glass bottom confocal imaging dishes in vectashield Search Results


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Malvern Panalytical zetasizer nano s laser confocal scanning microscopic images
Zetasizer Nano S Laser Confocal Scanning Microscopic Images, supplied by Malvern Panalytical, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Photek Ltd image analysis software
Image Analysis Software, supplied by Photek Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Hamamatsu ultraview confocal imaging system 9100 emccd
Ultraview Confocal Imaging System 9100 Emccd, supplied by Hamamatsu, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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KEYENCE confocal laser scanning microscope keyence b-9000 system
Confocal Laser Scanning Microscope Keyence B 9000 System, supplied by KEYENCE, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Thermo Fisher parasite kinetoplast dna kdna
A microscopic and molecular assay to measure parasite load. (A) Confocal microscopy images of THP-1 cell-derived macrophage-like cells infected or not with L. donovani promastigotes at the MOI shown at 100× magnification. The infection was carried out for 24 h before fixing and staining. DAPI stain was used to stain both the nuclear and parasite <t>DNA</t> (the pseudocolor red is shown instead of the blue color of DAPI for better visualization; laser wavelength: 405.0, power: 4.3). The arrow indicates an amastigote inside a cell. Images were obtained under the DAPI channel using the NIS-Elements Imaging software (version 5.20.00). (B) The images obtained in A were manually scanned to count the number of cells infected and the number of amastigotes/cell and plotted. Then, 100–200 cells were counted per condition. (C) Parasite count in THP-1-derived cells infected with L. donovani (L. d) or not (C, control). The Ct values obtained from qPCR carried out on DNA isolated from infected cells were compared with the same represented as a standard curve obtained from qPCR carried out on promastigote DNA that was isolated from serially diluted parasite cultures in M199 medium; from this standard curve, the parasite numbers were deduced and shown as mean and SD from two experiments. (D) A new method to estimate parasite load after normalizing for host DNA concentration. The <t>kDNA</t> was measured from DNA isolated from infected cells by qPCR and normalized to copies of GAPDH DNA. The mean is shown from three separate experiments along with SD. NC, no infection control. (E) RAW264.7 cells infected with L. donovani were stained with Geimsa stain for LD body counting. Images were obtained in a bright field using Cell D software at 100× magnification. The arrow indicates an amastigote inside a cell. The number of amastigotes in 100 macrophage cells was counted using oil immersion lenses. (F) Data obtained from counting cells in E are plotted, showing the mean and SD. (G) Parasite load was estimated as kDNA normalized to gapdh from two experiments (shown as mean and SD) that were performed simultaneously with those shown in E. L. d, L. donovani; NC, no infection control.
Parasite Kinetoplast Dna Kdna, supplied by Thermo Fisher, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Beyotime one step tunel
FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using <t>TUNEL</t> (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).
One Step Tunel, supplied by Beyotime, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Bio-Rad bio rad mrc 1024 scanning confocal 3 channel system
FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using <t>TUNEL</t> (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).
Bio Rad Mrc 1024 Scanning Confocal 3 Channel System, supplied by Bio-Rad, used in various techniques. Bioz Stars score: 92/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Bio-Rad bio rad laboratories mrc1024 confocal imaging system
FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using <t>TUNEL</t> (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).
Bio Rad Laboratories Mrc1024 Confocal Imaging System, supplied by Bio-Rad, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Becton Dickinson pathway 435 confocal bioimager
FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using <t>TUNEL</t> (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).
Pathway 435 Confocal Bioimager, supplied by Becton Dickinson, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Becton Dickinson carv ii confocal
FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using <t>TUNEL</t> (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).
Carv Ii Confocal, supplied by Becton Dickinson, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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abberior instruments sted 775 quad scanning microscope
FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using <t>TUNEL</t> (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).
Sted 775 Quad Scanning Microscope, supplied by abberior instruments, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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abberior instruments instruments expert line sted microscope
FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using <t>TUNEL</t> (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).
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Image Search Results


