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santa cruz biotechnology sc 335x  (Santa Cruz Biotechnology)


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    Structured Review

    Santa Cruz Biotechnology santa cruz biotechnology sc 335x
    Santa Cruz Biotechnology Sc 335x, supplied by Santa Cruz Biotechnology, used in various techniques. Bioz Stars score: 95/100, based on 525 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/anti+srf+antibody/SRF+Antibody/pmc12977192-109-38-38
    Average 95 stars, based on 525 article reviews
    santa cruz biotechnology sc 335x - by Bioz Stars, 2026-09
    95/100 stars

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    Related Articles

    Incubation:

    Article Title: Serum response factor promotes axon regeneration following spinal cord transection injury
    Article Snippet: Endogenous peroxidase was inhibited by 3% hydrogen peroxide and 5% goat serum (Beyotime Biotechnology, Nanjiang, China, Cat# C0265) was used to block non-specific antigens. .. Then, anti-SRF antibody (mouse, 1:100, Santa Cruz Biotechnology, Santa Cruz, CA, Cat# sc-25290, RRID: AB_2239787) was added and the tissue slices were incubated at 4°C overnight. .. Subsequently, the sections were rinsed with phosphate buffered saline three times, and then secondary antibody labeled with horseradish peroxidase (goat anti-mouse IgG, 1:1000, Abcam, Cambridge, UK, Cat# ab205719, RRID:AB_2755049) was added to the sections for 30 minutes at 37°C.

    Article Title: Sall1 and Sall4 cooperatively interact with Myocd and SRF to promote cardiomyocyte proliferation by regulating CDK and cyclin genes.
    Article Snippet: Sall1 and Sall4 (Sall1/4), zinc-finger transcription factors, are expressed in the progenitors of the second heart field (SHF) and in cardiomyocytes during the early stages of mouse development.. To understand the function of Sall1/4 in heart development, we generated heart-specific Sall1/4 functionally inhibited mice by forced expression of the truncated form of Sall4 (ΔSall4) in the heart.. The ΔSall4-overexpression mice exhibited a hypoplastic right ventricle and outflow tract, both of which were derived from the SHF, and a thinner ventricular wall.

    Article Title: Guanidinoacetic acid supplementation improves intestinal morphology, mucosal barrier function of broilers subjected to chronic heat stress.
    Article Snippet: Studies have shown that serum response factor is beneficial for axonal regeneration of peripheral nerves.. However, its role after central nervous system injury remains unclear.. In this study, we established a rat model of T9–T10 spinal cord transection injury.

    Immunoprecipitation:

    Article Title: SRF and CBP jointly regulate integrin β6 overexpression in head and neck squamous cell carcinomas.
    Article Snippet: Overexpression of integrin β6 (ITGB6) is crucially linked to the invasion and metastasis of head and neck squamous cell carcinoma (HNSCC).. The molecular mechanisms driving ITGB6 upregulation in HNSCC are not well understood.. Our study comprehensively analyzed the transcriptional regulation and epigenetic modification mechanisms affecting ITGB6 transcription.

    Control:

    Article Title: SRF and CBP jointly regulate integrin β6 overexpression in head and neck squamous cell carcinomas.
    Article Snippet: Overexpression of integrin β6 (ITGB6) is crucially linked to the invasion and metastasis of head and neck squamous cell carcinoma (HNSCC).. The molecular mechanisms driving ITGB6 upregulation in HNSCC are not well understood.. Our study comprehensively analyzed the transcriptional regulation and epigenetic modification mechanisms affecting ITGB6 transcription.

