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nlrp3 protein  (MedChemExpress)


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    Structured Review

    MedChemExpress nlrp3 protein
    Regulation of the NOD-like receptor signaling pathway by MA NPs in virus-infected MLE-12 cells. (A) The NOD-like receptor signaling pathway is overactivated in cells of the model group; (B) The NOD-like receptor signaling pathway is downregulated in cells treated with MA NPs; (C) <t>NLRP3</t> is upregulated in cells of the model group; (D) NLRP3 is downregulated in cells treated with MA NPs.
    Nlrp3 Protein, supplied by MedChemExpress, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/nlrp3+protein/NLRP3%2C+Human/pmc13188134-147-0-3
    Average 94 stars, based on 1 article reviews
    nlrp3 protein - by Bioz Stars, 2026-09
    94/100 stars

    Images

    1) Product Images from "Folate-mediated inflammatory microenvironment-responsive nanocarriers for the delivery of Moringa A to target NLRP3 for the treatment of viral pneumonia"

    Article Title: Folate-mediated inflammatory microenvironment-responsive nanocarriers for the delivery of Moringa A to target NLRP3 for the treatment of viral pneumonia

    Journal: International Journal of Pharmaceutics: X

    doi: 10.1016/j.ijpx.2026.100565

    Regulation of the NOD-like receptor signaling pathway by MA NPs in virus-infected MLE-12 cells. (A) The NOD-like receptor signaling pathway is overactivated in cells of the model group; (B) The NOD-like receptor signaling pathway is downregulated in cells treated with MA NPs; (C) NLRP3 is upregulated in cells of the model group; (D) NLRP3 is downregulated in cells treated with MA NPs.
    Figure Legend Snippet: Regulation of the NOD-like receptor signaling pathway by MA NPs in virus-infected MLE-12 cells. (A) The NOD-like receptor signaling pathway is overactivated in cells of the model group; (B) The NOD-like receptor signaling pathway is downregulated in cells treated with MA NPs; (C) NLRP3 is upregulated in cells of the model group; (D) NLRP3 is downregulated in cells treated with MA NPs.

    Techniques Used: Virus, Infection

    Effect of MA NPs on the expression of key proteins in the NOD-like receptor signaling pathway. (A) Representative immunoblots of NLRP3, Caspase-1, and ASC. (B—D) Quantitative analysis of NLRP3, Caspase-1, and ASC protein expression. (E) Immunofluorescence detection of GSDMD in MLE-12 cells. The results represent the mean ± SD of 6 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group; △△ P < 0.01, △ P < 0.05 vs Free MA group.
    Figure Legend Snippet: Effect of MA NPs on the expression of key proteins in the NOD-like receptor signaling pathway. (A) Representative immunoblots of NLRP3, Caspase-1, and ASC. (B—D) Quantitative analysis of NLRP3, Caspase-1, and ASC protein expression. (E) Immunofluorescence detection of GSDMD in MLE-12 cells. The results represent the mean ± SD of 6 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group; △△ P < 0.01, △ P < 0.05 vs Free MA group.

    Techniques Used: Expressing, Western Blot, Immunofluorescence, Control

    Molecular Dynamics Simulation and Affinity Analysis of MA and NLRP3. (A) Molecular docking of NLRP3-MA and residue energy contribution at the binding site. (B) RMSD analysis of the NLRP3-MA complex. (C) RMSF analysis of the NLRP3-MA complex. (D) Analysis of NLRP3 protein conformation: Ramachandran plot and secondary structure distribution over time. (E) PCA analysis of the NLRP3-MA complex. (F) Hydrogen bond interactions and binding free energy analysis of the NLRP3-MA complex. (G) Binding free energy analysis between MA and NLRP3. (H) Affinity constant analysis between MA and NLRP3.
    Figure Legend Snippet: Molecular Dynamics Simulation and Affinity Analysis of MA and NLRP3. (A) Molecular docking of NLRP3-MA and residue energy contribution at the binding site. (B) RMSD analysis of the NLRP3-MA complex. (C) RMSF analysis of the NLRP3-MA complex. (D) Analysis of NLRP3 protein conformation: Ramachandran plot and secondary structure distribution over time. (E) PCA analysis of the NLRP3-MA complex. (F) Hydrogen bond interactions and binding free energy analysis of the NLRP3-MA complex. (G) Binding free energy analysis between MA and NLRP3. (H) Affinity constant analysis between MA and NLRP3.

    Techniques Used: Residue, Binding Assay

    Effects of MA NPs on NLRP3, GSDMD, Caspase-1, and ASC in lung tissues of mice with viral pneumonia. (A) Immunohistochemistry (IHC) detection of mouse lung tissues. (B–E) Quantitative analysis of IHC detection. The results represent the mean ± SD of 5 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group.
    Figure Legend Snippet: Effects of MA NPs on NLRP3, GSDMD, Caspase-1, and ASC in lung tissues of mice with viral pneumonia. (A) Immunohistochemistry (IHC) detection of mouse lung tissues. (B–E) Quantitative analysis of IHC detection. The results represent the mean ± SD of 5 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group.