A microscopic and molecular assay to measure parasite load. (A) Confocal microscopy images of THP-1 cell-derived macrophage-like cells infected or not with L. donovani promastigotes at the MOI shown at 100× magnification. The infection was carried out for 24 h before fixing and staining. DAPI stain was used to stain both the nuclear and parasite DNA (the pseudocolor red is shown instead of the blue color of DAPI for better visualization; laser wavelength: 405.0, power: 4.3). The arrow indicates an amastigote inside a cell. Images were obtained under the DAPI channel using the NIS-Elements Imaging software (version 5.20.00). (B) The images obtained in A were manually scanned to count the number of cells infected and the number of amastigotes/cell and plotted. Then, 100–200 cells were counted per condition. (C) Parasite count in THP-1-derived cells infected with L. donovani (L. d) or not (C, control). The Ct values obtained from qPCR carried out on DNA isolated from infected cells were compared with the same represented as a standard curve obtained from qPCR carried out on promastigote DNA that was isolated from serially diluted parasite cultures in M199 medium; from this standard curve, the parasite numbers were deduced and shown as mean and SD from two experiments. (D) A new method to estimate parasite load after normalizing for host DNA concentration. The kDNA was measured from DNA isolated from infected cells by qPCR and normalized to copies of GAPDH DNA. The mean is shown from three separate experiments along with SD. NC, no infection control. (E) RAW264.7 cells infected with L. donovani were stained with Geimsa stain for LD body counting. Images were obtained in a bright field using Cell D software at 100× magnification. The arrow indicates an amastigote inside a cell. The number of amastigotes in 100 macrophage cells was counted using oil immersion lenses. (F) Data obtained from counting cells in E are plotted, showing the mean and SD. (G) Parasite load was estimated as kDNA normalized to gapdh from two experiments (shown as mean and SD) that were performed simultaneously with those shown in E. L. d, L. donovani; NC, no infection control.

Journal: Infection and Immunity

Article Title: IFN-λ3 is induced by Leishmania donovani and can inhibit parasite growth in cell line models but not in the mouse model, while it shows a significant association with leishmaniasis in humans

doi: 10.1128/iai.00504-23

Figure Lengend Snippet: A microscopic and molecular assay to measure parasite load. (A) Confocal microscopy images of THP-1 cell-derived macrophage-like cells infected or not with L. donovani promastigotes at the MOI shown at 100× magnification. The infection was carried out for 24 h before fixing and staining. DAPI stain was used to stain both the nuclear and parasite DNA (the pseudocolor red is shown instead of the blue color of DAPI for better visualization; laser wavelength: 405.0, power: 4.3). The arrow indicates an amastigote inside a cell. Images were obtained under the DAPI channel using the NIS-Elements Imaging software (version 5.20.00). (B) The images obtained in A were manually scanned to count the number of cells infected and the number of amastigotes/cell and plotted. Then, 100–200 cells were counted per condition. (C) Parasite count in THP-1-derived cells infected with L. donovani (L. d) or not (C, control). The Ct values obtained from qPCR carried out on DNA isolated from infected cells were compared with the same represented as a standard curve obtained from qPCR carried out on promastigote DNA that was isolated from serially diluted parasite cultures in M199 medium; from this standard curve, the parasite numbers were deduced and shown as mean and SD from two experiments. (D) A new method to estimate parasite load after normalizing for host DNA concentration. The kDNA was measured from DNA isolated from infected cells by qPCR and normalized to copies of GAPDH DNA. The mean is shown from three separate experiments along with SD. NC, no infection control. (E) RAW264.7 cells infected with L. donovani were stained with Geimsa stain for LD body counting. Images were obtained in a bright field using Cell D software at 100× magnification. The arrow indicates an amastigote inside a cell. The number of amastigotes in 100 macrophage cells was counted using oil immersion lenses. (F) Data obtained from counting cells in E are plotted, showing the mean and SD. (G) Parasite load was estimated as kDNA normalized to gapdh from two experiments (shown as mean and SD) that were performed simultaneously with those shown in E. L. d, L. donovani; NC, no infection control.

