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p stat2  (Cell Signaling Technology Inc)


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    Structured Review

    Cell Signaling Technology Inc p stat2
    P Stat2, supplied by Cell Signaling Technology Inc, used in various techniques. Bioz Stars score: 96/100, based on 186 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/rabbit+anti+p+stat2/Phospho-Stat2+(Tyr690)+Rabbit+mAb/pmc13039202-279-60-80
    Average 96 stars, based on 186 article reviews
    p stat2 - by Bioz Stars, 2026-09
    96/100 stars

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    Article Title: A human cytomegalovirus antagonist of type I IFN-dependent signal transducer and activator of transcription signaling
    Article Snippet: The following primary antibodies were used in this study: mouse anti-CMV IE1 (1B12) ( 36 ), mouse or rabbit anti-IRF9 (ISGF3γ, BD Transduction Laboratories, and H-143, Santa Cruz Biotechnology, respectively), mouse anti-STAT1α p91 (C-111; Santa Cruz Biotechnology), rabbit anti-STAT1 p84/p91 (E-23; Santa Cruz Biotechnology), rabbit anti-p-STAT1 (9171; Cell Signaling Technology), rabbit anti-STAT2 (H-190 and/or N-17; Santa Cruz Biotechnology), rabbit anti-p-STAT2 (07-224; Upstate Biotechnology), and rabbit anti-α-tubulin (H-300; Santa Cruz Biotechnology).

    Article Title: Calcitonin gene-related peptide as a regulator of neuronal CaMKII-CREB, microglial p38-NFκB and astroglial ERK-Stat1/3 cascades mediating the development of tolerance to morphine-induced analgesia.
    Article Snippet: 0304-3959/$36.00 Crown Copyright 2010 Publishe doi:10.1016/j.pain.2010.07.006 * Corresponding author.. Address: Douglas Mental 6875 Boulevard LaSalle, McGill University, Montreal, Q +1 514 761 6131x2934; fax: +1 514 762 3034.. E-mail addresses: remi.quirion@douglas.mcgill.ca, Quirion).

    Article Title: Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) Membrane (M) and Spike (S) Proteins Antagonize Host Type I Interferon Response
    Article Snippet: The following antibodies were used: rabbit anti-DYKDDDDK tag (ABclonal, Cat # AE005), rabbit anti-HA (CST, Cat # 3724S), rabbit anti-IRF3 (ABclonal, Cat # D199862-0100), rabbit anti-p-IRF3 (CST, Cat # 4947S), rabbit anti-TBK1 (4A Biotech co.Ltd, Cat# 4ab032308cs), rabbit anti-p-TBK1 (Absin, Cat # abs140019), rabbit anti-KPNA6 (ImmunoWay, Cat # YN3049), rabbit anti-STAT2 (CST, Cat # 72604S), rabbit anti-p-STAT2 (CST, Cat # 88410S), rabbit anti-p-STAT1 (CST, Cat # 9167S), rabbit anti-p-TYK2 (Absin, Cat # abs131318), rabbit anti-TYK2 (Absin, Cat # abs131318a), rabbit anti-Myc (Proteintech, Cat # I6286-I-AP), anti-rabbit IgG HRP-linked antibody (CST, Cat # 7074), mouse anti-DYKDDDDK tag (Bioworld, Cat # AP0007), mouse anti-GAPDH (Proteintech, Cat # 60004-I-Ig), mouse anti-VSV-G (Abgent, Cat # AP1016a) and HRP goat anti-mouse IgG (BioLegend, Cat # 405306).

