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cytochrome c oxidase subunit 4  (Cell Signaling Technology Inc)


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    Structured Review

    Cell Signaling Technology Inc cytochrome c oxidase subunit 4
    Cytochrome C Oxidase Subunit 4, supplied by Cell Signaling Technology Inc, used in various techniques. Bioz Stars score: 96/100, based on 220 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/anti+mouse/COX+IV+(4D11-B3-E8)+Mouse+mAb/pmc12816905-99-54-60
    Average 96 stars, based on 220 article reviews
    cytochrome c oxidase subunit 4 - by Bioz Stars, 2026-09
    96/100 stars

    Images

    Related Articles

    other:

    Article Title: A targetable dependency on nonsense-mediated decay for proteostasis and immune control in small cell lung cancer
    Article Snippet: Secondary antibodies were anti-Rabbit 680 1:5000 (CST #5366), anti-Rabbit 800 1:10000 (CST #5151), anti-mouse 680 1:5000 (CST #5470) and anti-mouse 800 1:10000 (CST #5257).

    Article Title: Ligand-Dependent and -Independent Functions of Activation Function 1 of Progesterone Receptor in Genome-Wide Gene Regulation and in Cell Proliferation and Apoptosis of Breast Cancer Cells.
    Article Snippet: Horseradish peroxidase (HRP)-conjugated secondary antibodies, anti-mouse (Cell Signalling Technology, Danvers, MA, USA, #7076) and anti-rabbit (Cell Signalling Technology, Danvers, MA, USA, #7074) were used based on the host species of primary antibodies at dilution of 1:1000.

    Article Title: Targeting Mettl8-Tcf1 axis promotes CD8 + T PEX differentiation and antitumor immunity
    Article Snippet: HRP-linked, anti-mouse (1:3,000, cat. no. 58802S; Cell Signaling Technology) or anti-rabbit (1:3,000, cat. no. 7074P2; Cell Signaling Technology) secondary antibodies were used.

    Incubation:

    Article Title: Identification of myocardial contractility-related genes as regenerative targets and diagnostic biomarkers in coronary artery disease
    Article Snippet: After blocking with 5% skimmed milk for 1 h, the membrane was incubated overnight at 4 ◦C with primary antibodies at 1:1000 dilution: anti-UQCRQ (Cat# ab224180, Abcam), anti-COX7C (Cat# 11411-2-AP, Proteintech), anti-COX6C (Cat# ab150422, Abcam), anti-SLC8A1 (Cat# A03876, BosterBio), anti-COX7A2 (Cat# ab248815, Abcam), antiTNNT2 (Cat# MA5-12960, ThermoFisher Scientific), anti-CACNB2 (Cat# ab93606, Abcam), anti-CACNB1 (Cat# ab230019, Abcam), and β-actin (Cat# 4967, CST). .. After rinsing with TBST, membranes were incubated with secondary antibodies at 1:2000 dilution: anti-rabbit (Cat# 7074, CST) or anti-mouse (Cat# 7076, CST). .. Bands were detected using enhanced chemiluminescence reagents (ECL, ThermoFisher Scientific) and quantified with ImageJ software (NIH, USA).

    Article Title: AAV.PHP.eB-based strategies for precise modulation of α7 nicotinic acetylcholine receptor in neurons and astrocytes in the adult mouse brain.
    Article Snippet: Anti-mouse GAPDH (#ab8245, Abcam; 1:1,000) and Ponceau S Solution (Thermo) were used as housekeeping proteins. .. Membranes were then incubated with appropriate AR TIC LE IN PR ES S secondary horseradish peroxidase (HRP)-conjugated antibodies diluted at 1:5,000 (anti-rabbit #7074, anti-mouse #7076; Cell Signalling) for 1 hour at RT. .. The signal detection was performed with WESTAR ECL ETA C ULTRA 2.0 (XLS075, Cyanagen, Bologna, Italy), using UVItec Cambridge Alliance.

    Marker:

    Article Title: Inhibition of V-ATPase function drives apoptosis via GCN1/GCN2 kinase signaling
    Article Snippet: Immunoreactive bands were detected by incubating membranes with ECLTM Select Western Blotting Detection Reagent (RPN2235, CytivaTM) for 3 min before fluorescent signals were detected on a ChemidocMP (Bio-Rad). .. Antibodies were commercially obtained: PARP (#9542, Cell Signaling Technology), GAPDH (#2118, Cell Signaling Technology), β-Tubulin (sc-53140, Santa Cruz Biotechnology), phospho-H2A.X (07-164, Merck), anti-mouse (#7076, Cell Signaling Technology), anti-rat (#7077, Cell Signaling Technology), Caspase-3 (#9662,Cell Signaling Technology), XBP-1s (#12782, Cell Signaling Technology), ATF-6 (#65880, Cell Signaling Technology), α-Actinin (sc-17829, Santa Cruz), ATF-4 (#11815, Cell Signaling Technology), PERK (#3192, Cell Signaling Technology), eIF2α (#9722, Cell Signaling Technology), phospho-eIF2α (Ser51) (#9721, Cell Signaling Technology), GCN2 (#3302, Cell Signaling Technology), IRE1α (#3294,Cell Signaling Technology), Phospho-SAPK/JNK (Thr183/Tyr185)( #4668, Cell Signaling Technology), SAPK/JNK (#9252, Cell Signaling Technology), GAPDH (#2118, Cell Signaling Technology), CHOP (#2895, Cell Signaling Technology), BIM (#2933, Cell Signaling Technology), ZAKα (#BEYA301-993A-T, Szabo Scandic), PUMA (#4976 Cell Signaling Technology), NOXA (#14766, Cell Signaling Technology), BAX (#2772, Cell Signaling Technology), BAK(#3814, Cell Signaling Technology), MCL-1(#5452, Cell Signaling Technology); BCL-XL (#2762, Cell Signaling Technology); Protein markers used were either Broad Range Prestained Protein Marker (PL00002, Proteintech) or PageRuler TM Plus (26619, Thermo Scientific). ..

    Labeling:

    Article Title: Heterogeneous pro-inflammatory response to BRAFV600E-induced thyroid tumor development
    Article Snippet: Specific cytokines proteins were detected using primary antibodies against tumor necrosis factor-alpha (anti-TNF-α; Abcam, Cat no. ab6671), interleukin-6 (anti-IL-6; Abcam, Cat no. ab208113) interleukin-1 beta (anti-IL-1ß; Abcam, Cat no. ab9722), P21 (anti-P21; Abcam, Cat. no. ab188224) and β-Actin (anti-beta-actin/ACTB; Sigma-Aldrich, Cat. no. A5441). .. Specific bands were detected by enhanced chemiluminescence following labeling with HRP-linked anti-rabbit (Cell Signaling, Cat no. 7074S) and anti-mouse (Cell Signaling, Cat no. 7076S) secondary antibodies and use of PageRuler TM Plus Prestained Protein Ladder (Thermo Fisher, Cat. no. 26619). ..



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    Image Search Results


    BAITs promote DC activation and antigen presentation via enhanced lysosomal processing. (A) Schematic for MHC Ⅰ/Ⅱ immunostaining. DCs were treated with antigens or BAITs (12 h), then incubated in fresh medium (with TGFβ) for 24 h before staining. (B, C) Quantification of surface MHC Ⅰ (B) and MHC Ⅱ (C) on DCs (n = 8; n.s. is P > 0.05, ∗∗∗ is P < 0.001, ∗∗∗∗ is P < 0.0001 by one-way ANOVA with Bonferroni post-hoc test). (D, E) Representative immunofluorescence images of DCs (blue: nuclei; yellow: LAMP1; green: MHC Ⅰ; magenta: MHC Ⅱ). BAIT-treated DCs show strong surface MHC and minimal intracellular antigen signal, whereas antigen-treated DCs show retained antigen (red) and weak surface MHC signal. (F–H) Flow cytometric analysis of MHC Ⅰ (F), MHC Ⅱ (G), and CD80 (H) expression on murine CD11c + DCs after exposure to antigens or BAITs. (I) Quantification of MHC Ⅰ, MHC Ⅱ, and CD80 expression in DCs by flow cytometry (n = 3; ∗∗∗ is P < 0.001, ∗∗∗∗ is P < 0.0001 by two-way ANOVA with Bonferroni post-hoc test). (J) Heatmap of DC activation-related gene expression after treatment with antigens or BAITs, highlighting upregulation of maturation and antigen presentation genes and downregulation of immunosuppressive genes by BAITs (n = 3). Data are presented as mean ± SD.

    Journal: Bioactive Materials

    Article Title: Countering postoperative immune suppression with a self-assembling dendritic cell nanovaccine

    doi: 10.1016/j.bioactmat.2026.05.005

    Figure Lengend Snippet: BAITs promote DC activation and antigen presentation via enhanced lysosomal processing. (A) Schematic for MHC Ⅰ/Ⅱ immunostaining. DCs were treated with antigens or BAITs (12 h), then incubated in fresh medium (with TGFβ) for 24 h before staining. (B, C) Quantification of surface MHC Ⅰ (B) and MHC Ⅱ (C) on DCs (n = 8; n.s. is P > 0.05, ∗∗∗ is P < 0.001, ∗∗∗∗ is P < 0.0001 by one-way ANOVA with Bonferroni post-hoc test). (D, E) Representative immunofluorescence images of DCs (blue: nuclei; yellow: LAMP1; green: MHC Ⅰ; magenta: MHC Ⅱ). BAIT-treated DCs show strong surface MHC and minimal intracellular antigen signal, whereas antigen-treated DCs show retained antigen (red) and weak surface MHC signal. (F–H) Flow cytometric analysis of MHC Ⅰ (F), MHC Ⅱ (G), and CD80 (H) expression on murine CD11c + DCs after exposure to antigens or BAITs. (I) Quantification of MHC Ⅰ, MHC Ⅱ, and CD80 expression in DCs by flow cytometry (n = 3; ∗∗∗ is P < 0.001, ∗∗∗∗ is P < 0.0001 by two-way ANOVA with Bonferroni post-hoc test). (J) Heatmap of DC activation-related gene expression after treatment with antigens or BAITs, highlighting upregulation of maturation and antigen presentation genes and downregulation of immunosuppressive genes by BAITs (n = 3). Data are presented as mean ± SD.