Article Snippet: For quantifying parasite load, DNA was isolated from infected cells, and parasite kinetoplast DNA (kDNA) and human GAPDH or mouse Gapdh regions were amplified in real time using SYBR green qPCR master mix (Applied Biosystems) in a Step One Plus Real-Time PCR system (Applied Biosystems).

Techniques: Confocal Microscopy, Derivative Assay, Infection, Staining, Imaging, Software, Control, Isolation, Concentration Assay

IFN-λ3 inhibits L. donovani growth in cells. (A) Human (left) or mouse(right) IFN-λ3 at the shown concentration was added along with parasites during infection, and kDNA was measured after 24 h. The data are from two experiments in THP-1-derived cells and four experiments from RAW264.7 cells, showing the mean and SD. *P < 0.05; **P < 0.01; ***P < 0.001. (B) Human (left) or mouse (right) IFN-λ3 at 100 ng/mL was added at different time points after L. donovani infection, and kDNA was measured after 24 h of infection. The data are from two experiments in both cell lines, shown as the mean and SD. *P < 0.05. (C) IFN-λ4 at 6 µg/mL was added, and the experiment was as in A showing data from two experiments with mean and SD (**P < 0.01). A high concentration of IFN-λ4 was required as the specific activity of the recombinant protein preparation is low, and 6 µg/mL would give a comparable activity to 100 ng/mL of IFN-λ3, as detailed in our previous work (16). (D) Effect of IFN-λ3 and IFN-λ4 on cytokine secretion in L. donovani infected M2-macrophage-like cells. M2 macrophages were differentiated for 2 days from THP-1 cells as described in our previous work (16), and IFN-λ3 at 1 µg/mL or IFN-λ4 at 6 µg/mL were added during parasite infection. After 24 h, the supernatants and cells were collected, and qPCR and ELISA were carried out. The data are from two experiments, showing the mean and SD. *P < 0.05; **P < 0.01. L. d, L. donovani; NT, no treatment control.

Journal: Infection and Immunity

Article Title: IFN-λ3 is induced by Leishmania donovani and can inhibit parasite growth in cell line models but not in the mouse model, while it shows a significant association with leishmaniasis in humans

doi: 10.1128/iai.00504-23

Figure Lengend Snippet: IFN-λ3 inhibits L. donovani growth in cells. (A) Human (left) or mouse(right) IFN-λ3 at the shown concentration was added along with parasites during infection, and kDNA was measured after 24 h. The data are from two experiments in THP-1-derived cells and four experiments from RAW264.7 cells, showing the mean and SD. *P < 0.05; **P < 0.01; ***P < 0.001. (B) Human (left) or mouse (right) IFN-λ3 at 100 ng/mL was added at different time points after L. donovani infection, and kDNA was measured after 24 h of infection. The data are from two experiments in both cell lines, shown as the mean and SD. *P < 0.05. (C) IFN-λ4 at 6 µg/mL was added, and the experiment was as in A showing data from two experiments with mean and SD (**P < 0.01). A high concentration of IFN-λ4 was required as the specific activity of the recombinant protein preparation is low, and 6 µg/mL would give a comparable activity to 100 ng/mL of IFN-λ3, as detailed in our previous work (16). (D) Effect of IFN-λ3 and IFN-λ4 on cytokine secretion in L. donovani infected M2-macrophage-like cells. M2 macrophages were differentiated for 2 days from THP-1 cells as described in our previous work (16), and IFN-λ3 at 1 µg/mL or IFN-λ4 at 6 µg/mL were added during parasite infection. After 24 h, the supernatants and cells were collected, and qPCR and ELISA were carried out. The data are from two experiments, showing the mean and SD. *P < 0.05; **P < 0.01. L. d, L. donovani; NT, no treatment control.

Article Snippet: For quantifying parasite load, DNA was isolated from infected cells, and parasite kinetoplast DNA (kDNA) and human GAPDH or mouse Gapdh regions were amplified in real time using SYBR green qPCR master mix (Applied Biosystems) in a Step One Plus Real-Time PCR system (Applied Biosystems).

