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Image Search Results
Journal: Journal of immunology (Baltimore, Md. : 1950)
Article Title: Ectopic germinal centers are rare in Sjogren's syndrome salivary glands and do not exclude autoreactive B cells.
doi: 10.4049/jimmunol.0803588
Figure Lengend Snippet: FIGURE 2. Microdissection of GC-like struc- tures from salivary glands and tonsils before quan- titative-RT-PCR analysis. A, Sections were stained with HistoGene to locate infiltrates, and with FITC-anti-CD19 to recognize B cells. FDCs were found in real GCs, as well as in aggregates, through their staining with CD21 and CD35. B, The levels of mRNAs for activation-induced cytidine deami- nase (AICDA) were determined by quantitative RT-PCR and normalized relative to GAPDH. All of the four real GC-containing structures expressed AID, compared with none of the seven aggregate- containing structures.
Article Snippet: In parallel,
Techniques: Laser Capture Microdissection, Reverse Transcription Polymerase Chain Reaction, Staining, Activation Assay, Quantitative RT-PCR
Journal: bioRxiv
Article Title: The biochemical function of bivalent aptamer assemblies against B-cell markers CD19 and CD20
doi: 10.1101/2025.01.26.634939
Figure Lengend Snippet: (A) Representative flow cytometric histograms showing the specificity of dimeric CD20 aptamer WB1/1.CD20.1_3S across CD20-positive cell lines (Raji, Toledo, BJAB, SKLY-16, and Ramos). (B) Bar graph quantifying the mean fluorescence intensities of WB1/1.CD20.1_3S binding, highlighting significant specificity (*p < 0.0001). (C; E) Fluorescence histograms for CD19 homodimeric aptamer WB17/17.CD19.1_3S and WB15/15.CD19.1_3S, respectively, demonstrating selective binding to CD19-positive cell lines (Raji, Toledo, BJAB, SKLY-16, and Ramos). (D; F) Quantification of homodimeric aptamer WB17/17.CD19.1_3S and WB15/15.CD19.1_3S, respectively, binding specificity using mean fluorescence intensity. (G) Fluorescence histograms for CD19 heterodimeric aptamer WB15/17.CD19.1_3S, demonstrating selective binding to CD19-positive cell lines (Raji, Toledo, BJAB, SKLY-16, and Ramos). (H) Quantification of heterodimeric aptamer WB15/17.CD19.1_3S binding specificity using mean fluorescence intensity. (I-L) Confocal microscopy images showing colocalization of bivalent WB1/1.CD20.1_3S (L1-L2: Cy3, RED) with a CD20-specific antibody (J1-J2: APC, GREEN) on Raji cells. DNA random aptamer controls and isotype antibody controls confirmed specificity. The aptamer binds to the cell surface membrane, as shown in zoomed-in views (L1-L2). Panel M-P: Confocal microscopy images of bivalent WB17/17.CD19.1_3S (M1-M2: Cy3, RED) colocalizing with a CD19-specific antibody (N1-N2: APC, GREEN) on Raji cells. The aptamer demonstrates specificity and surface binding with no significant off-target interactions. Zoomed-in views (P1-P2) confirmed aptamer binding to the cell membrane. Scale bars = 7 and 5 μm. Mean fluorescence intensity was calculated using the formula: Mean fluorescence intensity=Aptamer Mean Fluorescence − Random DNA Mean Fluorescence. The aptamer and random mean fluorescence values correspond to the mean fluorescence observed in their respective histograms. Bar graphs represent mean ± standard deviation from three independent experiments with statistical significance indicated (****p < 0.0001). Data represents mean ± standard deviation from three independent experiments.
Article Snippet:
Techniques: Fluorescence, Binding Assay, Confocal Microscopy, Membrane, Standard Deviation
Journal: bioRxiv
Article Title: The biochemical function of bivalent aptamer assemblies against B-cell markers CD19 and CD20
doi: 10.1101/2025.01.26.634939
Figure Lengend Snippet: Internalization studies of CD19 Antibody and Bivalent CD19 Aptamers in Ramos and Raji Cells. (A–H) Time-course analysis of CD19 antibody and bivalent CD19 aptamer internalization in Ramos cells (A, C, E, and G: CD21-negative) and Raji cells (B, D, F, and H: CD21-positive). (A-B) demonstrate internalization of APC-CD19 antibody in Ramos (A) and Raji (B) cells. In Ramos cells (A), CD19 antibody shows efficient internalization over 48 hours, while in Raji cells (B), CD21 expression inhibits internalization. (C-D) show internalization of bivalent CD19 aptamer WB17/17.CD19.1_3S in Ramos (C) and Raji (D) cells. WB17/17.CD19.1_3S shows robust internalization in Ramos cells (C), but reduced uptake in Raji cells owing to CD21-mediated blocking. (E-F) illustrate internalization of bivalent CD19 aptamer WB15/17.CD19.1_3S in Ramos (E) and Raji (F) cells. The aptamer demonstrates high internalization efficiency in Ramos cells (E), but not CD21-positive Raji cells (F). Panels G and H: Internalization of bivalent CD19 aptamer WB15/15.CD19.1_3S in Ramos (G) and Raji (H) cells. Similar to other bivalent aptamers, WB15/15.CD19.1_3S internalizes efficiently in CD21-negative Ramos cells (G), but CD21 expression in Raji cells (H) significantly blocks its internalization. Data are expressed as the percentage of internalization calculated as . Each bar represents mean ± standard deviation from three independent experiments.
