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Image Search Results
Journal: Laboratory investigation; a journal of technical methods and pathology
Article Title: RETRACTED: Blockade of TNF-α signaling suppresses the AREG-mediated IL-6 and IL-8 cytokines secretion induced by anti-Ro/SSA autoantibodies.
doi: 10.1038/labinvest.2010.168
Figure Lengend Snippet: Figure 1 Semiquantitative RT-PCR and real-time PCR for Furin, TACE and AREG genes expression. (a) RT-PCR analysis of Furin, TACE and AREG mRNA extracted from SGEC treated with anti-Ro/SSA autoantibodies. M, marker; control, untreated SGEC; HIgG, SGEC treated with IgG fractions extracted from sera of healthy donors; anti-Ro, SGEC treated with anti-Ro/SSA autoantibodies. RT-PCR of GADPH was used as control. Band intensities were analyzed by densitometry (b). (c) Real-time PCR for Furin, TACE and AREG genes expression. Representative histograms of mRNA levels of Furin, TACE and AREG in untreated SGEC (control), SGEC treated with healthy IgG (HIgG), anti-Ro/SSA autoantibodies (anti-Ro). The mRNA levels of the housekeeping gene, b-2 microglobulin, were quantified between untreated control cells and variously treated cells (data represent the mean±s.e. of five independent experiments).
Article Snippet: Membranes were incubated for 90 min with rabbit anti-human Furin polyclonal antibody (pAb), goat antihuman TACE pAb (both from Santa Cruz Biotechnology, Santa Cruz, CA, USA),
Techniques: Reverse Transcription Polymerase Chain Reaction, Real-time Polymerase Chain Reaction, Expressing, Marker, Control
Journal: Laboratory investigation; a journal of technical methods and pathology
Article Title: RETRACTED: Blockade of TNF-α signaling suppresses the AREG-mediated IL-6 and IL-8 cytokines secretion induced by anti-Ro/SSA autoantibodies.
doi: 10.1038/labinvest.2010.168
Figure Lengend Snippet: Figure 2 Analysis of Furin, TACE and AREG expression in anti-Ro/SSA Abs-treated SGEC. (a) Flow cytometric analysis of Furin, TACE and AREG expression in SGEC after anti-Ro/SSA Abs treatment. Examples of flow cytometric images from one representative experiment. (A) Furin expression analysis in untreated and anti-Ro/SSA or HIgG-treated SGEC; (B) intracellular active TACE expression analysis in untreated and anti-Ro/SSA or HIgG-treated SGEC; (C) AREG expression analysis in untreated and anti-Ro/SSA or HIgG-treated SGEC. (b) Western blot analysis of Furin, TACE and AREG proteins expression in SGEC treated or not with anti-Ro/SSA. Immunoblotting gave rise to bands of the expected size (97 kDa for Furin, 80 kDa for active TACE and 50 kDa for AREG). b-Actin was used as protein loading control. (c) Detection of soluble AREG by ELISA. Secreted AREG was detected by ELISA in the conditioned medium. Control, untreated SGEC; HIgG, SGEC treated with IgG fractions extracted from sera of healthy donors; anti-Ro, SGEC treated with anti-Ro/SSA autoantibodies. (Data represent the mean±s.e. of four independent experiments).