Techniques: Concentration Assay, Infection, Derivative Assay, Activity Assay, Recombinant, Enzyme-linked Immunosorbent Assay, Control

IFN-λ3 inhibits L. donovani by increasing ROS production in cells. (A) (Top) RAW264.7 cells infected with L. donovani for different time points as shown were subject to qPCR for kDNA (normalized to Gapdh) and Ifnl3 (normalized to Rps29). (Bottom) Immunoneutralization of secreted mIFN-λ3 increases parasite load. The experiment was similar to the one described in the top, except that a rat anti-mouse IFN-λ3 antibody (shown as α-mIFN-λ3) was added or not at 24 h pi, at increasing concentrations as shown (1.5, 3.0, and 4.5 µg/mL) in the medium, and kDNA copies in the cells were measured after an additional 12 h (i.e., 36 h pi) of incubation. The data from both the top and bottom are from two experiments, showing the mean and SD. *P < 0.05i, post-infection. (B) ROS levels are induced by IFN-λ3, as measured by the NBT assay. (Top) The indicated treatment (IFN-λ3, LPS, or L. d ± IFN-λ3) was for 2 h; IFN-λ3 was at 100 ng/mL and LPS was at 1 µg/mL. (Bottom) L. d infection was for indicated time points. The means from three experiments (top) and two experiments (bottom) are shown; error bars denote SD. NT, no treatment. *P < 0.05; **P < 0.001; L.D, L. donovani. (C) mIFN-λ3 increases ROS production in RAW264.7 cells in a dose-dependent manner, as measured by a fluorescence-based assay. RAW264.7 cells were incubated with the shown concentrations of mIFN-λ3 or LPS (1 µg/mL) or NAC (100 mM) + mIFN-λ3 (0.5 µg/mL) for 2 h before staining with DCFDA. The fluorescence intensity quantified is shown at the top (data from two experiments with mean and SD are depicted; *P < 0.05), and the bottom shows representative images taken at 20× magnification of the cells under the conditions shown. (D) IFN-λ3 can inhibit parasite load even when ROS production is inhibited. (top) L. donovani (L. d) infection was given in THP-1-derived cells as before for 24 h in the absence (NT, no treatment) or presence of IFN-λ3 and in the presence or absence of an increasing concentration of NAC added to the medium. The parasite load was estimated after 24 h pi. (Bottom) As in top, but the kDNA copies are shown after normalizing to NT and NAC at 50 mM; data are from two experiments showing the mean and SD. **P < 0.01. (E) (Top) THP-1 cells were pretreated with 50 ng/mL of IFN-λ3 for 48 h (incubated along with PMA), and then the media was removed and L. donovani (L. d) or mock infection (1:10 MOI) was given for 2 h. ROS levels were measured by the NBT assay. Data from two experiments with mean and SD are shown. *P < 0.05. NT, no treatment. (Bottom) kDNA levels shown in THP-1 cells that were pretreated with 100 ng/mL IFN-λ3 or not (incubated along with PMA for 48 h) were washed off the media and infected or not with L. donovani for 24 h, and kDNA was measured by qPCR as before. The data are from two experiments, showing the mean and SD. Similar experiments with IFN-λ4 are shown in Fig. S2B.

Journal: Infection and Immunity

Article Title: IFN-λ3 is induced by Leishmania donovani and can inhibit parasite growth in cell line models but not in the mouse model, while it shows a significant association with leishmaniasis in humans