Article Snippet:
Techniques: Expressing, Blocking Assay, Standard Deviation
Journal: bioRxiv
Article Title: The biochemical function of bivalent aptamer assemblies against B-cell markers CD19 and CD20
doi: 10.1101/2025.01.26.634939
Figure Lengend Snippet: Colocalization of CD19 and CD21 was confirmed by flow cytometry and confocal microscopy, whereas CD20 does not co-localize with CD21. (A) demonstrates flow cytometry histograms showing CD19 (A1: PE-CD19 mAb, Red) and CD21 (A2: APC-CD21 mAb, Light Blue) fluorescence intensity in Raji cells. (A3) Bi-parametric dot plot confirms colocalization of CD19 and CD21 on the same population of cells. (B) shows bar graph quantifying mean fluorescence intensity of CD19 and CD21, highlighting their robust expression on Raji cells. (C–E) Confocal microscopy images showing CD19 (C: PE-CD19, Red) colocalized with CD21 (D: APC-CD21, Light Blue) on the surface of Raji cells. Arrowheads indicate regions of colocalization (D). Panels F1–F3 illustrate flow cytometry analysis of bivalent CD19 aptamer WB17/17.CD19.1_3S (F1: Pink) binding to Raji cells and its colocalization with CD21 (F2: APC-CD21 mAb, Light Blue). (F3) Dot plot shows overlapping signals, confirming aptamer-CD21 interaction. (G) demonstrates the bar graph of mean fluorescence intensity of bivalent CD19 aptamer (WB17/17.CD19.1_3S) and CD21 antibody. (H–J) present confocal microscopy images showing WB17/17.CD19.1_3S (H: Red) colocalized with CD21 (I: Green) on Raji cells. Arrowheads highlight colocalized regions (J). (K1–K3) Flow cytometry analysis showing CD20 (K1: FITC-CD20 mAb, Green) and CD21 (K2: APC-CD21 mAb, Light Blue) fluorescence intensity in Raji cells. (K3) Dot plot shows no significant overlap between CD20 and CD21, indicating no colocalization. (L) Bar graph showing fluorescence intensity of CD20 and CD21. (M–O) Confocal microscopy images showing no colocalization between CD20 (M: Red) and CD21 (N: Green) on Raji cells (O). (P1–P3) Flow cytometry analysis of bivalent CD20 aptamer WB1/1.CD20.1_3S (P1: Blue) and CD21 (P2: APC-CD21 mAb, Light Blue). (P3) Dot plot confirms the absence of colocalization on the same population of cells. Panel Q: Bar graph of fluorescence intensity for CD20 aptamer and CD21. (R–T) Confocal microscopy images showing that WB1/1.CD20.1_3S (R: Red) and CD21 (S: Green) do not co-localize on Raji cells (T). Scale bars = 5 μm. Mean fluorescence intensity was calculated using the formula: Mean fluorescence intensity=Aptamer Mean Fluorescence − Random DNA Mean Fluorescence for aptamer. As for antibody it was calculated using the formula: Mean fluorescence intensity=Antibody Mean Fluorescence − Isotype Control Mean Fluorescence. The aptamer/random and antibody/isotype mean fluorescence values corresponds to the mean fluorescence observed in their respective histograms. Data represents mean ± standard deviation from three independent experiments. Each bar represents mean ± standard deviation from three independent experiments.