    Article Title: Human bocavirus NP1 antagonizes host type I interferon response through repressing the nuclear transport of STAT1
    Article Snippet: The following antibodies were used: rabbit anti-DYKDDDDK (AE063, ABclonal), mouse anti-DYKDDDDK (AE005, ABclonal), rabbit anti-HA (3724S, CST), rabbit anti-Myc (16286–1-AP, Proteintech), rabbit anti-ISG15 (A1182, ABclonal), rabbit anti-IFIT1 (23247–1-AP, Proteintech), rabbit anti-CIG5 (A8271, ABclonal), rabbit anti-JAK1 (3332S, CST), rabbit anti-p-JAK1 (abs130626, Absin), rabbit anti-Tyk2 (abs131318a, Absin), rabbit anti-p-Tyk2 (abs139831, Absin), rabbit anti-STAT1 (A12075, ABclonal), rabbit anti-p-STAT1 (9167S, CST), rabbit anti-STAT2 (4595S, CST), rabbit anti-p-STAT2 (88410S, CST), rabbit anti-IRF9 (DF8179, Affinity), mouse anti-GAPDH (M20006S, Abmart), rabbit anti-LMNB1 (12987–1-AP, Proteintech), rabbit anti-VSV-G (M1510-10, HUABIO), rabbit anti-KPNA1 (ab307438, Abcam), mouse anti-RSV (ab94805, Abcam), rabbit anti-H1N1 (11684-R107, Sino Biological), HRP goat anti-mouse IgG (BS12478, Bioworld), HRP goat anti-rabbit IgG (BS13278, Bioworld), Alexa Fluor 488 goat anti-mouse IgG (5230–0391, SeraCare), Alexa Fluor 647 goat anti-rabbit IgG (ab150083, Abcam), mouse anti-GST (300195, ZENBIO), mouse anti-tubulin (66031–1-Ig, Proteintech).



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    Cell Signaling Technology Inc p stat1 y701 9167 stat2
    Identification of physalin F as an inhibitor of SeV-induced innate immune signaling. ( A ) Compounds of a natural small molecule library ( n = 903) were sub-pooled into 4 compounds/sub-pool. HEK293T cells (5 × 10 4 ) stably transduced with an ISRE luciferase reporter were treated with each of the sub-pools (5 μM for each compound) for 0.5 h, followed by infection with SeV for 8 h before luciferase assays (left dot plot, the dashed line indicates inhibition of SeV-induced ISRE activation by 50%). Forty-eight individual compounds from the 12 positive sub-pools (inhibition rate > 50%) were then tested for their effects on SeV-induced ISRE activation by reporter assays (middle dot plots, the dashed line indicates inhibition of SeV-induced ISRE activation by >98%). The arrows indicate the workflow. The candidate compound physalin F was further tested for its dose-dependent effects on SeV-induced ISRE activation by reporter assay. The IC 50 value was calculated from the dose–response curve. IC 50 = 1.0 μM, (95% CI: 0.8 to 1.1 μM). ( B ) Effects of physalin F on transcription of downstream genes induced by SeV in HEK293T and THP1 cells. HEK293T or THP 1 cells (1 × 10 6 ) were treated with physalin F (0, 2.5, 5 μM) for 0.5 h and then infected with SeV for the indicated times before RT-qPCR analysis of mRNA levels of the indicated effector genes. GAPDH mRNA level was used as the internal control. ( C ) Effects of physalin F treatment on SeV-induced phosphorylation of TBK1, IRF3, <t>STAT1,</t> and <t>STAT2.</t> HEK293T or THP1 cells (1 × 10 6 ) were treated with the indicated concentrations of physalin F for 0.5 h and then infected with SeV for the indicated times. Immunoblotting analysis was performed with the indicated antibodies. The relative band intensities, which are normalized to the corresponding β-actin bands, are quantitated by densitometry analysis using ImageJ (1.53c) software and shown under the blots. Original Western blot images can be found in . ( D ) Effects of physalin F on IFN-γ induced transcription of the IRF1 gene in HEK293T cells. HEK293T cells (1 × 10 6 ) were treated with