doi: 10.1128/iai.00504-23

Figure Lengend Snippet: IFN-λ3 inhibits L. donovani by increasing ROS production in cells. (A) (Top) RAW264.7 cells infected with L. donovani for different time points as shown were subject to qPCR for kDNA (normalized to Gapdh) and Ifnl3 (normalized to Rps29). (Bottom) Immunoneutralization of secreted mIFN-λ3 increases parasite load. The experiment was similar to the one described in the top, except that a rat anti-mouse IFN-λ3 antibody (shown as α-mIFN-λ3) was added or not at 24 h pi, at increasing concentrations as shown (1.5, 3.0, and 4.5 µg/mL) in the medium, and kDNA copies in the cells were measured after an additional 12 h (i.e., 36 h pi) of incubation. The data from both the top and bottom are from two experiments, showing the mean and SD. *P < 0.05i, post-infection. (B) ROS levels are induced by IFN-λ3, as measured by the NBT assay. (Top) The indicated treatment (IFN-λ3, LPS, or L. d ± IFN-λ3) was for 2 h; IFN-λ3 was at 100 ng/mL and LPS was at 1 µg/mL. (Bottom) L. d infection was for indicated time points. The means from three experiments (top) and two experiments (bottom) are shown; error bars denote SD. NT, no treatment. *P < 0.05; **P < 0.001; L.D, L. donovani. (C) mIFN-λ3 increases ROS production in RAW264.7 cells in a dose-dependent manner, as measured by a fluorescence-based assay. RAW264.7 cells were incubated with the shown concentrations of mIFN-λ3 or LPS (1 µg/mL) or NAC (100 mM) + mIFN-λ3 (0.5 µg/mL) for 2 h before staining with DCFDA. The fluorescence intensity quantified is shown at the top (data from two experiments with mean and SD are depicted; *P < 0.05), and the bottom shows representative images taken at 20× magnification of the cells under the conditions shown. (D) IFN-λ3 can inhibit parasite load even when ROS production is inhibited. (top) L. donovani (L. d) infection was given in THP-1-derived cells as before for 24 h in the absence (NT, no treatment) or presence of IFN-λ3 and in the presence or absence of an increasing concentration of NAC added to the medium. The parasite load was estimated after 24 h pi. (Bottom) As in top, but the kDNA copies are shown after normalizing to NT and NAC at 50 mM; data are from two experiments showing the mean and SD. **P < 0.01. (E) (Top) THP-1 cells were pretreated with 50 ng/mL of IFN-λ3 for 48 h (incubated along with PMA), and then the media was removed and L. donovani (L. d) or mock infection (1:10 MOI) was given for 2 h. ROS levels were measured by the NBT assay. Data from two experiments with mean and SD are shown. *P < 0.05. NT, no treatment. (Bottom) kDNA levels shown in THP-1 cells that were pretreated with 100 ng/mL IFN-λ3 or not (incubated along with PMA for 48 h) were washed off the media and infected or not with L. donovani for 24 h, and kDNA was measured by qPCR as before. The data are from two experiments, showing the mean and SD. Similar experiments with IFN-λ4 are shown in Fig. S2B.

Article Snippet: For quantifying parasite load, DNA was isolated from infected cells, and parasite kinetoplast DNA (kDNA) and human GAPDH or mouse Gapdh regions were amplified in real time using SYBR green qPCR master mix (Applied Biosystems) in a Step One Plus Real-Time PCR system (Applied Biosystems).

Techniques: Infection, Incubation, Fluorescence, Staining, Derivative Assay, Concentration Assay