Article Snippet:
Techniques: Flow Cytometry, Confocal Microscopy, Fluorescence, Expressing, Binding Assay, Control, Standard Deviation
Journal: bioRxiv
Article Title: The biochemical function of bivalent aptamer assemblies against B-cell markers CD19 and CD20
doi: 10.1101/2025.01.26.634939
Figure Lengend Snippet: The expression of CD19, CD20, and CD21, the binding activity of bivalent CD19 aptamers, and the internalization dynamics of CD19 antibody and bivalent aptamers in OCl-LY7 and HBL-1 (DLBCL) cells. Antibody staining for CD19, CD20, and CD21 expression. (C; G) demonstrate flow cytometry histograms showing the expression of CD19 (C2: Red), CD20 (C1: Green), and CD21 (C3: Light Blue) on OCI-Ly7 (C), whereas HBL-1 (G) cells express CD19 (G2: Red), CD20 (G1: Green), and CD21 (G3: Light Blue). Isotype controls (gray) confirm specific binding. (D; H) Bar graphs showing mean fluorescence intensities, confirming robust expression of CD19 and CD20, but the absence of CD21 expression in both cell lines. Binding assay with bivalent CD19 aptamers (A1–A4, E1–E4). Fluorescence intensity histograms of bivalent CD19 aptamers (WB17/17.CD19.1_3S, WB15/17.CD19.1_3S, and WB15/15.CD19.1_3S) compared to random DNA control in OCI-Ly7 (A1–A4) and HBL-1 (E1–E4) cells. (B; F) illustrate bar graphs of mean fluorescence intensities showing high binding specificity of bivalent aptamers compared to controls. Internalization of CD19 antibody with and without Proteinase K (I, K). Flow cytometry histograms (L1) and bar graphs (L2) showing internalization dynamics of CD19 antibody in OCI-Ly7 (I), whereas flow cytometry histograms (K1) and bar graphs (K2) show internalization dynamics of CD19 antibody in HBL-1 (K) cells. Internalization was analyzed at 0 hour and 24 hours in the presence and absence of Proteinase K. Data reveal a significant reduction in surface fluorescence intensity after Proteinase K treatment, confirming internalization. Internalization of bivalent CD19 aptamers under the same conditions (J, L). Fluorescence intensity histograms (J1-J3, L1-L3) and bar graphs (J4 and L4) show the internalization of bivalent CD19 aptamers (WB17/17.CD19.1_3S (J2, L2), WB15/17.CD19.1_3S (J1, L1), and WB15/15.CD19.1_3S (J3, L3)) in OCI-Ly7 (J) and HBL-1 (L) cells. Internalization is measured at 0 hour and 24 hours with and without Proteinase K, demonstrating the effective uptake of bivalent aptamers. Data are expressed as the percentage of internalization calculated as fluorescence intensity was calculated using the formula. Mean fluorescence intensity=Aptamer Mean Fluorescence − Random DNA Mean Fluorescence for aptamer. As for antibody it was calculated using the formula: Mean fluorescence intensity=Antibody Mean Fluorescence − Isotype Control Mean Fluorescence. The aptamer/random and antibody/isotype mean fluorescence values corresponds to the mean fluorescence observed in their respective histograms. Each bar represents mean ± standard deviation from three independent experiments. Data are presented as mean ± standard deviation from three independent experiments.
Article Snippet:
Techniques: Expressing, Binding Assay, Activity Assay, Staining, Flow Cytometry, Fluorescence, Control, Standard Deviation
Journal: bioRxiv
Article Title: The biochemical function of bivalent aptamer assemblies against B-cell markers CD19 and CD20
doi: 10.1101/2025.01.26.634939
Figure Lengend Snippet: Internalization Assay of CD19 Antibody and Bivalent CD19 Aptamer in Ramos and OCI-Ly7 Cells Visualized by Confocal Microscopy. Internalization of CD19 Antibody in Ramos Cells (A-D). Confocal images showing surface-bound APC-CD19 antibody (A1-A2: Red) at 0 hour with and without Hoechst nuclear staining (A2: Blue). (B1–B2) demonstrate the isotype control at 0 hour. Panels C1-C2 show the internalization of APC-CD19 after 24 hours (C1-C2: Red) with and without Hoechst nuclear staining (C2: Blue). (E) Bar graph quantifying the mean fluorescence intensity of APC-CD19 antibody with and without Proteinase K treatment at 0 and 24 hours. Internalization of Bivalent CD19 Aptamer WB17/17.CD19.1_3S in Ramos Cells (F-I). Initial binding of WB17/17.CD19.1_3S (F1-F2: Green) at 0 hours, as shown with Hoechst-stained nuclei (F2: Blue). (H1–H2) demonstrate internalization of WB17/17.CD19.1_3S at 24 hours with and without Hoechst nuclear staining (H2: Blue). (J) shows the bar graph quantifying the mean fluorescence intensity of WB17/17.CD19.1_3S with and without Proteinase K treatment at 0 and 24 hours. Internalization of CD19 Antibody in OCI-Ly7 Cells (K-N) Surface-bound APC-CD19 antibody at 0 hours (K1-K2). (M1–M2) illustrate reduced surface-bound fluorescence at 24 hours, consistent with internalization. After 24 hours, CD19 antibody is completely uptaken on OCl-Ly7 cells. (O) Bar graph quantifying the mean fluorescence intensity of APC-CD19 antibody with and without Proteinase K treatment at 0 and 24 hours. Internalization of Bivalent CD19 Aptamer WB17/17.CD19.1_3S in OCI-Ly7 Cells (P-S). Confocal images showing WB17/17.CD19.1_3S (P1: Green) binding at 0 hours with and without Hoechst nuclear staining (P2: Blue). (R1–R2) highlight internalized WB17/17.CD19.1_3S at 24 hours with Hoechst nuclear staining (R2). Panel T shows the bar graph quantifying the mean fluorescence intensity of WB17/17.CD19.1_3S with and without Proteinase K treatment at 0 and 24 hours. Scale Bars: 5 μm. Data represent mean ± standard deviation from three independent experiments. Each bar represents mean ± standard deviation from three independent experiments.
Article Snippet:
Techniques: Confocal Microscopy, Staining, Control, Fluorescence, Binding Assay, Standard Deviation