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anti phospho her3 erbb3 tyr1289  (Cell Signaling Technology Inc)


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    Cell Signaling Technology Inc anti phospho her3 erbb3 tyr1289
    Anti Phospho Her3 Erbb3 Tyr1289, supplied by Cell Signaling Technology Inc, used in various techniques. Bioz Stars score: 95/100, based on 320 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/phospho+her3+erbb3/Phospho-HER3%2FErbB3+(Tyr1289)+Rabbit+mAb/pmc13041752-2-0-3
    Average 95 stars, based on 320 article reviews
    anti phospho her3 erbb3 tyr1289 - by Bioz Stars, 2026-09
    95/100 stars

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    Article Title: The harmonized activities of HER2-HER3 heterodimer and deacetylated FOXA1 evade hormone response by regulating FOXA1 chromatin binding.
    Article Snippet: Following antibodies from Cell Signaling Technology: RPL13A (2765), βactin (4970S), phospho-HER2/ErbB2 (Tyr1221/1222) (2243), acetylated-lysine (Ac-K2-100) (9814), phospho-HER3/ErbB3 (Tyr1289; 12D3), and SIRT6 (2590).

    Article Title: Circulating tumor cell plasticity determines breast cancer therapy resistance via neuregulin 1–HER3 signaling
    Article Snippet: Antibodies to phospho-HER3/ERBB3 (Tyr 1289; 21D3; rabbit monoclonal 4791), HER3/ERBB3 (D22C5; XP rabbit monoclonal 12708), FGFR1 (D8E4; XP rabbit monoclonal 9740), phospho-AKT (Ser 473; D9E; XP rabbit monoclonal 4060), AKT (pan; C67E7; rabbit monoclonal 4691), phospho-p44/42 MAPK (ERK1/ERK2; Thr 202/Tyr 204; D13.14.4E; XP rabbit monoclonal 4370), p44/42 MAPK (ERK1/ERK2; 137F5; rabbit monoclonal 4695), phospho-FAK (Tyr 397; D20B1; rabbit monoclonal 8556), FAK (rabbit polyclonal 3285) and GAPDH (14C10; rabbit monoclonal 2118) were purchased from Cell Signaling Technology.

    Article Title: Increased ErbB2 Signaling Is an Early Adaptation to Androgen Signaling Inhibition and Persists in Castration-Resistant Prostate Cancer
    Article Snippet: Increased ErbB2 Signaling Is an Early Adaptation to Androgen Signaling Inhibition and Persists in Castration-Resistant Prostate Cancer Jude Owiredu, Betul Ersoy-Fazlioglu, Larysa Poluben, Carla Calagua, Christopher Dennehy, Anastasia-Maria Stavridi, Liyang Wang, Olga Voznesensky, Fang Xie, Huihui Ye, Yue Sun, David J. Einstein, Xin Gao, Charlene Mantia, Mary-Ellen Taplin, William J. Muller, Steven P. Balk, and Joshua W. Russo

    Article Title: Circulating tumor cell plasticity determines breast cancer therapy resistance via neuregulin 1-HER3 signaling.
    Article Snippet: Antibodies to phospho-HER3/ERBB3 (Tyr 1289; 21D3; rabbit monoclonal 4791), HER3/ERBB3 (D22C5; XP rabbit monoclonal 12708), FGFR1 (D8E4; XP rabbit monoclonal 9740), phospho-AKT (Ser 473; D9E; XP rabbit monoclonal 4060), AKT (pan; C67E7; rabbit monoclonal 4691), phospho-p44/42 MAPK (ERK1/ERK2; Thr 202/Tyr 204; D13.14.4E; XP rabbit monoclonal 4370), p44/42 MAPK (ERK1/ERK2; 137F5; rabbit monoclonal 4695), phospho-FAK (Tyr 397; D20B1; rabbit monoclonal 8556), FAK (rabbit polyclonal 3285) and GAPDH (14C10; rabbit monoclonal 2118) were purchased from Cell Signaling Technology.

