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hek lucia rig  (InvivoGen)


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    Structured Review

    InvivoGen hek lucia rig
    PolyRNAs of varying structures and sequences activate multiple PRRs. ( A ) Proposed structural features of polyRNA for PRR-specific recognition and activation. A dumbbell-shaped DNA template is processively transcribed by T7 RNA polymerase to generate 5′ triphosphate-containing polyRNA structures comprising repeat units of dsRNA and ssRNA regions. Panel of polyRNAs screened for activation of specific PRRs. All polyRNAs in the panel have a 25 bp dsRNA stem in each repeat, with varying ssRNA loop and connecting region lengths and sequences as indicated in the schematics. GUU labels indicate GU-rich ssRNA sequences. ( C, D ) Co-transcriptional structure prediction of monomeric units ( C ) and oligomeric RNAs ( D ) by KineFold . Pseudoknots are visualized as coloured single-stranded regions connected by two straight lines as predicted by KineFold. Structure prediction images were created with KineFold and polished using Adobe Photoshop. ( E ) In vitro activation of PRRs by polyRNAs transfected with Mirus TransIT-X2 (Mirus) in HEK-Blue hTLR3, hTLR7, and Null1 cells at 2 μg/ml. HEK-Blue Null1 is the parental cell line of HEK-Blue TLR cell lines, with baseline PRR expression levels. ( F ) In <t>vitro</t> <t>RIG-I</t> activation by polyRNAs transfected by Lipofectamine 3000 (Lipo) <t>in</t> <t>HEK-Lucia</t> RIG-I cells at 0.5 μg/ml. ( G ) In vitro IRF activation of IRF in RAW-Dual cells by polyRNAs transfected by Lipofectamine at 0.5 μg/ml. For panels (E)–(G), established agonist benchmarks were included for each PRR reporter cell line: high molecular weight poly(I:C) for TLR3, Null1, and RAW-Dual, R848 for TLR7, and 3p-hpRNA for RIG-I. The data represent the mean ± standard deviation of n = 3 technical replicates. Data were analysed by one-way Analysis of Variance (ANOVA) with Šidak’s multiple comparisons test. Ns, no significant difference between bracketed groups. **/***/**** denotes significance between bracketed groups ( P <.01/.001/.0001). Figure and were created in BioRender. Yang, Y. (2026) https://BioRender.com/gd4yhbl .
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    Images

    1) Product Images from "Engineering polymeric RNA scaffolds as programmable combinatorial innate immune agonists"

    Article Title: Engineering polymeric RNA scaffolds as programmable combinatorial innate immune agonists