    Techniques Used: Immunohistochemistry, Control

    Related Articles

    Negative Control:

    Article Title: Scaffold Hybrid of the Natural Product Tanshinone I with Piperidine for the Discovery of a Potent NLRP3 Inflammasome Inhibitor.
    Article Snippet: Natural products provide inspiration and have proven to be the most valuable source for drug discovery.. Herein, we report a scaffold hybrid strategy of Tanshinone I for the discovery of NLRP3 inflammasome inhibitors.. 36 compounds were designed and synthesized, and the cheminformatic analyses showed that these compounds occupy a unique chemical space.

    Staining:

    Article Title: Schisandrol B alleviates the progression of atherosclerosis by inhibiting the NLRP3-pyroptosis signaling axis driven by M1-type macrophage polarization.
    Article Snippet: Atherosclerosis (AS) is a major underlying cause of cardiovascular diseases, with hypercholesterolemia, inflammatory responses, and macrophage polarization being established key contributors.. The roles of NLRP3 inflammasome activation and macrophage polarization in AS pathogenesis have garnered significant research interest.. This study investigated the therapeutic potential of Schisandrol B (Sol B) against AS using an in vivo model of ApoE /− mice fed a high-fat diet and an in vitro foam cell model. Network pharmacology and analysis of the GEO database were employed to predict potential targets and pathways of Sol B, which were further validated by molecular docking.



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    Image Search Results


    Regulation of the NOD-like receptor signaling pathway by MA NPs in virus-infected MLE-12 cells. (A) The NOD-like receptor signaling pathway is overactivated in cells of the model group; (B) The NOD-like receptor signaling pathway is downregulated in cells treated with MA NPs; (C) NLRP3 is upregulated in cells of the model group; (D) NLRP3 is downregulated in cells treated with MA NPs.

    Journal: International Journal of Pharmaceutics: X

    Article Title: Folate-mediated inflammatory microenvironment-responsive nanocarriers for the delivery of Moringa A to target NLRP3 for the treatment of viral pneumonia

    doi: 10.1016/j.ijpx.2026.100565

    Figure Lengend Snippet: Regulation of the NOD-like receptor signaling pathway by MA NPs in virus-infected MLE-12 cells. (A) The NOD-like receptor signaling pathway is overactivated in cells of the model group; (B) The NOD-like receptor signaling pathway is downregulated in cells treated with MA NPs; (C) NLRP3 is upregulated in cells of the model group; (D) NLRP3 is downregulated in cells treated with MA NPs.

    Article Snippet: NLRP3 protein (HY-P790108, MCE) was diluted to 434 nM with buffer (PBST, 0.05% Tween-20).

    Techniques: Virus, Infection

    Effect of MA NPs on the expression of key proteins in the NOD-like receptor signaling pathway. (A) Representative immunoblots of NLRP3, Caspase-1, and ASC. (B—D) Quantitative analysis of NLRP3, Caspase-1, and ASC protein expression. (E) Immunofluorescence detection of GSDMD in MLE-12 cells. The results represent the mean ± SD of 6 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group; △△ P < 0.01, △ P < 0.05 vs Free MA group.

    Journal: International Journal of Pharmaceutics: X

    Article Title: Folate-mediated inflammatory microenvironment-responsive nanocarriers for the delivery of Moringa A to target NLRP3 for the treatment of viral pneumonia

    doi: 10.1016/j.ijpx.2026.100565

    Figure Lengend Snippet: Effect of MA NPs on the expression of key proteins in the NOD-like receptor signaling pathway. (A) Representative immunoblots of NLRP3, Caspase-1, and ASC. (B—D) Quantitative analysis of NLRP3, Caspase-1, and ASC protein expression. (E) Immunofluorescence detection of GSDMD in MLE-12 cells. The results represent the mean ± SD of 6 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group; △△ P < 0.01, △ P < 0.05 vs Free MA group.

    Article Snippet: NLRP3 protein (HY-P790108, MCE) was diluted to 434 nM with buffer (PBST, 0.05% Tween-20).

    Techniques: Expressing, Western Blot, Immunofluorescence, Control

    Molecular Dynamics Simulation and Affinity Analysis of MA and NLRP3. (A) Molecular docking of NLRP3-MA and residue energy contribution at the binding site. (B) RMSD analysis of the NLRP3-MA complex. (C) RMSF analysis of the NLRP3-MA complex. (D) Analysis of NLRP3 protein conformation: Ramachandran plot and secondary structure distribution over time. (E) PCA analysis of the NLRP3-MA complex. (F) Hydrogen bond interactions and binding free energy analysis of the NLRP3-MA complex. (G) Binding free energy analysis between MA and NLRP3. (H) Affinity constant analysis between MA and NLRP3.

