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rabbit polyclonal antibody against trf2 (cat. # h-300)  (Santa Cruz Biotechnology)


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    Structured Review

    Santa Cruz Biotechnology rabbit polyclonal antibody against trf2 (cat. # h-300)
    3XABA oligonucleotide blocks the interaction of Flag-tagged proteins with the M2 antibody. (a)-(b) The 3XABA oligo blocks the binding of <t>Flag-TRF2</t> ΔB to M2-coated beads. Magnetic beads coated with the M2 antibody were incubated in the absence (No Comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). In vitro translated [ 35 S]-labeled Flag-TRF2 ΔB was then added and the amount captured by the beads was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (a). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein captured was counted by scintillation (b). The amount of [ 35 S]-labeled protein captured in the absence of competitor (No Comp) was arbitrarily set to 100%. In both experiments, beads coated with normal mouse IgG were included as negative control for the capture (IgG). Data represent the mean ± S.D. ( n = 3). (c)-(d) The 3XABA oligo elutes the Flag-TRF2 ΔB proteins already bound to M2-coated beads. The [ 35 S]-Flag-TRF2 ΔB protein was first captured by magnetic beads coated with the M2 antibody. The beads were then incubated in the absence (No comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). The amount of [ 35 S]-Flag-TRF2 ΔB released was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (c). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein released was counted by scintillation (d). The amount of [ 35 S]-labeled protein released by the boiling (total) was arbitrarily set to 100%. In both experiments, beads boiled to release to all of the captured [ 35 S]-labeled protein were included as positive control for the elution (Total). Data represent the mean ± S.D. ( n = 3).
    Rabbit Polyclonal Antibody Against Trf2 (Cat. # H 300), supplied by Santa Cruz Biotechnology, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/rabbit+polyclonal+antibodies+against+trf2/anti+trf2/pmc03195435-41-26-18
    Average 90 stars, based on 1 article reviews
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    Images

    1) Product Images from "A ssDNA Aptamer That Blocks the Function of the Anti-FLAG M2 Antibody"

    Article Title: A ssDNA Aptamer That Blocks the Function of the Anti-FLAG M2 Antibody

    Journal: Journal of Nucleic Acids

    doi: 10.4061/2011/720798

    3XABA oligonucleotide blocks the interaction of Flag-tagged proteins with the M2 antibody. (a)-(b) The 3XABA oligo blocks the binding of Flag-TRF2 ΔB to M2-coated beads. Magnetic beads coated with the M2 antibody were incubated in the absence (No Comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). In vitro translated [ 35 S]-labeled Flag-TRF2 ΔB was then added and the amount captured by the beads was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (a). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein captured was counted by scintillation (b). The amount of [ 35 S]-labeled protein captured in the absence of competitor (No Comp) was arbitrarily set to 100%. In both experiments, beads coated with normal mouse IgG were included as negative control for the capture (IgG). Data represent the mean ± S.D. ( n = 3). (c)-(d) The 3XABA oligo elutes the Flag-TRF2 ΔB proteins already bound to M2-coated beads. The [ 35 S]-Flag-TRF2 ΔB protein was first captured by magnetic beads coated with the M2 antibody. The beads were then incubated in the absence (No comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). The amount of [ 35 S]-Flag-TRF2 ΔB released was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (c). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein released was counted by scintillation (d). The amount of [ 35 S]-labeled protein released by the boiling (total) was arbitrarily set to 100%. In both experiments, beads boiled to release to all of the captured [ 35 S]-labeled protein were included as positive control for the elution (Total). Data represent the mean ± S.D. ( n = 3).
    Figure Legend Snippet: 3XABA oligonucleotide blocks the interaction of Flag-tagged proteins with the M2 antibody. (a)-(b) The 3XABA oligo blocks the binding of Flag-TRF2 ΔB to M2-coated beads. Magnetic beads coated with the M2 antibody were incubated in the absence (No Comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). In vitro translated [ 35 S]-labeled Flag-TRF2 ΔB was then added and the amount captured by the beads was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (a). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein captured was counted by scintillation (b). The amount of [ 35 S]-labeled protein captured in the absence of competitor (No Comp) was arbitrarily set to 100%. In both experiments, beads coated with normal mouse IgG were included as negative control for the capture (IgG). Data represent the mean ± S.D. ( n = 3). (c)-(d) The 3XABA oligo elutes the Flag-TRF2 ΔB proteins already bound to M2-coated beads. The [ 35 S]-Flag-TRF2 ΔB protein was first captured by magnetic beads coated with the M2 antibody. The beads were then incubated in the absence (No comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). The amount of [ 35 S]-Flag-TRF2 ΔB released was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (c). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein released was counted by scintillation (d). The amount of [ 35 S]-labeled protein released by the boiling (total) was arbitrarily set to 100%. In both experiments, beads boiled to release to all of the captured [ 35 S]-labeled protein were included as positive control for the elution (Total). Data represent the mean ± S.D. ( n = 3).

