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Journal: Advanced Science
Article Title: Integrated Single‐Cell and TCR Profiling Reveals Protection‐Associated CD8 + T Cell Subsets Linked to Viral Control in PRRSV
doi: 10.1002/advs.76732
Figure Lengend Snippet: CD8 + T cells preferentially receive signals from macrophages /monocytes for activation via TLR4 signaling. (A) Communications between APC and CD8 + T cells within each experimental group as inferred by CellPhoneDB. (B) Analysis of the expression level of antigen presentation‐related genes in indicated cell subclusters. (C) Dot plot showing normalized mean expression level of genes involved in innate immunity in indicated subclusters of macrophages and monocytes. (D) The KEGG enrichment analysis of innate immunity‐associated pathways for differentially upregulated genes in the subclusters of macrophages and monocytes. The enrichment level is determined by the number of included genes and their expression levels. (E) Percentage of cells containing virus RNA fragments in the indicated cell clusters. (F, G) Role of TLR4 signaling in T cell activation. The spleen cell mixture from three pigs of JXA1R groups at 5dpc were prepared. The ability to secret IFN‐γ was determined using ELISpot in the presence of TAK‐242, a TLR4 inhibitor or absence of macrophage/monocytes that were depleted by mouse monoclonal antibodies to CD14. The representative ELISpot wells (F) and statistical analysis (G) were presented. (H, I) Role of TLR8 signaling in T cell activation with TLR8 inhibitor. The representative ELISpot wells (H) and statistical analysis (I) were presented. Statistical analysis was performed by two‐tailed Student's t‐test, and error bars indicate means ± standard error of mean (SEM). Asterisks (*) indicate the statistical significance: *, p < 0.05; **, p < 0.01; ***, p < 0.001.
Article Snippet: For the
Techniques: Activation Assay, Expressing, Immunopeptidomics, Virus, Enzyme-linked Immunospot, Bioprocessing, Two Tailed Test
Journal: Advanced Science
Article Title: Integrated Single‐Cell and TCR Profiling Reveals Protection‐Associated CD8 + T Cell Subsets Linked to Viral Control in PRRSV
doi: 10.1002/advs.76732
Figure Lengend Snippet: Schematic model summarizing immune features associated with protection and pathogenesis. In the protected group, antigen presentation is associated with specialized subset of macrophages and monocytes characterized by high TLR4 and pro‐inflammatory signals expression. With appropriate CD4 + T cell help, these CD8 + T cells acquire robust cytotoxic effector functions and mediate efficient antiviral immunity. In contrast, in unprotected animals, antigen presentation is associated with monocyte populations expressing suppressive and inhibitory signals. CD8 + T cells in this context exhibit increased expression of exhaustion‐associated markers, especially CTLA4 , together with reduced effector functionality. Aberrant CD4 + T cell–CD8 + T cell communication further reinforces T cell exhaustion, ultimately resulting in impaired antiviral responses and disease progression.
Article Snippet: For the
Techniques: Immunopeptidomics, Expressing, Biomarker Discovery
Journal: Acta Otorhinolaryngologica Italica
Article Title: Dose-dependent IL-29 activation of TLR4 signalling drives eosinophil infiltration in chronic rhinosinusitis with nasal polyps
doi: 10.14639/0392-100X-A1222
Figure Lengend Snippet: Histological and molecular expression analysis of IL-29 and TLR4 in ECRSwNP. (A) Haematoxylin-eosin staining of the experimental and control groups; magnification 100×; (B) qPCR analysis of IL-29 and TLR4 mRNA expression and their correlation; (C) Correlation analysis of IL-29 and TLR4, showing a positive correlation in the experimental group (r = 0.6018, p < 0.0001); (D) Immunohistochemical expression of IL-29 in the experimental and control groups (D1: control group, 100×; D2: experimental group, 100×; D3: control group, 400×; D4: experimental group, 400×); (E) Immunohistochemical expression of TLR4 in the experimental and control groups (E1: control group, 100×; E2: experimental group, 100×; E3: control group, 400×; E4: experimental group, 400×). qPCR data are presented as mean ± SD, correlation analysis was performed using Pearson correlation coefficient, and p < 0.05 was considered statistically significant. Experimental group n = 30, control group n = 30.
Article Snippet: To evaluate the role of TLR4 in IL-29-mediated eosinophil regulation, a
Techniques: Expressing, Staining, Control, Immunohistochemical staining
Journal: Acta Otorhinolaryngologica Italica
Article Title: Dose-dependent IL-29 activation of TLR4 signalling drives eosinophil infiltration in chronic rhinosinusitis with nasal polyps
doi: 10.14639/0392-100X-A1222
Figure Lengend Snippet: Effect of IL-29 on TLR4 and downstream signaling molecule activation. (A) Western blot analysis of TLR4 protein expression; (B) Western blot analysis of p-NF-κB protein expression; (C) Western blot analysis of p-MAPK protein expression. Eosinophils were stimulated with different concentrations of IL-29 (10, 25, 50, 100 ng/mL) for 24 hours. β-actin was used as the internal control. Data were obtained from 3 independent experiments. * indicates p < 0.05.
Article Snippet: To evaluate the role of TLR4 in IL-29-mediated eosinophil regulation, a
Techniques: Activation Assay, Western Blot, Expressing, Control
Journal: Acta Otorhinolaryngologica Italica
Article Title: Dose-dependent IL-29 activation of TLR4 signalling drives eosinophil infiltration in chronic rhinosinusitis with nasal polyps
doi: 10.14639/0392-100X-A1222
Figure Lengend Snippet: The interventional effect of TAK-242 Blocking TLR4 on IL-29 action. (A) Transwell assay showing changes in eosinophil migration after TLR4 blockade with TAK-242; (B) ELISA of IL-5 secretion after TAK-242 intervention; (C) ELISA of IL-13 secretion after TAK-242 intervention; (D) Western blot analysis of TLR4, p-NF-κB, and p-MAPK protein expression after TAK-242 treatment. Data are presented as mean ± SD. * indicates p < 0.05.
Article Snippet: To evaluate the role of TLR4 in IL-29-mediated eosinophil regulation, a
Techniques: Blocking Assay, Transwell Assay, Migration, Enzyme-linked Immunosorbent Assay, Western Blot, Expressing