    Article Snippet: After treatment, the cells were washed twice with PBS and fixed in 4% paraformaldehyde for 20 min. For intracellular protein staining, fixed cells were permeabilized with 0.1% Triton X-100 at room temperature for 10 min. Next, the cells were blocked with 2% BSA and incubated with rat CoraLite Plus 488 anti-mouse LAMP1 antibody (1:200) and rabbit anti-mouse pSAP (1:200) antibody overnight at 4 °C.

    Techniques: Activation Assay, Immunopeptidomics, Immunostaining, Incubation, Staining, Immunofluorescence, Expressing, Flow Cytometry, Gene Expression

    In vivo therapeutic efficacy of advanced BAITs in a postoperative tumor model. (A) Schematic of in vivo experimental design. LLC tumors were surgically resected, and mice were re-challenged with LLC cells. Mice then received BAIT treatments. (B) Photographs of tumors and tumor weights at day 16 for each group (n = 5; ∗ is P < 0.05, ∗∗ is P < 0.01, ∗∗∗ is P < 0.001 by one-way ANOVA with Bonferroni post-hoc test). (C) Individual tumor growth curves over time (n = 5; ∗∗ is P < 0.01, ∗∗∗∗ is P < 0.0001 by two-way ANOVA with Bonferroni post-hoc test). (D) H&E-stained tumor sections. (E) TUNEL staining of tumor sections (brown, apoptotic cells). Black arrowheads mark TUNEL + areas. (F) Quantification of TUNEL + apoptotic cells (n = 5; ∗∗∗∗ is P < 0.0001 by one-way ANOVA with Bonferroni post-hoc test). (G) Representative immunofluorescence for Ki67 (green) in tumor tissues (nuclei in blue). The Apo-BAIT group shows greatly reduced Ki67 + proliferating cells. (H) Quantification of Ki67 + cell density (n = 5; ∗ is P < 0.05, ∗∗ is P < 0.01, ∗∗∗∗ is P < 0.0001 by one-way ANOVA with Bonferroni post-hoc test). Data are presented as mean ± SD.

    Journal: Bioactive Materials

    Article Title: Countering postoperative immune suppression with a self-assembling dendritic cell nanovaccine

    doi: 10.1016/j.bioactmat.2026.05.005

    Figure Lengend Snippet: In vivo therapeutic efficacy of advanced BAITs in a postoperative tumor model. (A) Schematic of in vivo experimental design. LLC tumors were surgically resected, and mice were re-challenged with LLC cells. Mice then received BAIT treatments. (B) Photographs of tumors and tumor weights at day 16 for each group (n = 5; ∗ is P < 0.05, ∗∗ is P < 0.01, ∗∗∗ is P < 0.001 by one-way ANOVA with Bonferroni post-hoc test). (C) Individual tumor growth curves over time (n = 5; ∗∗ is P < 0.01, ∗∗∗∗ is P < 0.0001 by two-way ANOVA with Bonferroni post-hoc test). (D) H&E-stained tumor sections. (E) TUNEL staining of tumor sections (brown, apoptotic cells). Black arrowheads mark TUNEL + areas. (F) Quantification of TUNEL + apoptotic cells (n = 5; ∗∗∗∗ is P < 0.0001 by one-way ANOVA with Bonferroni post-hoc test). (G) Representative immunofluorescence for Ki67 (green) in tumor tissues (nuclei in blue). The Apo-BAIT group shows greatly reduced Ki67 + proliferating cells. (H) Quantification of Ki67 + cell density (n = 5; ∗ is P < 0.05, ∗∗ is P < 0.01, ∗∗∗∗ is P < 0.0001 by one-way ANOVA with Bonferroni post-hoc test). Data are presented as mean ± SD.

    Article Snippet: Anti-Ki67 mouse mAb (Cat# GB121141-100), anti-CD3 mouse mAb (Cat# GB15014-100), FITC-conjugated goat anti-mouse IgG (H + L) (Cat# GB22301), and Cy5-conjugated goat anti-mouse IgG (H + L) (Cat# GB27301) for immunofluorescence assays, and DAB (SA-HRP) TUNEL apoptosis detection kit were supplied by Servicebio (Wuhan, China).

    Techniques: In Vivo, Drug discovery, Staining, TUNEL Assay, Immunofluorescence