    Journal: Nucleic Acids Research

    doi: 10.1093/nar/gkag328

    PolyRNAs of varying structures and sequences activate multiple PRRs. ( A ) Proposed structural features of polyRNA for PRR-specific recognition and activation. A dumbbell-shaped DNA template is processively transcribed by T7 RNA polymerase to generate 5′ triphosphate-containing polyRNA structures comprising repeat units of dsRNA and ssRNA regions. Panel of polyRNAs screened for activation of specific PRRs. All polyRNAs in the panel have a 25 bp dsRNA stem in each repeat, with varying ssRNA loop and connecting region lengths and sequences as indicated in the schematics. GUU labels indicate GU-rich ssRNA sequences. ( C, D ) Co-transcriptional structure prediction of monomeric units ( C ) and oligomeric RNAs ( D ) by KineFold . Pseudoknots are visualized as coloured single-stranded regions connected by two straight lines as predicted by KineFold. Structure prediction images were created with KineFold and polished using Adobe Photoshop. ( E ) In vitro activation of PRRs by polyRNAs transfected with Mirus TransIT-X2 (Mirus) in HEK-Blue hTLR3, hTLR7, and Null1 cells at 2 μg/ml. HEK-Blue Null1 is the parental cell line of HEK-Blue TLR cell lines, with baseline PRR expression levels. ( F ) In vitro RIG-I activation by polyRNAs transfected by Lipofectamine 3000 (Lipo) in HEK-Lucia RIG-I cells at 0.5 μg/ml. ( G ) In vitro IRF activation of IRF in RAW-Dual cells by polyRNAs transfected by Lipofectamine at 0.5 μg/ml. For panels (E)–(G), established agonist benchmarks were included for each PRR reporter cell line: high molecular weight poly(I:C) for TLR3, Null1, and RAW-Dual, R848 for TLR7, and 3p-hpRNA for RIG-I. The data represent the mean ± standard deviation of n = 3 technical replicates. Data were analysed by one-way Analysis of Variance (ANOVA) with Šidak’s multiple comparisons test. Ns, no significant difference between bracketed groups. **/***/**** denotes significance between bracketed groups ( P <.01/.001/.0001). Figure and were created in BioRender. Yang, Y. (2026) https://BioRender.com/gd4yhbl .
    Figure Legend Snippet: PolyRNAs of varying structures and sequences activate multiple PRRs. ( A ) Proposed structural features of polyRNA for PRR-specific recognition and activation. A dumbbell-shaped DNA template is processively transcribed by T7 RNA polymerase to generate 5′ triphosphate-containing polyRNA structures comprising repeat units of dsRNA and ssRNA regions. Panel of polyRNAs screened for activation of specific PRRs. All polyRNAs in the panel have a 25 bp dsRNA stem in each repeat, with varying ssRNA loop and connecting region lengths and sequences as indicated in the schematics. GUU labels indicate GU-rich ssRNA sequences. ( C, D ) Co-transcriptional structure prediction of monomeric units ( C ) and oligomeric RNAs ( D ) by KineFold . Pseudoknots are visualized as coloured single-stranded regions connected by two straight lines as predicted by KineFold. Structure prediction images were created with KineFold and polished using Adobe Photoshop. ( E ) In vitro activation of PRRs by polyRNAs transfected with Mirus TransIT-X2 (Mirus) in HEK-Blue hTLR3, hTLR7, and Null1 cells at 2 μg/ml. HEK-Blue Null1 is the parental cell line of HEK-Blue TLR cell lines, with baseline PRR expression levels. ( F ) In vitro RIG-I activation by polyRNAs transfected by Lipofectamine 3000 (Lipo) in HEK-Lucia RIG-I cells at 0.5 μg/ml. ( G ) In vitro IRF activation of IRF in RAW-Dual cells by polyRNAs transfected by Lipofectamine at 0.5 μg/ml. For panels (E)–(G), established agonist benchmarks were included for each PRR reporter cell line: high molecular weight poly(I:C) for TLR3, Null1, and RAW-Dual, R848 for TLR7, and 3p-hpRNA for RIG-I. The data represent the mean ± standard deviation of n = 3 technical replicates. Data were analysed by one-way Analysis of Variance (ANOVA) with Šidak’s multiple comparisons test. Ns, no significant difference between bracketed groups. **/***/**** denotes significance between bracketed groups ( P <.01/.001/.0001). Figure and were created in BioRender. Yang, Y. (2026) https://BioRender.com/gd4yhbl .

    Techniques Used: Activation Assay, In Vitro, Transfection, Expressing, High Molecular Weight, Standard Deviation

    Related Articles

    Stable Transfection:

    Article Title: Damage- and pathogen-associated molecular patterns play differential roles in late mortality after critical illness
    Article Snippet: Mouse melanoma cell line B16-F0 (ATCC), mouse pancreatic cancer cell line PANC-02 (kindly provided by Rebekah White, University of California, San Diego, California, USA), and mouse macrophage cell line RAW264.7 (ATCC) were maintained in Dulbecco’s modification of Eagle medium (DMEM) supplemented with 10% FBS. .. TLR reporter cell lines, including HEK-hTLR2, HEK-hTLR3, HEK-hTLR4, and HEK-hTLR9 cells (all from InvivoGen), stably express genes encoding transcription factor NF-κB–inducible secreted embryonic alkaline phosphatase (SEAP) and corresponding TLR, and these reporter cells were maintained by following the manufacturer’s instructions. ..

    Article Title: Nucleic acid scavenging microfiber mesh inhibits trauma-induced inflammation and thrombosis
    Article Snippet: Human pancreatic cancer cell line PANC-1 (kindly provided by Dr. Rebekah White, Duke University, Durham, NC), mouse melanoma cell line B16-F10 (ATCC), mouse macrophage cell line RAW264.7 and mouse embryonic fibroblast (ATCC) were maintained in DMEM supplemented with 10% FBS. .. TLR reporter cell lines, including HEK-hTLR3, HEK-hTLR4 and HEK-hTLR9 cells (InvivoGen, San Diego, CA), stably express an NF-kB/AP-1-inducible secreted embryonic alkaline phosphatase (SEAP) and corresponding TLR, and these reporter cells were maintained by following the manufacturer’s instructions. ..