    Techniques Used: Binding Assay, Magnetic Beads, Incubation, In Vitro, Labeling, SDS Page, Electrophoresis, Negative Control, Positive Control

    Related Articles

    other:

    Article Title: LMP1 mediates multinuclearity through downregulation of shelterin proteins and formation of telomeric aggregates
    Article Snippet: TRF2 was revealed by rabbit polyclonal antibodies against TRF2 (Santa Cruz Biotechnology) at a dilution of 1:100.

    Immunohistochemistry:

    Article Title: The 3D nuclear organization of telomeres marks the transition from Hodgkin to Reed-Sternberg cells.
    Article Snippet: .. Fluorescent immunohistochemistry was performed, as described,19 by using rabbit polyclonal antibodies as primary antibodies against TRF1, TRF2 and g-H2AX (Santa Cruz Biotechnology, Santa Cruz, CA, USA), each at a dilution of 1:100. ..



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    3XABA oligonucleotide blocks the interaction of Flag-tagged proteins with the M2 antibody. (a)-(b) The 3XABA oligo blocks the binding of <t>Flag-TRF2</t> ΔB to M2-coated beads. Magnetic beads coated with the M2 antibody were incubated in the absence (No Comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). In vitro translated [ 35 S]-labeled Flag-TRF2 ΔB was then added and the amount captured by the beads was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (a). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein captured was counted by scintillation (b). The amount of [ 35 S]-labeled protein captured in the absence of competitor (No Comp) was arbitrarily set to 100%. In both experiments, beads coated with normal mouse IgG were included as negative control for the capture (IgG). Data represent the mean ± S.D. ( n = 3). (c)-(d) The 3XABA oligo elutes the Flag-TRF2 ΔB proteins already bound to M2-coated beads. The [ 35 S]-Flag-TRF2 ΔB protein was first captured by magnetic beads coated with the M2 antibody. The beads were then incubated in the absence (No comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). The amount of [ 35 S]-Flag-TRF2 ΔB released was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (c). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein released was counted by scintillation (d). The amount of [ 35 S]-labeled protein released by the boiling (total) was arbitrarily set to 100%. In both experiments, beads boiled to release to all of the captured [ 35 S]-labeled protein were included as positive control for the elution (Total). Data represent the mean ± S.D. ( n = 3).
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    Fig. 1. Cloning of the udTRF2 domain (linker region) of the telomere-binding protein <t>TRF2.</t> A. TRF2 domain structure. GAR–N-terminal glycine-arginine rich domain; TRFH– homodimerization domain; Myb–C-terminal DNA-binding Myb-domain. B. pET32a-udTRF2 vector map.
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    Fig. 1. Cloning of the udTRF2 domain (linker region) of the telomere-binding protein <t>TRF2.</t> A. TRF2 domain structure. GAR–N-terminal glycine-arginine rich domain; TRFH– homodimerization domain; Myb–C-terminal DNA-binding Myb-domain. B. pET32a-udTRF2 vector map.
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    Santa Cruz Biotechnology rabbit polyclonal antibody against trf2
    Figure 5 C3-cl6 cells have lost most markers of classical ALT. (a) C3-cl6 cells do not have APBs. VA13-C3 and C3-cl6 cells were stained for the PML protein (green) and the telomeric protein <t>TRF2</t> (red) and APBs were detected by the co-localization of the signals (merge). C3-cl6 cells were stained both at early (PD 32) and late (PD 200) PDs. (b) C3-cl6 cells do not have extra-chromosomal telomeric circles. The presence of telomeric circles was analysed by 2D-PFGE and hybridization with a telomeric probe. 25 mg of genomic DNA from GM847 and VA13-C3 cells and 35 mg of genomic DNA from C3-cl6 cells were used. GM847 cells were used as a positive control. The arrows indicate circular telomeric DNA. The hybridization signal in C3-cl6 cells is weaker than in parental and GM847 cells due to the presence of shorter telomeres
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    Image Search Results


    3XABA oligonucleotide blocks the interaction of Flag-tagged proteins with the M2 antibody. (a)-(b) The 3XABA oligo blocks the binding of Flag-TRF2 ΔB to M2-coated beads. Magnetic beads coated with the M2 antibody were incubated in the absence (No Comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). In vitro translated [ 35 S]-labeled Flag-TRF2 ΔB was then added and the amount captured by the beads was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (a). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein captured was counted by scintillation (b). The amount of [ 35 S]-labeled protein captured in the absence of competitor (No Comp) was arbitrarily set to 100%. In both experiments, beads coated with normal mouse IgG were included as negative control for the capture (IgG). Data represent the mean ± S.D. ( n = 3). (c)-(d) The 3XABA oligo elutes the Flag-TRF2 ΔB proteins already bound to M2-coated beads. The [ 35 S]-Flag-TRF2 ΔB protein was first captured by magnetic beads coated with the M2 antibody. The beads were then incubated in the absence (No comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). The amount of [ 35 S]-Flag-TRF2 ΔB released was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (c). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein released was counted by scintillation (d). The amount of [ 35 S]-labeled protein released by the boiling (total) was arbitrarily set to 100%. In both experiments, beads boiled to release to all of the captured [ 35 S]-labeled protein were included as positive control for the elution (Total). Data represent the mean ± S.D. ( n = 3).