    Magnetic Beads:

    Article Title: SRF and CBP jointly regulate integrin β6 overexpression in head and neck squamous cell carcinomas.
    Article Snippet: Overexpression of integrin β6 (ITGB6) is crucially linked to the invasion and metastasis of head and neck squamous cell carcinoma (HNSCC).. The molecular mechanisms driving ITGB6 upregulation in HNSCC are not well understood.. Our study comprehensively analyzed the transcriptional regulation and epigenetic modification mechanisms affecting ITGB6 transcription.

    other:

    Article Title: Serum response factor targets Cyr61 to facilitate chronic progression after ischemic acute kidney injury through renal tubular epithelial–myofibroblast transdifferentiation
    Article Snippet: Anti-β-actin (1:1000, BS1002) and anti-pSRF (1:1000, BS4177) antibodies were obtained from Bioworld Technology (Louis Park, MN, USA); anti-SRF antibody (1:500, sc-335) were obtained from Santa Cruz (Santa Cruz, CA, USA); and anti-collagen-3 antibody (1:1000, ab184993), anti-E-cadherin (1:1000, ab76055), anti-Cyr61 (1:1000,ab230947), anti-α-smooth muscle actin (α-SMA) (1:1000, ab5694) and anti-vimentin (1:1000, ab92547) antibodies were obtained from Abcam (Cambridge, MA, USA).

    Article Title: Serum response factor targets Cyr61 to facilitate chronic progression after ischemic acute kidney injury through renal tubular epithelial-myofibroblast transdifferentiation.
    Article Snippet: Anti-β-actin (1:1000, BS1002) and anti-pSRF (1:1000, BS4177) antibodies were obtained from Bioworld Technology (Louis Park, MN, USA); anti-SRF antibody (1:500, sc-335) were obtained from Santa Cruz (Santa Cruz, CA, USA); and anticollagen-3 antibody (1:1000, ab184993), anti-E-cadherin (1:1000, ab76055), anti-Cyr61 (1:1000,ab230947), anti-α-smooth muscle actin (α-SMA) (1:1000, ab5694) and anti-vimentin (1:1000, ab92547) antibodies were obtained from Abcam (Cambridge, MA, USA).

    Negative Control:

    Article Title: The BHLHE40‒PPM1F‒AMPK pathway regulates energy metabolism and is associated with the aggressiveness of endometrial cancer.
    Article Snippet: The presence of FLAG-BHLHE40 in the binding complex was confirmed through the formation of supershift bands with anti-FLAG antibody (Sigma–Aldrich). .. An anti-SRF antibody (Santa Cruz Biotechnology) was used as a negative control. ..

    Article Title: The BHLHE40‒PPM1F‒AMPK pathway regulates energy metabolism and is associated with the aggressiveness of endometrial cancer
    Article Snippet: The presence of FLAG-BHLHE40 in the binding complex was confirmed through the formation of supershift bands with anti-FLAG antibody (Sigma–Aldrich). .. An anti-SRF antibody (Santa Cruz Biotechnology) was used as a negative control. ..

    Blocking Assay:

    Article Title: Sall1 and Sall4 cooperatively interact with Myocd and SRF to promote cardiomyocyte proliferation by regulating CDK and cyclin genes.
    Article Snippet: Sall1 and Sall4 (Sall1/4), zinc-finger transcription factors, are expressed in the progenitors of the second heart field (SHF) and in cardiomyocytes during the early stages of mouse development.. To understand the function of Sall1/4 in heart development, we generated heart-specific Sall1/4 functionally inhibited mice by forced expression of the truncated form of Sall4 (ΔSall4) in the heart.. The ΔSall4-overexpression mice exhibited a hypoplastic right ventricle and outflow tract, both of which were derived from the SHF, and a thinner ventricular wall.



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    Image Search Results


    Contractile Gene Expression Is Downregulated in Chol-Loaded hVSMCs (A, B) Human vascular smooth muscle cells (hVSMCs) were treated with cholesterol (Chol) (5 μg/mL) or 0.2% bovine serum albumin (control [CT]) for 24 hours and 48 hours and gene expression of Acta2 , Tagln , Cnn1, Myocd, and Srf were determined by quantitative polymerase chain reaction. (C) hVSMCs were treated with Chol (5 μg/mL) or 0.2% bovine serum albumin (CT) for 24 hours and protein expression of α–smooth muscle actin (α-SMA) and CNN1 were determined by Western blotting (representative blots shown). Densitometry showing the (D) α-SMA and (E) CNN1 band intensities normalized to GAPDH. For data analysis, unpaired Student’s t -testing was performed for comparing the means of 2 groups. For 2 or more independent groups, 1-way analysis of variance followed by Dunnett post hoc test was performed. A P value of ≤0.05 was considered significant. Data are presented as the mean ± SEM of 3 independent experiments, and P values are as indicated (∗ P < 0.05, ∗∗ P < 0.01, ∗∗∗∗ P < 0.0001).