Article Snippet: Membranes were incubated for 90 min with rabbit anti-human Furin polyclonal antibody (pAb), goat antihuman TACE pAb (both from Santa Cruz Biotechnology, Santa Cruz, CA, USA),
Techniques: Expressing, Western Blot, Control, Enzyme-linked Immunosorbent Assay
Journal: Cell Research
Article Title: Targeting ATAD3A-PINK1-mitophagy axis overcomes chemoimmunotherapy resistance by redirecting PD-L1 to mitochondria
doi: 10.1038/s41422-022-00766-z
Figure Lengend Snippet: a Left, immunostaining of PD-L1 (green) and TOM20-labeled mitochondria (red) in BT549 human TNBC cells with or without ATAD3A-knockdown (shATAD3A#1 and shATAD3A#2). Scale bars, 20 μm and 2 μm (inset). Right, the percentage of PD-L1 co-localized with TOM20 ( n = 5 fields, t -test). b Immunoblot of PD-L1 in the cytoplasm and mitochondria of control and ATAD3A-knockdown BT549 cells. TOM20 and Tubulin were used as mitochondria and cytoplasm protein controls, respectively. Cyto, cytoplasm; mito, mitochondria. c Flow cytometry (left) and quantification (right) of surface PD-L1 in control and ATAD3A-knockdown BT549 cells ( n = 3, one-way ANOVA). d Venn diagram depicting overlapped genes for the interaction protein of ATAD3A set (BioGRID, RP5-832C2.1), the protein localization to mitochondrion set (GOBP 0070585) and the intrinsic component of mitochondrial membrane (GOCC 0098573). e Immunoblot of PINK1 in control and ATAD3A-knockdown BT549 cells. f Immunoblot of PD-L1 and PINK1 in HEK293T cells overexpressing PD-L1 (OE-PD-L1) and control cells (OE-Control), assessed after immunoprecipitation with immunoglobulin G (IgG) or antibody to PINK1. g Protein direct interaction analysis of the intracellular domain of PD-L1 (ICD) and PINK1 in vitro. Purified Flag-labeled full-length PINK1 was incubated with Biotin-labeled PD-L1 ICD domain, followed by streptavidin pull-down and immunoblot. h Schematic diagram of Flag-labeled full-length (FL) and truncated mutants with indicated domains (amino acids 1–155, amino acids 156–320, amino acids 321–509, amino acids 510–581) of PINK1. MTS, mitochondrial targeting sequence; N-lobe, kinase domain N; C-lobe, kinase domain C; CTD, C-terminal domain. i Protein direct interaction analysis of the intracellular domain of PD-L1 (ICD) and truncated PINK1 mutants in vitro. Purified Flag-labeled full-length and truncated PINK1 were incubated with Biotin-labeled PD-L1 ICD domain, followed by streptavidin pull-down and immunoblot. The estimated size of PINK1-4 (amino acids 510–581) which did not express in HEK293T cells was labeled with asterisk. j Immunoblot of PD-L1 in the cytoplasm and mitochondria of MDA-MB-231 cells with or without PINK1-knockdown (shPINK1#1 and shPINK1#2). TOM20 and Tubulin were used as mitochondria and cytoplasm protein controls. Cyto, cytoplasm; mito, mitochondria. k Left, co-localization of PD-L1 (green) and TOM20 (red) in control, ATAD3A knockdown, PINK1 knockdown or ATAD3A and PINK1 double knockdown BT549 cells. Scale bars, 20 μm and 2 μm (inset). Right, the percentage of PD-L1 co-localized with TOM20 ( n = 5 fields, one-way ANOVA). l Immunoblot of PD-L1 in the cytoplasm and mitochondria of control, ATAD3A-knockdown, PINK1-knockdown or ATAD3A and PINK1 double knockdown BT549 cells. m Immunoblot of indicated proteins in PD-L1-transfected HEK293T cells with or without PINK1 overexpression. n Immunoblot of PD-L1 in control and PINK1-knockdown (shPINK1#1 and shPINK1#2) BT549 cells. o Immunoblot of PD-L1 in BT549 cells transfected with control shRNA or shATAD3A (shATAD3A#1 and shATAD3A#2). p Immunoblot of total PD-L1 in control, ATAD3A-knockdown, PINK1-knockdown or ATAD3A and PINK1 double knockdown BT549 cells. q Immunoblot of PD-L1 in control and ATAD3A-knockdown BT549 cells treated with 20 μM CHX for indicated times. h, hours. r Quantification of PD-L1 intensity in immunoblot in control and ATAD3A-knockdown BT549 cells. s Immunoblot of PD-L1 in control and ATAD3A-knockdown MDA-MB-231 cells incubated with 20 nM BafA1 for indicated times. h, hours. Data are representative of at least two independent experiments and are shown as means ± SD. See also Supplementary information, Figs. and .
