (B) pDCs (CD11c+Ly6C+F4/80– CD11b– ), (C) inflammatory monocytes (Ly6C+CD11b+), (D) moDCs (CD11c+F4/80+CD11b+CD64+), (E) CD8α+ DCs (CD11c+CD11b– CD8α +), (F) CD11b+ DCs (CD11c+CD11b+), (G) B cells (CD19+), (H) macrophages (F4/80+CD11b+), and (I) eosinophils (SiglecF+) in the spleen. (J) Fraction of H56+ cells in the spleen at 3, 24, and 72 h post-immunization. Data points represent n = 2, and they display mean values ± SEM. *p < 0.05, **p < 0.01, ****p < 0.0001 vs. i.m. immunization via two-way ANOVA with Tukey’s post-test.
FIGURE 7The expression of CD86 by dendritic cells in the lung-draining lymph nodes is upregulated after parenteral prime and mucosal pull immunization of mice with H56/CAF01, as compared to the CD86 levels in mice vaccinated by parenteral or mucosal prime immunization alone. BALB/c mice were immunized with Alexa Fluor®-labeled H56/DiR-labeled CAF01 via the i.m. or i.pulmon. or i.m. – i.pulmon. routes, and the vaccine uptake in the lymph nodes draining the i.m. administration site [inguinal (ILN) and popliteal (PLN)] or the i.pulmon. administration site [tracheobronchial (TLN) and mediastinal (MLN)] was assessed by flow cytometry 3, 24, and 72 h post-immunization. The relative surface expression of CD86 by antigen-presenting cells was assessed and expressed as mean fluorescence intensity (MFI). CD86 surface expression by vaccine+ (H56+/CAF01+) (A) B cells (CD19+), (B) moDCs (CD11c+F4/80+CD11b+CD64+), (C) CD8α+ DCs (CD11c+CD11b– CD8α+), (D) CD11b+ DCs (CD11c+CD11b+), (E) pDCs (CD11c+Ly6C+F4/80– CD11b– ), and (F) macrophages (F4/80+CD11b+) in the TLN and MLN, and (G) B cells (CD19+), (H) moDCs (CD11c+F4/80+CD11b+CD64+), (I) CD8α+ DCs (CD11c+CD11b– CD8α+), (J) CD11b+ DCs (CD11c+CD11b+), (K) pDCs (CD11c+Ly6C+F4/80– CD11b– ), and (L) macrophages (F4/80+CD11b+) in the ILN and PLN at 3, 24, and 72 h post-immunization. Data points represent n = 4, and they display mean values ± SEM. *p < 0.05, **p < 0.01, ***p < 0.001, ****p < 0.0001 vs. i.m. immunization via two-way ANOVA with Tukey’s post-test.
FIGURE 8Uniform distribution and signal intensity of dimethyldioctadecylammonium (DDA) bromide in cryo-sections of lungs of mice, which have been dosed intrapulmonary (i.pulmon.) with CAF01. BALB/c mice were immunized once with CAF01 via the i.pulmon. route, and matrix-assisted laser desorption/ionization mass spectrometry imaging (MALDI-MSI) was performed on lung cryo-sections at 6, 24, 48, and 72 h, and 7, 10, and 14 days after the immunization. Untreated mice served as negative control. (A) Hematoxylin and eosin (H&E) staining (left panels), MALDI-MSI-based distribution of DDA [M + H]+ (m/z 550.629 ± 0.002, middle panels), and mass spectrometry (MS) co-localization images (right panels) of DDA [M + H]+ (green) and PC (34:1) [M + K]+ (m/z 798.541 ± 0.002) (blue) in the lungs at different time points after i.pulmon. administration of CAF01. (B) Signal intensity ratios between DDA and PC (34:1) at different time points of the study, which were calculated after drawing a region of interest (ROI) across the lung sections and comparing the MS signal intensities in the respective ROIs. All images were measured in the positive ion mode by MALDI-MSI at a pixel size of 100 μm.
FIGURE 9Increased bis(monoacylglycero)phosphate (BMP) expression in the lungs of mice dosed intrapulmonary (i.pulmon.) with CAF01. BALB/c mice were immunized once with CAF01 via the i.pulmon. route, and matrix-assisted laser desorption/ionization mass spectrometry imaging (MALDI-MSI) was performed on lung cryo-sections collected 6, 24, 48, 72 h, and 7, 10, and 14 days after immunization. Untreated mice served as negative control. (A) Hematoxylin and eosin (H&E) staining (left panels) and MALDI-MSI-based distribution of BMP (22:6/22:6) [M + H]– (m/z 865.503, right panels) in cryo-sections of lungs isolated at different time points after i.pulmon. dosing with CAF01. (B) Signal intensity ratios between BMP and PS (38:4) [M + H]– (m/z 810.529 ± 0.002) at different time points of the study, which were calculated by drawing a region of interest (ROI) across the lung sections and comparing the MS signal intensities in the respective ROIs. All images were measured in the negative ion mode by using MALDI-MSI at a pixel size of 100 μm.