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Image Search Results
Journal: Journal of Translational Medicine
Article Title: ANGPTL3 is a novel HDL component that regulates HDL function
doi: 10.1186/s12967-024-05032-x
Figure Lengend Snippet: Correlation between ANGPTL3 levels in HDL and HDL function in db/m and db/db mice. A Body weight of db/m and db/db mice. B Intraperitoneal glucose tolerance tests (IPGTT) in db/m and db/db mice. C The ANGPTL3 levels in HDL in db/m and db/db mice. D The cholesterol efflux of HDL isolated from db/m and db/db mice. The association between ANGPTL3 in HDL and the percentage of cholesterol efflux in db/m ( E ) and db/db mice ( F ). The expression of ICAM-1 ( G ) and VCAM-1 ( H ) in endothelial cells exposed to TNF-α and pre-incubated with HDL isolated from db/m and db/db mice
Article Snippet: Cells were stained with FITC mouse anti-human VCAM-1 (1:100) and
Techniques: Isolation, Expressing, Incubation
Journal: Journal of Translational Medicine
Article Title: ANGPTL3 is a novel HDL component that regulates HDL function
doi: 10.1186/s12967-024-05032-x
Figure Lengend Snippet: ANGPTL3 directly regulated HDL function in mice. The plasma ANGPTL3 levels ( A ) and HDL-ANGPTL3 levels ( B ) in db/db mice injected with AAV virus encoding vector control, ANGPTL3, shRNA-NC and shRNA-ANGPTL3 plasmid respectively. The expression of ANGPTL3 in liver tissues of db/db mice injected with AAV-Vector and AAV-ANGPTL3 ( C ), AAV-shRNA-NC and AAV-shRNA-ANGPTL3 ( D ). E The percentage of cholesterol efflux to HDL isolated from plasma in db/db mice injected with AAV-Vector, ANGPTL3, shRNA-NC and shRNA-ANGPTL3. F The expression of ICAM-1 in endothelial cells against HDL. HDL were isolated from plasma in db/db mice injected with AAV-Vector, ANGPTL3, shRNA-NC and shRNA-ANGPTL3. The endothelial cells were treated with HDL, then exposed to TNF-α. The ICAM-1 expression was analyzed by Flow CytoMetry
Article Snippet: Cells were stained with FITC mouse anti-human VCAM-1 (1:100) and
Techniques: Injection, Virus, Plasmid Preparation, shRNA, Expressing, Isolation, Flow Cytometry
Journal: bioRxiv
Article Title: Epigenetic therapy remodels the immune synaptic cytoskeleton to potentiate cancer susceptibility to γδ T cells
doi: 10.1101/2020.04.30.069955
Figure Lengend Snippet: ( A ) Immunofluorescence imaging of immune synapses between H1299 lung cancer cells and γδ T cells by phosphotyrosine (pTyr) staining. H1299 lung cancer cells are pretreated with phosphate- buffered saline (PBS) or DAC prior to coculture with γδ T cells. Quantifications of immune synapses per cancer cell on eight randomly taken high power fields for each treatment are shown in the dot plots (mean ± SD). Scale bar: 100 μm. p value is calculated by the Mann-Whitney test. ( B ) A scatter plot of DAC-induced surface proteomes in H1299 (y-axis) and A549 (x-axis) human lung cancer cells following daily treatment of 100 nM DAC for 72 hours and culture in drug-free medium for 3 days (D3R3). ICAM-1 is among the top upregulated surface proteins by DAC in both cells. ( C ) Western blot analyses of ICAM-1 protein expression in mock-treated vs. DAC-treated human lung cancer cells. D3: daily treatment of 100 nM decitabine for 72 hours. D3R3: daily treatment for 72 hours, followed by a 3-day rest period in drug-free medium. β-actin: loading control. ( D ) Immunofluorescence staining of ICAM-1 and immune synapse molecules (e.g., LFA-1, LAT) at immune synapses formed between γδ T cells and DAC-treated H1299 lung cancer cells. Scale bar: 10 μm. ( E ) Representative flow cytometric dot plot showing H1299 lung cancer cells with CRISPR-knockout of ICAM1 (KO-ICAM1) subject to γδ T cell killing for 2 hours. The effector to target (E: T) ratio is 3:1. Lung cancer cells are pre-treated with mock, DAC alone, γδ T cells alone or a combination of DAC and γδ T cells. The X-axis denotes surface ICAM1 levels. Y-axis represents signal intensities of propidium iodide. ( F ) Bar graphs showing percent cell death of human lung cancer cell lines (i.e., H1299, CL1-0, and A549) with CRISPR-knockout of ICAM-1 subject to γδ T cell killing for 2 hours. Cell death is measured by Annexin V and propidium iodide apoptosis assays (mean ± SEM, n = 3). Statistical significance is determined by one-way ANOVA test. ( G ) Representative flow cytometric dot plot showing H1299 lung cancer cells with a Tet-on expression system of ICAM1 (OV-ICAM1) subject to γδ T cell killing for 2 hours. Doxycycline (1 μg/mL) is added 24 hours prior to coculture to induce ICAM-1 protein expression. Cell death is measured by Annexin V (x-axis) and propidium iodide (y-axis) apoptosis assays. ( H ) Bar graphs showing cell death of human lung cancer cell lines (i.e., H1299, CL1-0, and A549) with ICAM-1 over-expression subject to γδ T cell killing for 2 hours. E:T ratio is 3:1. Cell death is measured by Annexin V and propidium iodide apoptosis assays. Statistical significance is determined by one-way ANOVA test (* p < 0.05, ** p < 0.01, ***, p < 0.001). ( I ) Immunofluorescence imaging of immune synapses between H1299 KO-ICAM1 lung cancer cells and γδ T cells by phosphotyrosine (pTyr) staining. Scale bar: 100 μm. Quantifications of immune synapses per cancer cell on six randomly taken high power fields for each treatment are shown in the dot plots (mean ± SD). p value is calculated by the Mann-Whitney test.