IFN-λ3 targets an early event in parasite uptake. (A) IFN-λ3 at the indicated doses (the color key for the doses shown is the same for A, B, and C) were incubated along with the promastigotes, and slides were stained with DAPI, and the amastigotes presence and numbers were manually counted. The data are from three (for no treatment) and four (for IFN-λ3 treatment) independent experiments, each with 100–200 individual cells shown as the mean and SD. *P < 0.05. (B) (Left) Fluorescence microscope image of THP-1-derived cells incubated with CFSE-stained heat-killed L. donovani showing different stains. The arrow indicates a parasite taken up by the cell by phagocytosis. (Right) Manual counting of the parasite inside the cells and numbers was done as above and plotted. The data are from four independent experiments, each involving 100 to 200 individual cells, showing the mean and SD. For B and C, live parasites inside the cells were observed with the DAPI channel, while heat-killed parasites were observed under the GFP channel. Images were obtained under DAPI (imparts red pseudocolor), GFP (green), and Texas Red (imparts gray pseudocolor). (C) (Top) Fluorescence microscopic image of THP-1-derived macrophage-like cells that have taken up zymosan in a phagocytosis assay as described in the Materials and Methods; images were obtained under DAPI (imparts red pseudocolor), GFP (green), and Brightfield. The arrow indicates zymosan inside a cell. (Bottom) Manual counting of the cells with zymosan was performed as in B and plotted. The data are from two separate experiments with ~250 cells in each, showing the mean and SD. For B and C, image analysis was done using Leica Application Suite X software (version 3.7.2.22383) at 100× magnification. (D) Schematic representation of an experimental design with five (I-V) strategies. L donovani (L. d) infection (downward arrow) was given at 1:20 MOI for only 6 h, after which the uninfected promastigotes were removed after rigorous washing with PBS. IFN-λ3 treatment (inverted dark triangle) was given at the depicted time points, and after the indicated incubation periods, cells were collected and quantified for kDNA copies by qPCR (downward arrow with round head). (E and F). IFN-λ3 targets an early event during parasite uptake. Experiments as designed in the schematic representation shown in D were carried out, and results are presented in E (strategies I-IV) for 24 (E, top), 48 (E, middle), or 72 h pi (E, bottom) and F (strategies I for 48 h pi and V). 1:10 MOI and continuous infection conditions as described for previous experiments were also carried out, but the incubation periods included 48 and 72 h pi along with 24 h pi (shown in E middle, bottom, and top, respectively). qPCR was performed to estimate kDNA copies and ISG expression. The kDNA copies were normalized to NT (no IFN-λ3 treatment) and shown in E, while the actual fold changes are shown in F. The data in both E and F are from two experiments showing the mean and SD. *P < 0.05; **P < 0.01. The data shown in E are also shown with actual fold changes and without normalization to NT control samples in Fig. S2E and F.

Journal: Infection and Immunity

Article Title: IFN-λ3 is induced by Leishmania donovani and can inhibit parasite growth in cell line models but not in the mouse model, while it shows a significant association with leishmaniasis in humans

doi: 10.1128/iai.00504-23

Figure Lengend Snippet: IFN-λ3 targets an early event in parasite uptake. (A) IFN-λ3 at the indicated doses (the color key for the doses shown is the same for A, B, and C) were incubated along with the promastigotes, and slides were stained with DAPI, and the amastigotes presence and numbers were manually counted. The data are from three (for no treatment) and four (for IFN-λ3 treatment) independent experiments, each with 100–200 individual cells shown as the mean and SD. *P < 0.05. (B) (Left) Fluorescence microscope image of THP-1-derived cells incubated with CFSE-stained heat-killed L. donovani showing different stains. The arrow indicates a parasite taken up by the cell by phagocytosis. (Right) Manual counting of the parasite inside the cells and numbers was done as above and plotted. The data are from four independent experiments, each involving 100 to 200 individual cells, showing the mean and SD. For B and C, live parasites inside the cells were observed with the DAPI channel, while heat-killed parasites were observed under the GFP channel. Images were obtained under DAPI (imparts red pseudocolor), GFP (green), and Texas Red (imparts gray pseudocolor). (C) (Top) Fluorescence microscopic image of THP-1-derived macrophage-like cells that have taken up zymosan in a phagocytosis assay as described in the Materials and Methods; images were obtained under DAPI (imparts red pseudocolor), GFP (green), and Brightfield. The arrow indicates zymosan inside a cell. (Bottom) Manual counting of the cells with zymosan was performed as in B and plotted. The data are from two separate experiments with ~250 cells in each, showing the mean and SD. For B and C, image analysis was done using Leica Application Suite X software (version 3.7.2.22383) at 100× magnification. (D) Schematic representation of an experimental design with five (I-V) strategies. L donovani (L. d) infection (downward arrow) was given at 1:20 MOI for only 6 h, after which the uninfected promastigotes were removed after rigorous washing with PBS. IFN-λ3 treatment (inverted dark triangle) was given at the depicted time points, and after the indicated incubation periods, cells were collected and quantified for kDNA copies by qPCR (downward arrow with round head). (E and F). IFN-λ3 targets an early event during parasite uptake. Experiments as designed in the schematic representation shown in D were carried out, and results are presented in E (strategies I-IV) for 24 (E, top), 48 (E, middle), or 72 h pi (E, bottom) and F (strategies I for 48 h pi and V). 1:10 MOI and continuous infection conditions as described for previous experiments were also carried out, but the incubation periods included 48 and 72 h pi along with 24 h pi (shown in E middle, bottom, and top, respectively). qPCR was performed to estimate kDNA copies and ISG expression. The kDNA copies were normalized to NT (no IFN-λ3 treatment) and shown in E, while the actual fold changes are shown in F. The data in both E and F are from two experiments showing the mean and SD. *P < 0.05; **P < 0.01. The data shown in E are also shown with actual fold changes and without normalization to NT control samples in Fig. S2E and F.