Article Snippet:
Techniques: Immunostaining, Labeling, Knockdown, Western Blot, Control, Flow Cytometry, Membrane, Immunoprecipitation, In Vitro, Purification, Incubation, Sequencing, Transfection, Over Expression, shRNA
Journal: Cell Research
Article Title: Targeting ATAD3A-PINK1-mitophagy axis overcomes chemoimmunotherapy resistance by redirecting PD-L1 to mitochondria
doi: 10.1038/s41422-022-00766-z
Figure Lengend Snippet: a – h BALB/c mice were inoculated orthotopically with 5 × 10 4 4T1 cells transfected with control shRNA (shControl) or shRNA for Atad3a (shAtad3a#1 and shAtad3a#2). a , b The endpoint tumor images ( a ) and volume ( b ) of tumors formed by control and Atad3a-knockdown cells in BALB/c mice ( n = 6, one-way ANOVA). c Left, IHC staining of Atad3a and PD-L1 on serial sections of tumors formed by control and Atad3a-knockdown cells. Scale bars, 50 μm. Right, IHC score of Atad3a in control and Atad3a-knockdown tumors ( n = 6 fields, t -test). d IHC score of PD-L1 in control and Atad3a-knockdown tumors ( n = 6 fields, t -test). e Quantification of the percentage of tumor-infiltrating CD8 + T cells in tumors formed by control and Atad3a-knockdown cells by flow cytometry ( n = 5, t -test). f Quantification of the percentages of tumor-infiltrating IFNγ + CD8 + T cells and IFNγ + CD4 + T cells by flow cytometry ( n = 5, t -test). g Ratio of CD8 + cytotoxic T lymphocytes to CD4 + CD25 + Foxp3 + T reg cells ( n = 5, t -test). h Quantification of the percentages of PD-1 + TIM-3 + CD8 + T cells (left) and PD-1 + TIM-3 + CD4 + T cells (right) by flow cytometry ( n = 5, t -test). i – m BALB/c mice were inoculated orthotopically with 5 × 10 4 4T1 cells transfected with control shRNA (shControl) or shRNA specific for Atad3a (shAtad3a), Pink1 (shPink1) or both (shAtad3a + shPink1). i , Left, the endpoint images of tumors formed by control, Atad3a-knockdown, Pink1-knockdown or Atad3a and Pink1 double knockdown 4T1 cells in BALB/c mice. Right, immunoblot of Atad3a and Pink1 in these 4T1 cells. j The volume of tumors mentioned above ( n = 6, one-way ANOVA). k Quantification of the percentage of tumor-infiltrating CD8 + T cells by flow cytometry ( n = 5, one-way ANOVA). l Quantification of the percentage of tumor-infiltrating IFNγ + CD8 + T cells by flow cytometry ( n = 5, one-way ANOVA). m Quantification of the percentage of PD-1 + TIM-3 + CD8 + T cells by flow cytometry ( n = 5, one-way ANOVA). n – s 4T1 tumors formed by control and Atad3a-knockdown cells were established orthotopically in BALB/c mice and received vehicle, anti-PD-L1 antibody (PD-L1 mAb), paclitaxel (PTX) or combined anti-PD-L1 antibody with paclitaxel treatment (PD-L1 mAb + PTX). IgG2b and saline were used as controls. n Experimental protocol. o , p The endpoint tumor images ( o ) and the volume ( p ) of tumors ( n = 6, one-way ANOVA). q – s Quantification of the percentages of tumor-infiltrating CD8 + T cells ( q ), IFNγ + CD8 + T cells ( r ) and PD-1 + TIM-3 + CD8 + T cells ( s ) in 4T1 tumors formed by control and Atad3a-knockdown cells received treatments as described above, determined by flow cytometry ( n = 5, one-way ANOVA). t Schematic model. Patients with PD-L1-positive TNBC could be divided into two groups based on ATAD3A expression. Patients with ATAD3A-high tumors might respond more poorly to ICIs plus paclitaxel therapy, and inhibition of ATAD3A is required to improve clinical outcome. Patients with ATAD3A-low tumors might benefit significantly from ICIs plus paclitaxel combination therapy. See also Supplementary information, Figs. – .
Article Snippet:
Techniques: Transfection, Control, shRNA, Knockdown, Immunohistochemistry, Flow Cytometry, Western Blot, Saline, Expressing, Inhibition