physalin F (0, 5 μM) for 0.5 h and then with IFN-γ for 6 h before RT-qPCR analysis of mRNA levels of the indicated antiviral genes. GAPDH mRNA level was used as the internal control. ( E ) Effects of physalin F on IFN-γ induced phosphorylation of STAT1. HEK293T (1 × 10 6 ) were treated with physalin F (0, 2.5, 5 μM) for 0.5 h and then with IFN-γ for 6 h. Immunoblotting analysis was performed with the indicated antibodies. Original Western blot images can be found in . Data shown in ( A ) (dose experiment), ( B , D ) are mean ± SD; n = 3 technical replicates. ns, not significant, * p < 0.05; ** p < 0.01. Experiments in ( B – E ) were repeated at least two times with similar results.
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    Identification of physalin F as an inhibitor of SeV-induced innate immune signaling. ( A ) Compounds of a natural small molecule library ( n = 903) were sub-pooled into 4 compounds/sub-pool. HEK293T cells (5 × 10 4 ) stably transduced with an ISRE luciferase reporter were treated with each of the sub-pools (5 μM for each compound) for 0.5 h, followed by infection with SeV for 8 h before luciferase assays (left dot plot, the dashed line indicates inhibition of SeV-induced ISRE activation by 50%). Forty-eight individual compounds from the 12 positive sub-pools (inhibition rate > 50%) were then tested for their effects on SeV-induced ISRE activation by reporter assays (middle dot plots, the dashed line indicates inhibition of SeV-induced ISRE activation by >98%). The arrows indicate the workflow. The candidate compound physalin F was further tested for its dose-dependent effects on SeV-induced ISRE activation by reporter assay. The IC 50 value was calculated from the dose–response curve. IC 50 = 1.0 μM, (95% CI: 0.8 to 1.1 μM). ( B ) Effects of physalin F on transcription of downstream genes induced by SeV in HEK293T and THP1 cells. HEK293T or THP 1 cells (1 × 10 6 ) were treated with physalin F (0, 2.5, 5 μM) for 0.5 h and then infected with SeV for the indicated times before RT-qPCR analysis of mRNA levels of the indicated effector genes. GAPDH mRNA level was used as the internal control. ( C ) Effects of physalin F treatment on SeV-induced phosphorylation of TBK1, IRF3, STAT1, and STAT2. HEK293T or THP1 cells (1 × 10 6 ) were treated with the indicated concentrations of physalin F for 0.5 h and then infected with SeV for the indicated times. Immunoblotting analysis was performed with the indicated antibodies. The relative band intensities, which are normalized to the corresponding β-actin bands, are quantitated by densitometry analysis using ImageJ (1.53c) software and shown under the blots. Original Western blot images can be found in . ( D ) Effects of physalin F on IFN-γ induced transcription of the IRF1 gene in HEK293T cells. HEK293T cells (1 × 10 6 ) were treated with physalin F (0, 5 μM) for 0.5 h and then with IFN-γ for 6 h before RT-qPCR analysis of mRNA levels of the indicated antiviral genes. GAPDH mRNA level was used as the internal control. ( E ) Effects of physalin F on IFN-γ induced phosphorylation of STAT1. HEK293T (1 × 10 6 ) were treated with physalin F (0, 2.5, 5 μM) for 0.5 h and then with IFN-γ for 6 h. Immunoblotting analysis was performed with the indicated antibodies. Original Western blot images can be found in . Data shown in ( A ) (dose experiment), ( B , D ) are mean ± SD; n = 3 technical replicates. ns, not significant, * p < 0.05; ** p < 0.01. Experiments in ( B – E ) were repeated at least two times with similar results.