Article Snippet: For quantifying parasite load, DNA was isolated from infected cells, and parasite kinetoplast DNA (kDNA) and human GAPDH or mouse Gapdh regions were amplified in real time using SYBR green qPCR master mix (Applied Biosystems) in a Step One Plus Real-Time PCR system (Applied Biosystems).

Techniques: Incubation, Staining, Fluorescence, Microscopy, Derivative Assay, Phagocytosis Assay, Software, Infection, Expressing, Control

IFN-λ3 before infection fails to inhibit parasite load in the mouse model of VL. (A) and (B) Gene expression changes measured by qPCR from mice spleen (A) or liver (B) pretreated with 4 µg/mouse of mIFN-λ3 or PBS 18 h before infection with L. donovani. The infection was allowed for 6 weeks, and gene expression was quantified using primers listed in Table S1 and SYBR green (Applied Biosystems) protocol. kDNA was also measured and normalized using the 2−∆∆Ct method. Six female mice were used in each group, and 18 data points are shown for the six samples carried out in technical triplicate. The statistical significance, however, was calculated with n = 6 by considering the average of the technical triplicates for each animal as the actual value for that animal. **P < 0.01. No significant differences were observed in the body weight and organ weights for the two groups.

Journal: Infection and Immunity

Article Title: IFN-λ3 is induced by Leishmania donovani and can inhibit parasite growth in cell line models but not in the mouse model, while it shows a significant association with leishmaniasis in humans

doi: 10.1128/iai.00504-23

Figure Lengend Snippet: IFN-λ3 before infection fails to inhibit parasite load in the mouse model of VL. (A) and (B) Gene expression changes measured by qPCR from mice spleen (A) or liver (B) pretreated with 4 µg/mouse of mIFN-λ3 or PBS 18 h before infection with L. donovani. The infection was allowed for 6 weeks, and gene expression was quantified using primers listed in Table S1 and SYBR green (Applied Biosystems) protocol. kDNA was also measured and normalized using the 2−∆∆Ct method. Six female mice were used in each group, and 18 data points are shown for the six samples carried out in technical triplicate. The statistical significance, however, was calculated with n = 6 by considering the average of the technical triplicates for each animal as the actual value for that animal. **P < 0.01. No significant differences were observed in the body weight and organ weights for the two groups.

Article Snippet: For quantifying parasite load, DNA was isolated from infected cells, and parasite kinetoplast DNA (kDNA) and human GAPDH or mouse Gapdh regions were amplified in real time using SYBR green qPCR master mix (Applied Biosystems) in a Step One Plus Real-Time PCR system (Applied Biosystems).

Techniques: Infection, Gene Expression, SYBR Green Assay

IFN-λ3 treatment during infection fails to inhibit parasite load in the mouse model of VL. (A) Liver and spleens of the mice treated with PBS or 4 µg/mouse of mIFN-λ3 (in two doses of 2 µg/mouse in each dose given 24 h apart) at 12 weeks of infection were collected and weighed before subjecting them to qPCR for kDNA (liver and spleen) and other genes (spleen only). Each group had six animals (n = 6); 18 data points are shown for the six samples carried out in technical triplicates for qPCR data. The statistical significance, however, was calculated with n = 6 by considering the average of the technical triplicates for each animal as the actual value for that animal; for the organ weights, single measurements were taken for each organ belonging to each animal. *P < 0.01. (B) The sera from mice were subjected to ELISA for the three mouse cytokines shown.