    Article Title: Nucleic acid scavenging microfiber mesh inhibits trauma-induced inflammation and thrombosis.
    Article Snippet: Human pancreatic cancer cell line PANC-1 (kindly provided by Dr. Rebekah White, Duke University, Durham, NC), mousemelanoma cell line B16-F10 (ATCC), mousemacrophage cell line RAW264.7 and mouse embryonic fibroblast (ATCC) were maintained in DMEM supplemented with 10% FBS. .. TLR reporter cell lines, including HEK-hTLR3, HEK-hTLR4 and HEK-hTLR9 cells (InvivoGen, San Diego, CA), stably express an NF-kB/AP-1-inducible secreted embryonic alkaline phosphatase (SEAP) and corresponding TLR, and these reporter cells were maintained by following the manufacturer's instructions. ..

    Article Title: Polycationic microfibers and methods of using the same
    Article Snippet: Human pancreatic cancer cell line PANC-1 (kindly provided by Dr. Rebekah White, Duke University, Durham, NC), mouse melanoma cell line B16-F10 (ATCC), mouse macrophage cell line RAW264.7 and mouse embryonic fibroblast (ATCC) were maintained in DMEM supplemented with 10% FBS. .. TLR reporter cell lines, including HEK-hTLR3, HEK-hTLR4 and HEK-hTLR9 cells (InvivoGen, San Diego, CA), stably express an NF-kB/AP-1-inducible secreted embryonic alkaline phosphatase (SEAP) and corresponding TLR, and these reporter cells were maintained by following the manufacturer's instructions. ..



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    PolyRNAs of varying structures and sequences activate multiple PRRs. ( A ) Proposed structural features of polyRNA for PRR-specific recognition and activation. A dumbbell-shaped DNA template is processively transcribed by T7 RNA polymerase to generate 5′ triphosphate-containing polyRNA structures comprising repeat units of dsRNA and ssRNA regions. Panel of polyRNAs screened for activation of specific PRRs. All polyRNAs in the panel have a 25 bp dsRNA stem in each repeat, with varying ssRNA loop and connecting region lengths and sequences as indicated in the schematics. GUU labels indicate GU-rich ssRNA sequences. ( C, D ) Co-transcriptional structure prediction of monomeric units ( C ) and oligomeric RNAs ( D ) by KineFold . Pseudoknots are visualized as coloured single-stranded regions connected by two straight lines as predicted by KineFold. Structure prediction images were created with KineFold and polished using Adobe Photoshop. ( E ) In vitro activation of PRRs by polyRNAs transfected with Mirus TransIT-X2 (Mirus) in HEK-Blue hTLR3, hTLR7, and Null1 cells at 2 μg/ml. HEK-Blue Null1 is the parental cell line of HEK-Blue TLR cell lines, with baseline PRR expression levels. ( F ) In vitro RIG-I activation by polyRNAs transfected by Lipofectamine 3000 (Lipo) in HEK-Lucia RIG-I cells at 0.5 μg/ml. ( G ) In vitro IRF activation of IRF in RAW-Dual cells by polyRNAs transfected by Lipofectamine at 0.5 μg/ml. For panels (E)–(G), established agonist benchmarks were included for each PRR reporter cell line: high molecular weight poly(I:C) for TLR3, Null1, and RAW-Dual, R848 for TLR7, and 3p-hpRNA for RIG-I. The data represent the mean ± standard deviation of n = 3 technical replicates. Data were analysed by one-way Analysis of Variance (ANOVA) with Šidak’s multiple comparisons test. Ns, no significant difference between bracketed groups. **/***/**** denotes significance between bracketed groups ( P <.01/.001/.0001). Figure and were created in BioRender. Yang, Y. (2026) https://BioRender.com/gd4yhbl .