Article Snippet: The overexpression and loss of ICAM-1 protein were validated by flow cytometry with an
Techniques: Immunofluorescence, Imaging, Staining, Saline, MANN-WHITNEY, Western Blot, Expressing, Control, CRISPR, Knock-Out, Over Expression
Journal: bioRxiv
Article Title: Epigenetic therapy remodels the immune synaptic cytoskeleton to potentiate cancer susceptibility to γδ T cells
doi: 10.1101/2020.04.30.069955
Figure Lengend Snippet: Sequencing results of the KO-ICAM1 lung cancer cells are aligned against the reference sequence of the ICAM1 genome locus. Alignment gaps are denoted as hyphens (-) to mark the lost (knockout) regions of the edited ICAM1 genome locus.
Article Snippet: The overexpression and loss of ICAM-1 protein were validated by flow cytometry with an
Techniques: Sequencing, Knock-Out
Journal: bioRxiv
Article Title: Epigenetic therapy remodels the immune synaptic cytoskeleton to potentiate cancer susceptibility to γδ T cells
doi: 10.1101/2020.04.30.069955
Figure Lengend Snippet: ( A ) Immunofluorescence staining of F-actin (red), ICAM-1 (green), pTyr (phosphotyrosine, white) at immune synapses between γδ T cells and DAC-pretreated H1299 lung cancer cells at D3R3. Accumulation of F-actin beneath the cell membrane is noted in DAC-pretreated lung cancer cells. DAPI: 4′,6-diamidino-2-phenylindole, as a nuclear counterstain. Scale bar: 10 μm. ( B ) Representative immunofluorescence images of the interfaces between γδ T cells and H1299 lung cancer cells (parental vs. ICAM-1 knockout (KO-ICAM1)). Signals of F-actin (red) in the periphery of H1299 cancer cells are shown in two- and-a-half-dimensional (2.5D) images in the lower panels. Scale bar: 10 μm. ( C ) Dot plots of signal intensities of F-actin (left panel) and ICAM-1 (right panel) from five pTry-positive immune synapses between γδ T cells and H1299 lung cancer cells (parental or KO-ICAM1). p value is calculated by two-way ANOVA test. ( D ) Immunofluorescence images of immune synapses between γδ T cells (marked with T) and H1299 lung cancer cells (marked with C) stained for ICAM-1 (green), F-actin (Red) and phosphotyrosine (pTyr, white). Lung cancer cells (parental or KO-ICAM1) are pretreated with PBS (Mock) or 100 nM DAC and cocultured with γδ T cells at D3R3. ( E ) Dot plots of F-actin signal intensities at immune synapses between γδ T cells and H1299 cells. H1299 cells are pretreated with PBS (Mock), DAC alone or combination of DAC pretreatment (D3R3) and 1 μg/mL Cyto B (cytochalasin B, an inhibitor of actin filament polymerization) for 1.5 hours prior to coculture with γδ T cells (mean ± SD). p value is calculated by one-way ANOVA with Tukey’s multiple comparisons test (***, p < 0.001; ****, p < 0.0001). ( F ) Representative immunofluorescence images of immune synapses (pTyr staining) between γδ T and H1299 cells pretreated with PBS (Mock), DAC alone, and combination of DAC and Cyto B. Blow-up images of the square areas for each treatment are shown in the lower panels. Arrows denote immune synapses between γδ T and H1299 cells. Scale bar: 100 μm (upper) and 20 μm (lower panels). ( G ) Dot plots showing numbers of immune synapses per cancer cell on eight randomly taken high power fields for H1299 cells pretreated with PBS (Mock), DAC, and combination of DAC and Cyto B (mean ± SD). p value is calculated by one-way ANOVA with Tukey’s multiple comparisons test (*, statistical significance).