    Journal: Journal of Nucleic Acids

    Article Title: A ssDNA Aptamer That Blocks the Function of the Anti-FLAG M2 Antibody

    doi: 10.4061/2011/720798

    Figure Lengend Snippet: 3XABA oligonucleotide blocks the interaction of Flag-tagged proteins with the M2 antibody. (a)-(b) The 3XABA oligo blocks the binding of Flag-TRF2 ΔB to M2-coated beads. Magnetic beads coated with the M2 antibody were incubated in the absence (No Comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). In vitro translated [ 35 S]-labeled Flag-TRF2 ΔB was then added and the amount captured by the beads was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (a). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein captured was counted by scintillation (b). The amount of [ 35 S]-labeled protein captured in the absence of competitor (No Comp) was arbitrarily set to 100%. In both experiments, beads coated with normal mouse IgG were included as negative control for the capture (IgG). Data represent the mean ± S.D. ( n = 3). (c)-(d) The 3XABA oligo elutes the Flag-TRF2 ΔB proteins already bound to M2-coated beads. The [ 35 S]-Flag-TRF2 ΔB protein was first captured by magnetic beads coated with the M2 antibody. The beads were then incubated in the absence (No comp) or presence of the indicated competitor (3XABA, 3XCTR, 3XFLAG). The amount of [ 35 S]-Flag-TRF2 ΔB released was determined by SDS-PAGE electrophoresis and exposure to a PhophorImager cassette (c). In a second experiment done in triplicate, the amount of [ 35 S]-labeled protein released was counted by scintillation (d). The amount of [ 35 S]-labeled protein released by the boiling (total) was arbitrarily set to 100%. In both experiments, beads boiled to release to all of the captured [ 35 S]-labeled protein were included as positive control for the elution (Total). Data represent the mean ± S.D. ( n = 3).

    Article Snippet: Normal mouse IgG (cat. # sc-2025) and anti-vimentin mouse monoclonal antibody (IgG 1 clone sc-6260) were obtained from Santa Cruz (Santa Cruz, CA), as was the rabbit polyclonal antibody against TRF2 (cat. # H-300).

    Techniques: Binding Assay, Magnetic Beads, Incubation, In Vitro, Labeling, SDS Page, Electrophoresis, Negative Control, Positive Control

    Fig. 1. Cloning of the udTRF2 domain (linker region) of the telomere-binding protein TRF2. A. TRF2 domain structure. GAR–N-terminal glycine-arginine rich domain; TRFH– homodimerization domain; Myb–C-terminal DNA-binding Myb-domain. B. pET32a-udTRF2 vector map.

    Journal: Electronic Journal of Biotechnology

    Article Title: Development and characterization of polyclonal antibodies against the linker region of the telomere-binding protein TRF2

    doi: 10.1016/j.ejbt.2017.12.001

    Figure Lengend Snippet: Fig. 1. Cloning of the udTRF2 domain (linker region) of the telomere-binding protein TRF2. A. TRF2 domain structure. GAR–N-terminal glycine-arginine rich domain; TRFH– homodimerization domain; Myb–C-terminal DNA-binding Myb-domain. B. pET32a-udTRF2 vector map.

    Article Snippet: Commercial rabbit polyclonal antibodies against TRF2 (ab4082, Abcam) were used as a control.

    Techniques: Cloning, Binding Assay, Plasmid Preparation

    Fig. 4. Western blotting (WB) analysis of the bacterial lysates and human skin fibroblast lysate with antibodies to TRF2 (Abcam) and anti-udTRF2. 1–protein ladder; 2,3–WB analysis of the lysates of control (uninduced) and induced bacteria with commercial antibodies to TRF2 (Abcam) (dilution 1:1000). The antibodies reveal a 25-kDa protein corresponding to udTRF2 in the induced bacteria lysate; 4–WB analysis of the control bacterial cell lysate with anti-udTRF2 antibodies (dilution 1:1000); 5,6,7–WB analysis of the induced bacterial cell lysate stained with anti-udTRF2 antibodies (dilutions 1:500, 1:1000, 1:2000). Anti-udTRF2 antiserum reveals two proteins with apparent molecular weights of 25 kDa (udTRF2) and 30 kDa in the induced bacterial culture lysate and one protein of 30 kDa in the control bacterial lysate; 8–Anti-udTRF2 antiserum reveals TRF2 in the human skin fibroblast lysate.