    Article Title: Functional Genomics Identifies Metabolic Vulnerabilities in Pancreatic Cancer.
    Article Snippet: Flag (CST 8146T) 1:1000; HMBS (Abcam, ab129092) 1:1000; FDFT1 (Proteintech, 13128-1- AP) 1:1000; S6 Ribosomal Protein (CST, 2217) 1:1000; Phospho-S6 Ribosomal Protein (Ser240/244) (CST, 2215) 1:1000; AKT (CST, 9272) 1:1000; Phospho-AKT (Thr308) (CST, 9275) 1:500; Phospho-AKT (S473) (CST 9271) 1:500; ERK II (Santa Cruz, sc1647); 1:1000; MAPK p44/42 (ERK1/2) (CST, 9102) 1:1000; Her3/Erbb3 (CST, 12708) 1:500; Akt (pan) (40D4) (CST 2920) 1:1000); Phospho-Her3/Erbb3 (Tyr 1289) (CST, 4791) 1:500; Actin (Sigma, A2228) 1:2000;

    Article Title: Increased ErbB2 Signaling Is an Early Adaptation to Androgen Signaling Inhibition and Persists in Castration-Resistant Prostate Cancer
    Article Snippet: The commercially available antibodies used for this study were phospho-HER2/ErbB2 (Tyr1221/1222; Cell Signaling Technology, cat. No. 2243, RRID: AB_490899, 1:200), phospho-HER3/ErbB3 (Tyr1289; Cell Signaling Technology, cat. No. 4791, RRID: AB_2099709, 1:600), and heregulin/NRG1 (Cell Signaling Technology, cat. No. 2573, RRID: AB_1031011, 1:100).

    Incubation:

    Article Title: A novel Gorilla-derived oncolytic Adenovirus with natural selective replication in cancer cells
    Article Snippet: .. Membranes were then incubated overnight at 4°C with the following primary antibodies: anti Akt (#9272, Cell Signaling, Danvers, Massachusetts, USA), anti HER-3/ErbB3 (D22C5, Rabbit mAb, #12708s, Cell Signaling), anti Phospho-HER3/ErbB3 (Tyr1289, 21D3, Rabbit mAb, #4791s, Cell Signaling), anti Phospho-Akt (Ser473, D9E, Rabbit mAb, #4060, Cell Signaling), and anti-β-actin (mouse monoclonal; 1:40000, #A5441; Sigma-Aldrich). .. After three washes in PBS-0.1% Tween20, the membranes were hybridized with horseradish peroxidase (HRP)-conjugated secondary antibodies (rabbit or mouse; Biorad, CA, USA).