    Journal: JACC: Basic to Translational Science

    Article Title: HDL Regulates TGFβ-Receptor Lipid Raft Partitioning, Restoring Contractile Features of Cholesterol-Loaded Vascular Smooth Muscle Cells

    doi: 10.1016/j.jacbts.2025.101461

    Figure Lengend Snippet: Contractile Gene Expression Is Downregulated in Chol-Loaded hVSMCs (A, B) Human vascular smooth muscle cells (hVSMCs) were treated with cholesterol (Chol) (5 μg/mL) or 0.2% bovine serum albumin (control [CT]) for 24 hours and 48 hours and gene expression of Acta2 , Tagln , Cnn1, Myocd, and Srf were determined by quantitative polymerase chain reaction. (C) hVSMCs were treated with Chol (5 μg/mL) or 0.2% bovine serum albumin (CT) for 24 hours and protein expression of α–smooth muscle actin (α-SMA) and CNN1 were determined by Western blotting (representative blots shown). Densitometry showing the (D) α-SMA and (E) CNN1 band intensities normalized to GAPDH. For data analysis, unpaired Student’s t -testing was performed for comparing the means of 2 groups. For 2 or more independent groups, 1-way analysis of variance followed by Dunnett post hoc test was performed. A P value of ≤0.05 was considered significant. Data are presented as the mean ± SEM of 3 independent experiments, and P values are as indicated (∗ P < 0.05, ∗∗ P < 0.01, ∗∗∗∗ P < 0.0001).

    Article Snippet: The primary antibodies used were as follows: ACTA2 (#A2547, Sigma); CNN1 (#M3556, DAKO); SRF (#5147, Cell Signaling); p38MAPK (#sc-535, Santa Cruz Biotechnology); SMAD2/3 (#8685, Cell Signaling); TUBA (#T-5168, Sigma); and SMAD2 (#3103, Cell Signaling), phospho-SMAD2 (#3101S, Cell Signaling), phospho-p38MAPK (#9211S, Cell Signaling), SMAD4 (#9515, Cell Signaling); CD68 (#MCA1815, AbD Serotec, Bio-Rad); KLF4 (#12173, Cell Signaling); PU.1 (#sc-352, Santa Cruz Biotechnology); TGFβR1 (#3712, Cell Signaling); TGFβR2 (#sc-400, Santa Cruz Biotechnology); Caveolin (#610059, BD Transduction Laboratories); CD71 (#13113, Cell Signaling); GAPDH (#AM4300, Ambion).

    Techniques: Gene Expression, Control, Real-time Polymerase Chain Reaction, Expressing, Western Blot

    Chol-Loading Downregulates TGFβ Signaling in hVSMC hVSMCs were treated with Chol (5 μg/mL) or 0.2% bovine serum albumin (CT; ie, 0 μg/mL cholesterol) for 24 hours in the presence or absence of TGFβ1 ligand (10 pg/mL). Total RNA was isolated and quantitative polymerase chain reaction (qPCR) was performed to determine the pri-Mir143/145 precursor transcripts (A,B) or SMC markers, Acta2 and Tagln (C,D). hVSMCs were treated as in A and B, but either in the presence or absence of TGFβ1 10 pg/mL) and/or nonscrambled (NS) or Mir145 mimic (60 nmol/L). qPCR was performed to determine expression of Acta2 (E) and (F) Srf mRNA. (G) hVSMCs were treated as in A and B, but either in the presence or in absence of TGFβ1 (10 pg/mL) and/or Mir145 inhibitor (60 nmol/L). qPCR was performed to determine expression of Acta2. (H) Immunofluorescence images of total SMAD2/3 (green) in hVSMCs after 24 hours of the indicated treatments. Cytoplasm was stained with phalloidin (red). Nuclei were determined as phalloidin negative area (bar = 50 μm). (I) hVSMCs were treated as in A and B, but with varying amounts of Chol and in the presence or absence of recombinant TGFβ1 (10 pg/mL) for 24 hours. Proteins were extracted for Western blotting to detect phosphorylated (p) SMAD2/3, and α-SMA. Total SMAD2/3 or GAPDH was used as loading CT proteins. Blots are representative of at least 3 independent experiments, and the replicates were quantified by densitometry. For data comparisons of 2 or more independent groups, 1-way or 2-way analysis of variance followed by Dunnett post hoc test was performed. Data are presented as the mean ± SEM of 3 independent experiments, and P values are as indicated (∗ P < 0.05, ∗∗ P < 0.01, ∗∗∗ P < 0.001, ∗∗∗∗ P < 0.0001). ns = not significant; other abbreviations as in .