    Journal: Nucleic Acids Research

    Article Title: Engineering polymeric RNA scaffolds as programmable combinatorial innate immune agonists

    doi: 10.1093/nar/gkag328

    Figure Lengend Snippet: PolyRNAs of varying structures and sequences activate multiple PRRs. ( A ) Proposed structural features of polyRNA for PRR-specific recognition and activation. A dumbbell-shaped DNA template is processively transcribed by T7 RNA polymerase to generate 5′ triphosphate-containing polyRNA structures comprising repeat units of dsRNA and ssRNA regions. Panel of polyRNAs screened for activation of specific PRRs. All polyRNAs in the panel have a 25 bp dsRNA stem in each repeat, with varying ssRNA loop and connecting region lengths and sequences as indicated in the schematics. GUU labels indicate GU-rich ssRNA sequences. ( C, D ) Co-transcriptional structure prediction of monomeric units ( C ) and oligomeric RNAs ( D ) by KineFold . Pseudoknots are visualized as coloured single-stranded regions connected by two straight lines as predicted by KineFold. Structure prediction images were created with KineFold and polished using Adobe Photoshop. ( E ) In vitro activation of PRRs by polyRNAs transfected with Mirus TransIT-X2 (Mirus) in HEK-Blue hTLR3, hTLR7, and Null1 cells at 2 μg/ml. HEK-Blue Null1 is the parental cell line of HEK-Blue TLR cell lines, with baseline PRR expression levels. ( F ) In vitro RIG-I activation by polyRNAs transfected by Lipofectamine 3000 (Lipo) in HEK-Lucia RIG-I cells at 0.5 μg/ml. ( G ) In vitro IRF activation of IRF in RAW-Dual cells by polyRNAs transfected by Lipofectamine at 0.5 μg/ml. For panels (E)–(G), established agonist benchmarks were included for each PRR reporter cell line: high molecular weight poly(I:C) for TLR3, Null1, and RAW-Dual, R848 for TLR7, and 3p-hpRNA for RIG-I. The data represent the mean ± standard deviation of n = 3 technical replicates. Data were analysed by one-way Analysis of Variance (ANOVA) with Šidak’s multiple comparisons test. Ns, no significant difference between bracketed groups. **/***/**** denotes significance between bracketed groups ( P <.01/.001/.0001). Figure and were created in BioRender. Yang, Y. (2026) https://BioRender.com/gd4yhbl .

    Article Snippet: RAW-Dual, HEK-Blue mTLR9, HEK-Blue hTLR3, HEK-Blue hTLR7, and HEK-Lucia RIG-I were purchased from InvivoGen.

    Techniques: Activation Assay, In Vitro, Transfection, Expressing, High Molecular Weight, Standard Deviation

    (A) Schematic representation depicting the role of TBK1 in regulation of TNFR1- and IFN-induced signalling and cell death. (B) IRF pathway activation was assessed using a secreted Lucia luciferase reporter assay in HEK-Dual TM hTLR3 cells. Cells were preincubated with 1 µM CCT412020 (12 h) prior to stimulation with poly (I:C) (1 µg/ml) for 6 h. IRF-dependent signalling was quantified by measuring secreted Lucia luciferase activity in the culture supernatant using a luminometer. (C) NF-κB pathway activity was measured using a SEAP reporter assay in HEK-Dual™ hTLR3 cells. Cells were pre-incubated with the 1 µM CCT412020 for 12 h prior to stimulation with poly(I:C) (1 µg/mL) for 6 h. NF-κB-dependent SEAP activity was quantified by measuring absorbance at 595 nm. (D) TNF induced NF-κB pathway activity was measured using a SEAP reporter assay in HEK-Dual™ hTLR3 cells. Cells were pre-incubated with the 1 µM CCT412020 for 12 h prior to stimulation with TNF (10 ng/mL) for 6 h. NF-κB–dependent SEAP activity was quantified by measuring absorbance at 595 nm. (E) Cell viability was assessed using a CellTiter-Glo (CTG) assay in the breast cancer cell lines MCF7. Cells were pre-treated with CCT412020 (1 µM) and IFNβ (1 ng/ml) for 24 h, after which TNF (10 ng/ml) was added either as a single agents or in combination for additional 44 h. Viability was quantified following treatment to evaluate the impact of TBK1 degradation alone or in combination with pro-inflammatory cytokine signalling. (F) Dose-response analysis of CCT412020 in MCF7 cells in the presence or absence of IFNβ (1 ng/ml) for 48h. Cell viability was assessed using a CellTiter-Glo assay, and DC₅₀ values were determined from a representative experiment. (G) Cell viability in HCC38 cells was assessed using a CellTiter-Glo (CTG) as in (E) . (H) Cell viability in BT549 cells was assessed using a CellTiter-Glo (CTG) as in (E) . (I) Cell viability was assessed using a CellTiter-Glo (CTG) assay in MC38 and MC38 hCRBN cells. Cells were treated with CCT412020 for 18 h in the presence or absence of TNF. Viability was quantified following treatment to evaluate the impact of TBK1 degradation and the contribution of human CRBN expression to TNF-mediated cytotoxic responses. (J) Long-term clonogenic survival (7 days) was assessed in MC38 and MC38 hCRBN cells following treatment with CCT412020 in the presence or absence of TNFα. Cells were treated as indicated and allowed to grow for colony formation. Representative images of stained colonies in culture wells are shown, and clonogenic survival was quantified (K) from scanned plates and plotted as indicated.