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    Inavolisib sensitivity depends on high FGFR2 expression. A, Legend related to panels in B–I . B, Cell lines were treated with 0.03 μmol/L of the FGFR2i or 2-μmol/L lapatinib for 1 hour followed by immunoblotting with the antibodies indicated at left. Representative results from experiments ( n = 2). C, Cell lines were treated with inavolisib or the FGFR2i at various concentrations for 1 hour. Cell lysates were immunoprecipitated with an antibody against p85β, followed by immunoblotting with the antibodies indicated at left. Representative results from experiments ( n = 2). IB, immunoblotting. D, Following RAS-GTP pulldown, cell lines were treated with the FGFR2i or lapatinib for different durations and immunoblotted with the antibodies indicated at left. Representative results from experiments ( n = 2). E, Cell lysates from cells treated with inavolisib alone or in combination with the FGFR2i or lapatinib for 4 hours were immunoprecipitated with RAS antibody and blotted with p110α antibody. F, Mechanistic model of the effects of FGFR2 and HER2 inhibition on HER3 and RAS activity. FGFR2-high–expressing cell lines induced PI3K signaling through both HER3 and WT RAS activity (top) compared with HER2-induced PI3K signaling through HER3 but not RAS activity (bottom). G, FGFR2-high–expressing cell lines, MFM223 and SUM52PE, were treated with inavolisib, FGFR2i, or lapatinib for 1 hour. Membrane fractions were analyzed by reciprocal co-IP with one another using HER3 or FGFR2 antibody and Western blotting with FGFR2, HER3, RAS, and p85β antibody. Representative results from experiments ( n = 2). H, SUM52PE, MFM223, and MFE280 cells were treated with inavolisib single-agent or in combination with the FGFR2i or lapatinib for 6 hours. Ubiquitinated proteins were pulled down from the membrane fraction with TUBE1 reagent and blotted with p110α antibody. Representative results from experiments ( n = 2). I, Western blots of the inhibitor response in PI3K signaling <t>(pHER3</t> and pAKT) in PIK3CA mutant MFM223 and PIK3CA WT SUM52PE; cell lines were treated with 0.5-μmol/L inavolisib or 1-μmol/L alpelisib for different durations. Representative results from experiments ( n = 2). J, Ratio of inavolisib and alpelisib GR 50 values in FGFR2-high ( n = 12) vs. FGFR2-low ( n = 9) expressing cell lines harboring PIK3CA mutations, as assessed in a 5-day viability assay. Data are represented as median (center line) ± IQR (25th to 75th percentile, box) and ± full range (minimum to maximum, whiskers). P value was calculated using Wilcoxon rank-sum test. Representative results from experiments ( n = 2). WB, Western blotting.
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    Inavolisib sensitivity depends on high FGFR2 expression. A, Legend related to panels in B–I . B, Cell lines were treated with 0.03 μmol/L of the FGFR2i or 2-μmol/L lapatinib for 1 hour followed by immunoblotting with the antibodies indicated at left. Representative results from experiments ( n = 2). C, Cell lines were treated with inavolisib or the FGFR2i at various concentrations for 1 hour. Cell lysates were immunoprecipitated with an antibody against p85β, followed by immunoblotting with the antibodies indicated at left. Representative results from experiments ( n = 2). IB, immunoblotting. D, Following RAS-GTP pulldown, cell lines were treated with the FGFR2i or lapatinib for different durations and immunoblotted with the antibodies indicated at left. Representative results from experiments ( n = 2). E, Cell lysates from cells treated with inavolisib alone or in combination with the FGFR2i or lapatinib for 4 hours were immunoprecipitated with RAS antibody and blotted with p110α antibody. F, Mechanistic model of the effects of FGFR2 and HER2 inhibition on HER3 and RAS activity. FGFR2-high–expressing cell lines induced PI3K signaling through both HER3 and WT RAS activity (top) compared with HER2-induced PI3K signaling through HER3 but not RAS activity (bottom). G, FGFR2-high–expressing cell lines, MFM223 and SUM52PE, were treated with inavolisib, FGFR2i, or lapatinib for 1 hour. Membrane fractions were analyzed by reciprocal co-IP with one another using HER3 or FGFR2 antibody and Western blotting with FGFR2, HER3, RAS, and p85β antibody. Representative results from experiments ( n = 2). H, SUM52PE, MFM223, and MFE280 cells were treated with inavolisib single-agent or in combination with the FGFR2i or lapatinib for 6 hours. Ubiquitinated proteins were pulled down from the membrane fraction with TUBE1 reagent and blotted with p110α antibody. Representative results from experiments ( n = 2). I, Western blots of the inhibitor response in PI3K signaling (pHER3 and pAKT) in PIK3CA mutant MFM223 and PIK3CA WT SUM52PE; cell lines were treated with 0.5-μmol/L inavolisib or 1-μmol/L alpelisib for different durations. Representative results from experiments ( n = 2). J, Ratio of inavolisib and alpelisib GR 50 values in FGFR2-high ( n = 12) vs. FGFR2-low ( n = 9) expressing cell lines harboring PIK3CA mutations, as assessed in a 5-day viability assay. Data are represented as median (center line) ± IQR (25th to 75th percentile, box) and ± full range (minimum to maximum, whiskers). P value was calculated using Wilcoxon rank-sum test. Representative results from experiments ( n = 2). WB, Western blotting.