Article Snippet: The overexpression and loss of ICAM-1 protein were validated by flow cytometry with an
Techniques: Immunofluorescence, Staining, Membrane, Knock-Out
Journal: bioRxiv
Article Title: Epigenetic therapy remodels the immune synaptic cytoskeleton to potentiate cancer susceptibility to γδ T cells
doi: 10.1101/2020.04.30.069955
Figure Lengend Snippet: Parental or ICAM-1 knockout (KO-ICAM1) H1299 cells are pretreated daily with PBS (Mock) or 100 nM DAC for 72 hours followed by 3-day drug-free culture before coculture with γδ T cells. Signal intensities of each protein (F-actin, red; ICAM-1, green; phosphotyrosine, pTyr, white) along the immune synapse area are graphed on the right. DAPI: 4’,6-diamidino-2-phenylindole, as nuclear counterstain. Scale bar: 10 μm.
Article Snippet: The overexpression and loss of ICAM-1 protein were validated by flow cytometry with an
Techniques: Knock-Out
Journal: bioRxiv
Article Title: Epigenetic therapy remodels the immune synaptic cytoskeleton to potentiate cancer susceptibility to γδ T cells
doi: 10.1101/2020.04.30.069955
Figure Lengend Snippet: ( A ) Visualization of multi-omics data (i.e., mRNA-seq, Omni-ATAC-seq, and MethylationEPIC arrays) for DAPK3 , EVPLL, and TUBE1 in H1299 lung cancer cells. ( B ) Promoter methylation status and mRNA expression levels of the ICAM1 gene measured by Infinium MethylationEPIC arrays (left panels) and mRNA-seq (right panels) in human lung cancer cells treated without and with DAC 100 nM DAC for 3 days followed by a 3-day drug-free culture. ( C ) Open chromatin regions in the promoter areas of the ICAM1 gene in human lung cancer cells upon 100 nM DAC treatment analyzed by Omni-ATAC-seq. The green bar represents a CpG island. ( D ) Validation of Omni-ATAC-seq by quantitative real-time PCR on transposase-accessible chromatin at the ICAM1 promoter of human lung cancer cells subject to daily treatment of 100 nM DAC treatment for 3 days, followed by a 3-day drug-free culture. Experiments are performed in triplicates, and data are presented as mean ± SD. p value was calculated by unpaired t test (*, p < 0.05). ( E ) IPA Network analysis of mRNA expression changes in human lung cancer cells treated by DAC reveals coordinated changes of the immune-related surface molecules and the cytoskeleton-associated genes. ( F ) IPA upstream regulator analysis of mRNA expression changes in human lung cancer cells treated by DAC. T cell effector cytokines such as TNF-α and IFN-γ may enhance DAC-induced expression changes of immune-related molecules and ICAM-1 in lung cancer cells. TP53 is a potential master regulator for cancer cytoskeleton reorganization essential for DAC-potentiated γδ T cell killing.
Article Snippet: The overexpression and loss of ICAM-1 protein were validated by flow cytometry with an
Techniques: Biomarker Discovery, Methylation, Expressing, Real-time Polymerase Chain Reaction
Journal: bioRxiv
Article Title: Epigenetic therapy remodels the immune synaptic cytoskeleton to potentiate cancer susceptibility to γδ T cells
doi: 10.1101/2020.04.30.069955
Figure Lengend Snippet: ( A ) Diagram of transcription factor binding sites at the ICAM1 promoter derived from the ENCODE ChIP-seq data ( https://www.encodeproject.org ). Visualizations of ATAC-seq peaks at the ICAM1 promoter in PC9 and CL1-5 lung cancer cell lines subject to DAC treatment are shown above. ( B ) Promoter methylation status and mRNA expression levels of putative transcription factors (i.e., RELB, NFKB2, STATS, and RUNX3) at the ICAM1 promoter in A549, H1299, PC9, and CL1-5 lung cancer cells. Dot and line plots represent methylation levels (β values) of promoter probes measured by Infinium MethylationEPIC arrays. The promoter probes with β values greater or equal to 0.5 at baseline (Mock) are shown. Bar graphs represent relative mRNA expression levels based on normalized FPKM measured by mRNA-seq.
Article Snippet: The overexpression and loss of ICAM-1 protein were validated by flow cytometry with an
Techniques: Binding Assay, Derivative Assay, ChIP-sequencing, Methylation, Expressing