Journal: Infection and Immunity

Article Title: IFN-λ3 is induced by Leishmania donovani and can inhibit parasite growth in cell line models but not in the mouse model, while it shows a significant association with leishmaniasis in humans

doi: 10.1128/iai.00504-23

Figure Lengend Snippet: IFN-λ3 treatment during infection fails to inhibit parasite load in the mouse model of VL. (A) Liver and spleens of the mice treated with PBS or 4 µg/mouse of mIFN-λ3 (in two doses of 2 µg/mouse in each dose given 24 h apart) at 12 weeks of infection were collected and weighed before subjecting them to qPCR for kDNA (liver and spleen) and other genes (spleen only). Each group had six animals (n = 6); 18 data points are shown for the six samples carried out in technical triplicates for qPCR data. The statistical significance, however, was calculated with n = 6 by considering the average of the technical triplicates for each animal as the actual value for that animal; for the organ weights, single measurements were taken for each organ belonging to each animal. *P < 0.01. (B) The sera from mice were subjected to ELISA for the three mouse cytokines shown.

Article Snippet: For quantifying parasite load, DNA was isolated from infected cells, and parasite kinetoplast DNA (kDNA) and human GAPDH or mouse Gapdh regions were amplified in real time using SYBR green qPCR master mix (Applied Biosystems) in a Step One Plus Real-Time PCR system (Applied Biosystems).

Techniques: Infection, Enzyme-linked Immunosorbent Assay

FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using TUNEL (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).

Journal: Frontiers in immunology

Article Title: Graphene quantum dots induce cascadic apoptosis via interaction with proteins associated with anti-oxidation after endocytosis by Trypanosoma brucei .

doi: 10.3389/fimmu.2022.1022050

Figure Lengend Snippet: FIGURE 3 Cytotoxicological effects graphene quantum dots (GQDs) on Trypanosoma brucei 12 and 24 h post-exposure. (A) Quantitative analysis of T. brucei intracellular reactive oxygen species (ROS) values based on the results in Supplementary Figure S7. The intracellular ROS levels increased with prolonged exposure and increased doses. (B) Alterations of the MMP (DYm) in T. brucei following treatment with GQDs. The levels of DYm decreased with increased doses and duration of exposure. A JC-10 fluorescent probe was applied for the detection using flow cytometry (Supplementary Figure S8). (C) Increased cytoplasmic Ca2+ concentration of T. brucei following treatment with GQDs for 12 and 24 h, demonstrated by flow cytometry. Changes in the intracytoplasmic Ca2+ concentration captured by confocal microscopy, which can be seen in Supplementary Figure S9. (D) Intracellular ATP was significantly decreased in T. brucei after exposure to GQDs. (E) Exposure to GQDs resulted in the developmental arrest of T. brucei. The proportions of cell cycle dispersion are shown in graphs, predicated in the flow cytometry data in Supplementary Figure S10. (F) Flow cytometry analysis of the increased DNA fragmentation in T. brucei after treatment with varying concentrations of GQDs for 12 and 24 h using TUNEL (terminal deoxynucleotidyl transferase dUTP nick-end labeling) staining. T. brucei parasites that were not exposed to GQDs served controls. All values are the mean ± SD of triplicates. Student’s t-test was used to obtain p- values. *p < 0.05, **p < 0.01, ***p < 0.001 (compared to the control).

Article Snippet: The annexin V-FITC Apoptosis Detection Kit (C1062L), Cell Cycle and Apoptosis Analysis Kit (C1052), Cell Counting Kit-8 (C0038), and one-step TUNEL (terminal deoxynucleotidyl transferase dUTP nick-end labeling) Apoptosis Assay Kit (C1088) were provided by Beyotime Biotechnology (Suzhou, China).

Techniques: Cytometry, Concentration Assay, Confocal Microscopy, Dispersion, Flow Cytometry, TUNEL Assay, Staining, Control