    Journal: Electronic Journal of Biotechnology

    Article Title: Development and characterization of polyclonal antibodies against the linker region of the telomere-binding protein TRF2

    doi: 10.1016/j.ejbt.2017.12.001

    Figure Lengend Snippet: Fig. 4. Western blotting (WB) analysis of the bacterial lysates and human skin fibroblast lysate with antibodies to TRF2 (Abcam) and anti-udTRF2. 1–protein ladder; 2,3–WB analysis of the lysates of control (uninduced) and induced bacteria with commercial antibodies to TRF2 (Abcam) (dilution 1:1000). The antibodies reveal a 25-kDa protein corresponding to udTRF2 in the induced bacteria lysate; 4–WB analysis of the control bacterial cell lysate with anti-udTRF2 antibodies (dilution 1:1000); 5,6,7–WB analysis of the induced bacterial cell lysate stained with anti-udTRF2 antibodies (dilutions 1:500, 1:1000, 1:2000). Anti-udTRF2 antiserum reveals two proteins with apparent molecular weights of 25 kDa (udTRF2) and 30 kDa in the induced bacterial culture lysate and one protein of 30 kDa in the control bacterial lysate; 8–Anti-udTRF2 antiserum reveals TRF2 in the human skin fibroblast lysate.

    Article Snippet: Commercial rabbit polyclonal antibodies against TRF2 (ab4082, Abcam) were used as a control.

    Techniques: Western Blot, Control, Bacteria, Staining

    Fig. 5. Immunofluorescent staining of human skin fibroblast cell culture with anti-udTRF2 antibodies. TRF2 is revealed in the nucleus as expected.

    Journal: Electronic Journal of Biotechnology

    Article Title: Development and characterization of polyclonal antibodies against the linker region of the telomere-binding protein TRF2

    doi: 10.1016/j.ejbt.2017.12.001

    Figure Lengend Snippet: Fig. 5. Immunofluorescent staining of human skin fibroblast cell culture with anti-udTRF2 antibodies. TRF2 is revealed in the nucleus as expected.

    Article Snippet: Commercial rabbit polyclonal antibodies against TRF2 (ab4082, Abcam) were used as a control.

    Techniques: Staining, Cell Culture

    Figure 5 C3-cl6 cells have lost most markers of classical ALT. (a) C3-cl6 cells do not have APBs. VA13-C3 and C3-cl6 cells were stained for the PML protein (green) and the telomeric protein TRF2 (red) and APBs were detected by the co-localization of the signals (merge). C3-cl6 cells were stained both at early (PD 32) and late (PD 200) PDs. (b) C3-cl6 cells do not have extra-chromosomal telomeric circles. The presence of telomeric circles was analysed by 2D-PFGE and hybridization with a telomeric probe. 25 mg of genomic DNA from GM847 and VA13-C3 cells and 35 mg of genomic DNA from C3-cl6 cells were used. GM847 cells were used as a positive control. The arrows indicate circular telomeric DNA. The hybridization signal in C3-cl6 cells is weaker than in parental and GM847 cells due to the presence of shorter telomeres

    Journal: Oncogene

    Article Title: A human cell line that maintains telomeres in the absence of telomerase and of key markers of ALT.

    doi: 10.1038/sj.onc.1208934

    Figure Lengend Snippet: Figure 5 C3-cl6 cells have lost most markers of classical ALT. (a) C3-cl6 cells do not have APBs. VA13-C3 and C3-cl6 cells were stained for the PML protein (green) and the telomeric protein TRF2 (red) and APBs were detected by the co-localization of the signals (merge). C3-cl6 cells were stained both at early (PD 32) and late (PD 200) PDs. (b) C3-cl6 cells do not have extra-chromosomal telomeric circles. The presence of telomeric circles was analysed by 2D-PFGE and hybridization with a telomeric probe. 25 mg of genomic DNA from GM847 and VA13-C3 cells and 35 mg of genomic DNA from C3-cl6 cells were used. GM847 cells were used as a positive control. The arrows indicate circular telomeric DNA. The hybridization signal in C3-cl6 cells is weaker than in parental and GM847 cells due to the presence of shorter telomeres

    Article Snippet: Immunofluorescence For co-localization of PML and TRF2, as previously described (Cerone et al., 2001), cells fixed in 1% formaldehyde and permeabilized with 0.25% Triton X-100 were incubated overnight with a goat polyclonal antibody against PML (N19, Santa Cruz, USA; 2mg/ml) and a rabbit polyclonal antibody against TRF2 (Grobelny et al., 2000) (1 : 50 dilution).

    Techniques: Staining, Hybridization, Positive Control