    Journal: Pathogens

    Article Title: Physalin F Promotes AFG3L2-Mediated Degradation of VISA/MAVS to Suppress Innate Immune Response to RNA Virus

    doi: 10.3390/pathogens15010074

    Figure Lengend Snippet: Identification of physalin F as an inhibitor of SeV-induced innate immune signaling. ( A ) Compounds of a natural small molecule library ( n = 903) were sub-pooled into 4 compounds/sub-pool. HEK293T cells (5 × 10 4 ) stably transduced with an ISRE luciferase reporter were treated with each of the sub-pools (5 μM for each compound) for 0.5 h, followed by infection with SeV for 8 h before luciferase assays (left dot plot, the dashed line indicates inhibition of SeV-induced ISRE activation by 50%). Forty-eight individual compounds from the 12 positive sub-pools (inhibition rate > 50%) were then tested for their effects on SeV-induced ISRE activation by reporter assays (middle dot plots, the dashed line indicates inhibition of SeV-induced ISRE activation by >98%). The arrows indicate the workflow. The candidate compound physalin F was further tested for its dose-dependent effects on SeV-induced ISRE activation by reporter assay. The IC 50 value was calculated from the dose–response curve. IC 50 = 1.0 μM, (95% CI: 0.8 to 1.1 μM). ( B ) Effects of physalin F on transcription of downstream genes induced by SeV in HEK293T and THP1 cells. HEK293T or THP 1 cells (1 × 10 6 ) were treated with physalin F (0, 2.5, 5 μM) for 0.5 h and then infected with SeV for the indicated times before RT-qPCR analysis of mRNA levels of the indicated effector genes. GAPDH mRNA level was used as the internal control. ( C ) Effects of physalin F treatment on SeV-induced phosphorylation of TBK1, IRF3, STAT1, and STAT2. HEK293T or THP1 cells (1 × 10 6 ) were treated with the indicated concentrations of physalin F for 0.5 h and then infected with SeV for the indicated times. Immunoblotting analysis was performed with the indicated antibodies. The relative band intensities, which are normalized to the corresponding β-actin bands, are quantitated by densitometry analysis using ImageJ (1.53c) software and shown under the blots. Original Western blot images can be found in . ( D ) Effects of physalin F on IFN-γ induced transcription of the IRF1 gene in HEK293T cells. HEK293T cells (1 × 10 6 ) were treated with physalin F (0, 5 μM) for 0.5 h and then with IFN-γ for 6 h before RT-qPCR analysis of mRNA levels of the indicated antiviral genes. GAPDH mRNA level was used as the internal control. ( E ) Effects of physalin F on IFN-γ induced phosphorylation of STAT1. HEK293T (1 × 10 6 ) were treated with physalin F (0, 2.5, 5 μM) for 0.5 h and then with IFN-γ for 6 h. Immunoblotting analysis was performed with the indicated antibodies. Original Western blot images can be found in . Data shown in ( A ) (dose experiment), ( B , D ) are mean ± SD; n = 3 technical replicates. ns, not significant, * p < 0.05; ** p < 0.01. Experiments in ( B – E ) were repeated at least two times with similar results.

    Article Snippet: Physalin F (TargetMol, Wellesley Hills, MA, USA, T8716); Dual-Specific Luciferase Assay Kit (Promega, Madison, WI, USA, E2490); puromycin (Thermo Fisher Scientific, Waltham, MA, USA); M-MLV reverse transcriptase (Invitrogen, Carlsbad, CA, USA, 28025-013); SYBR (Bio-Rad laboratories, Hercules, CA, USA); RiboLock RNase inhibitor, pyrophosphatase (Thermo Fisher Scientific, Waltham, MA, USA); protease inhibitor cocktail (Roche, Basel, Switzerland); polybrene (Millipore, Burlington, MA, USA); ClarityTM Western ECL Substrate (Bio-Rad, Hercules, CA, USA); ELISA kits for murine IFN-β (PBL Assay Science, Piscataway, NJ, USA, 42400), murine IL-6 (BioLegend, San Diego, CA, USA, 431304); mouse antibodies against HA (OriGene, Rockville, MD, USA, TA180128) and FLAG (Sigma-Aldrich, Burlington, MA, USA, F3165); mouse antibodies against β-Tubulin (ABclonal, Woburn, MA, USA, A12289); rabbit antibodies against FLAG (14793), Rig-I (3743), β-actin (5125), p-IRF3 S396 (4947), STAT1 (14994), p-STAT1 Y701 (9167) STAT2 (72604), and p-STAT2 Y690 (88410) (Cell Signaling Technology, Danvers, MA, USA); rabbit antibodies against TBK1 (ab40676), p-TBK1 S172 (ab109272), and p-IRF3 S386 (ab76493) (Abcam, Cambridge, UK); rabbit antibodies against AFG3L2 (14631-1-AP), TOM40 (18409-1-AP), TOM70 (14528-1-AP) (Proteintech, Rosemont, IL, USA), VISA (Bethyl Laboratories, Montgomery, TX, USA, A300-782A), and GFP (GeneTex, Irvine, CA, USA, GTX113617); and HRP-conjugated anti-FLAG monoclonal antibody (Sigma-Aldrich, A8592) were purchased from the indicated companies.

    Techniques: Stable Transfection, Transduction, Luciferase, Infection, Inhibition, Activation Assay, Reporter Assay, Quantitative RT-PCR, Control, Phospho-proteomics, Western Blot, Software