    Journal: JACC: Basic to Translational Science

    Article Title: HDL Regulates TGFβ-Receptor Lipid Raft Partitioning, Restoring Contractile Features of Cholesterol-Loaded Vascular Smooth Muscle Cells

    doi: 10.1016/j.jacbts.2025.101461

    Figure Lengend Snippet: Chol-Loading Downregulates TGFβ Signaling in hVSMC hVSMCs were treated with Chol (5 μg/mL) or 0.2% bovine serum albumin (CT; ie, 0 μg/mL cholesterol) for 24 hours in the presence or absence of TGFβ1 ligand (10 pg/mL). Total RNA was isolated and quantitative polymerase chain reaction (qPCR) was performed to determine the pri-Mir143/145 precursor transcripts (A,B) or SMC markers, Acta2 and Tagln (C,D). hVSMCs were treated as in A and B, but either in the presence or absence of TGFβ1 10 pg/mL) and/or nonscrambled (NS) or Mir145 mimic (60 nmol/L). qPCR was performed to determine expression of Acta2 (E) and (F) Srf mRNA. (G) hVSMCs were treated as in A and B, but either in the presence or in absence of TGFβ1 (10 pg/mL) and/or Mir145 inhibitor (60 nmol/L). qPCR was performed to determine expression of Acta2. (H) Immunofluorescence images of total SMAD2/3 (green) in hVSMCs after 24 hours of the indicated treatments. Cytoplasm was stained with phalloidin (red). Nuclei were determined as phalloidin negative area (bar = 50 μm). (I) hVSMCs were treated as in A and B, but with varying amounts of Chol and in the presence or absence of recombinant TGFβ1 (10 pg/mL) for 24 hours. Proteins were extracted for Western blotting to detect phosphorylated (p) SMAD2/3, and α-SMA. Total SMAD2/3 or GAPDH was used as loading CT proteins. Blots are representative of at least 3 independent experiments, and the replicates were quantified by densitometry. For data comparisons of 2 or more independent groups, 1-way or 2-way analysis of variance followed by Dunnett post hoc test was performed. Data are presented as the mean ± SEM of 3 independent experiments, and P values are as indicated (∗ P < 0.05, ∗∗ P < 0.01, ∗∗∗ P < 0.001, ∗∗∗∗ P < 0.0001). ns = not significant; other abbreviations as in .

    Article Snippet: The primary antibodies used were as follows: ACTA2 (#A2547, Sigma); CNN1 (#M3556, DAKO); SRF (#5147, Cell Signaling); p38MAPK (#sc-535, Santa Cruz Biotechnology); SMAD2/3 (#8685, Cell Signaling); TUBA (#T-5168, Sigma); and SMAD2 (#3103, Cell Signaling), phospho-SMAD2 (#3101S, Cell Signaling), phospho-p38MAPK (#9211S, Cell Signaling), SMAD4 (#9515, Cell Signaling); CD68 (#MCA1815, AbD Serotec, Bio-Rad); KLF4 (#12173, Cell Signaling); PU.1 (#sc-352, Santa Cruz Biotechnology); TGFβR1 (#3712, Cell Signaling); TGFβR2 (#sc-400, Santa Cruz Biotechnology); Caveolin (#610059, BD Transduction Laboratories); CD71 (#13113, Cell Signaling); GAPDH (#AM4300, Ambion).

    Techniques: Isolation, Real-time Polymerase Chain Reaction, Expressing, Immunofluorescence, Staining, Recombinant, Western Blot