    Journal: bioRxiv

    Article Title: Developing potent and selective TBK1 molecular glue degraders for cancer immunotherapy

    doi: 10.64898/2026.01.30.702304

    Figure Lengend Snippet: (A) Schematic representation depicting the role of TBK1 in regulation of TNFR1- and IFN-induced signalling and cell death. (B) IRF pathway activation was assessed using a secreted Lucia luciferase reporter assay in HEK-Dual TM hTLR3 cells. Cells were preincubated with 1 µM CCT412020 (12 h) prior to stimulation with poly (I:C) (1 µg/ml) for 6 h. IRF-dependent signalling was quantified by measuring secreted Lucia luciferase activity in the culture supernatant using a luminometer. (C) NF-κB pathway activity was measured using a SEAP reporter assay in HEK-Dual™ hTLR3 cells. Cells were pre-incubated with the 1 µM CCT412020 for 12 h prior to stimulation with poly(I:C) (1 µg/mL) for 6 h. NF-κB-dependent SEAP activity was quantified by measuring absorbance at 595 nm. (D) TNF induced NF-κB pathway activity was measured using a SEAP reporter assay in HEK-Dual™ hTLR3 cells. Cells were pre-incubated with the 1 µM CCT412020 for 12 h prior to stimulation with TNF (10 ng/mL) for 6 h. NF-κB–dependent SEAP activity was quantified by measuring absorbance at 595 nm. (E) Cell viability was assessed using a CellTiter-Glo (CTG) assay in the breast cancer cell lines MCF7. Cells were pre-treated with CCT412020 (1 µM) and IFNβ (1 ng/ml) for 24 h, after which TNF (10 ng/ml) was added either as a single agents or in combination for additional 44 h. Viability was quantified following treatment to evaluate the impact of TBK1 degradation alone or in combination with pro-inflammatory cytokine signalling. (F) Dose-response analysis of CCT412020 in MCF7 cells in the presence or absence of IFNβ (1 ng/ml) for 48h. Cell viability was assessed using a CellTiter-Glo assay, and DC₅₀ values were determined from a representative experiment. (G) Cell viability in HCC38 cells was assessed using a CellTiter-Glo (CTG) as in (E) . (H) Cell viability in BT549 cells was assessed using a CellTiter-Glo (CTG) as in (E) . (I) Cell viability was assessed using a CellTiter-Glo (CTG) assay in MC38 and MC38 hCRBN cells. Cells were treated with CCT412020 for 18 h in the presence or absence of TNF. Viability was quantified following treatment to evaluate the impact of TBK1 degradation and the contribution of human CRBN expression to TNF-mediated cytotoxic responses. (J) Long-term clonogenic survival (7 days) was assessed in MC38 and MC38 hCRBN cells following treatment with CCT412020 in the presence or absence of TNFα. Cells were treated as indicated and allowed to grow for colony formation. Representative images of stained colonies in culture wells are shown, and clonogenic survival was quantified (K) from scanned plates and plotted as indicated.

    Article Snippet: HEK-DualTM hTLR3 reporter cells (InvivoGen; Cat. #hkd-htlr3) were seeded in 96-well plates at a density of 1.0 × 104 cells per well and allowed to adhere overnight.

    Techniques: Activation Assay, Luciferase, Reporter Assay, Activity Assay, Incubation, CTG Assay, Glo Assay, Expressing, Staining