    Journal: Clinical Cancer Research

    Article Title: PI3Kα Inhibitor and Degrader Inavolisib Can Co-opt FGFR2 to Enhance Responses in Patients with PIK3CA -Mutated Solid Tumors and in Preclinical Models

    doi: 10.1158/1078-0432.CCR-25-1459

    Figure Lengend Snippet: Inavolisib sensitivity depends on high FGFR2 expression. A, Legend related to panels in B–I . B, Cell lines were treated with 0.03 μmol/L of the FGFR2i or 2-μmol/L lapatinib for 1 hour followed by immunoblotting with the antibodies indicated at left. Representative results from experiments ( n = 2). C, Cell lines were treated with inavolisib or the FGFR2i at various concentrations for 1 hour. Cell lysates were immunoprecipitated with an antibody against p85β, followed by immunoblotting with the antibodies indicated at left. Representative results from experiments ( n = 2). IB, immunoblotting. D, Following RAS-GTP pulldown, cell lines were treated with the FGFR2i or lapatinib for different durations and immunoblotted with the antibodies indicated at left. Representative results from experiments ( n = 2). E, Cell lysates from cells treated with inavolisib alone or in combination with the FGFR2i or lapatinib for 4 hours were immunoprecipitated with RAS antibody and blotted with p110α antibody. F, Mechanistic model of the effects of FGFR2 and HER2 inhibition on HER3 and RAS activity. FGFR2-high–expressing cell lines induced PI3K signaling through both HER3 and WT RAS activity (top) compared with HER2-induced PI3K signaling through HER3 but not RAS activity (bottom). G, FGFR2-high–expressing cell lines, MFM223 and SUM52PE, were treated with inavolisib, FGFR2i, or lapatinib for 1 hour. Membrane fractions were analyzed by reciprocal co-IP with one another using HER3 or FGFR2 antibody and Western blotting with FGFR2, HER3, RAS, and p85β antibody. Representative results from experiments ( n = 2). H, SUM52PE, MFM223, and MFE280 cells were treated with inavolisib single-agent or in combination with the FGFR2i or lapatinib for 6 hours. Ubiquitinated proteins were pulled down from the membrane fraction with TUBE1 reagent and blotted with p110α antibody. Representative results from experiments ( n = 2). I, Western blots of the inhibitor response in PI3K signaling (pHER3 and pAKT) in PIK3CA mutant MFM223 and PIK3CA WT SUM52PE; cell lines were treated with 0.5-μmol/L inavolisib or 1-μmol/L alpelisib for different durations. Representative results from experiments ( n = 2). J, Ratio of inavolisib and alpelisib GR 50 values in FGFR2-high ( n = 12) vs. FGFR2-low ( n = 9) expressing cell lines harboring PIK3CA mutations, as assessed in a 5-day viability assay. Data are represented as median (center line) ± IQR (25th to 75th percentile, box) and ± full range (minimum to maximum, whiskers). P value was calculated using Wilcoxon rank-sum test. Representative results from experiments ( n = 2). WB, Western blotting.

    Article Snippet: Antibodies to p110α (cat. No. 4249, RRID: AB_2165248), pAKT Ser473 (cat. No. 4060, RRID: AB_2315049), pS6 S235/236 (cat. No. 2211, RRID: AB_331679), HER3 (cat. No. 12708, RRID: AB_2721919), HER2 (cat. No. 2242, RRID: AB_331015), pHER2 Y1221/Y1222 (cat. No. 2243, RRID: AB_490899), pHER3 Y128 (cat. No. 4791, RRID: AB_2099709), pHER3 Y1328 (cat. No. 14525, RRID: AB_2798501), pPLCγ Y783 (cat. No. 14008, RRID: AB_2728690), pERK T202/T204 (cat. No. 9101, RRID: AB_331646), p4EBP T37/46 (cat. No. 9459, RRID: AB_330985), FGFR1 (cat. No. 9740, RRID: AB_11178519), FGFR2 (cat. No. 11835, RRID: AB_2797742), FGFR3 (cat. No. 4574, RRID: AB_2246903), FGFR4 (cat. No. 8562, RRID: AB_10891199), pFGFR Y653/654 (cat. No. 3476, RRID: AB_331369), and pFRS2A Y196 (cat. No. 3864, RRID: AB_2106222) were obtained from Cell Signaling Technology.

    Techniques: Expressing, Western Blot, Immunoprecipitation, Inhibition, Activity Assay, Membrane, Co-Immunoprecipitation Assay, Mutagenesis, Viability Assay