    Journal: International Journal of Pharmaceutics: X

    Article Title: Folate-mediated inflammatory microenvironment-responsive nanocarriers for the delivery of Moringa A to target NLRP3 for the treatment of viral pneumonia

    doi: 10.1016/j.ijpx.2026.100565

    Figure Lengend Snippet: Molecular Dynamics Simulation and Affinity Analysis of MA and NLRP3. (A) Molecular docking of NLRP3-MA and residue energy contribution at the binding site. (B) RMSD analysis of the NLRP3-MA complex. (C) RMSF analysis of the NLRP3-MA complex. (D) Analysis of NLRP3 protein conformation: Ramachandran plot and secondary structure distribution over time. (E) PCA analysis of the NLRP3-MA complex. (F) Hydrogen bond interactions and binding free energy analysis of the NLRP3-MA complex. (G) Binding free energy analysis between MA and NLRP3. (H) Affinity constant analysis between MA and NLRP3.

    Article Snippet: NLRP3 protein (HY-P790108, MCE) was diluted to 434 nM with buffer (PBST, 0.05% Tween-20).

    Techniques: Residue, Binding Assay

    Effects of MA NPs on NLRP3, GSDMD, Caspase-1, and ASC in lung tissues of mice with viral pneumonia. (A) Immunohistochemistry (IHC) detection of mouse lung tissues. (B–E) Quantitative analysis of IHC detection. The results represent the mean ± SD of 5 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group.

    Journal: International Journal of Pharmaceutics: X

    Article Title: Folate-mediated inflammatory microenvironment-responsive nanocarriers for the delivery of Moringa A to target NLRP3 for the treatment of viral pneumonia

    doi: 10.1016/j.ijpx.2026.100565

    Figure Lengend Snippet: Effects of MA NPs on NLRP3, GSDMD, Caspase-1, and ASC in lung tissues of mice with viral pneumonia. (A) Immunohistochemistry (IHC) detection of mouse lung tissues. (B–E) Quantitative analysis of IHC detection. The results represent the mean ± SD of 5 independent experiments. ## P < 0.01 vs Control group; ⁎⁎ P < 0.01, ⁎ P < 0.05 vs Model group.

    Article Snippet: NLRP3 protein (HY-P790108, MCE) was diluted to 434 nM with buffer (PBST, 0.05% Tween-20).

    Techniques: Immunohistochemistry, Control

    Molecular docking analysis. ( A ) The tested compounds (quercetin, quercetin 3- O -glucuronide, quercetin 7- O -glucuronide, isorhamnetin, isorhamnetin 3- O -glucuronide, and the positive control (MCC950) were inside the binding site of the NLRP3 (pdb:6npy) protein. ( B ) Quercetin, isorhamnetin, and MCC950 with the interacting amino acids.

    Journal: Pharmaceuticals

    Article Title: In Silico and In Vitro Evaluation of Quercetin Metabolites Binding to Inflammatory Target Proteins

    doi: 10.3390/ph19050655

    Figure Lengend Snippet: Molecular docking analysis. ( A ) The tested compounds (quercetin, quercetin 3- O -glucuronide, quercetin 7- O -glucuronide, isorhamnetin, isorhamnetin 3- O -glucuronide, and the positive control (MCC950) were inside the binding site of the NLRP3 (pdb:6npy) protein. ( B ) Quercetin, isorhamnetin, and MCC950 with the interacting amino acids.

    Article Snippet: Recombinant NLRP3 (Origene, TP750176) was labeled with the Monolith Protein Labeling Kit RED-NHS 2nd Generation (Cat. No. M0-L011, NanoTemper Technologies, Munich, Germany).

    Techniques: Positive Control, Binding Assay

    Binding of quercetin, isorhamnetin, quercetin 7- O -glucuronide, quercetin 3- O -glucuronide, isorhamnetin 3- O -glucuronide, tamarixetin, hippuric acid, and 3,4-dihydroxytoluene to NLRP3 as determined by microscale thermophoresis.

    Journal: Pharmaceuticals

    Article Title: In Silico and In Vitro Evaluation of Quercetin Metabolites Binding to Inflammatory Target Proteins

    doi: 10.3390/ph19050655

    Figure Lengend Snippet: Binding of quercetin, isorhamnetin, quercetin 7- O -glucuronide, quercetin 3- O -glucuronide, isorhamnetin 3- O -glucuronide, tamarixetin, hippuric acid, and 3,4-dihydroxytoluene to NLRP3 as determined by microscale thermophoresis.

    Article Snippet: Recombinant NLRP3 (Origene, TP750176) was labeled with the Monolith Protein Labeling Kit RED-NHS 2nd Generation (Cat. No. M0-L011, NanoTemper Technologies, Munich, Germany).

    Techniques: Binding Assay, Microscale Thermophoresis

    Schematic of the engineered probiotic strategy for treating intestinal GVHD. Orally administered, engineered Escherichia coli Nissle 1917 produces outer membrane vesicles (OMVs) displaying the NLRP3-inhibitory peptide BigLEN in the gut. These OMVs enable delivery of the displayed peptide to intestinal tissues and are uptake by lamina propria macrophages. Inside macrophages, BigLEN binds to the NLRP3 NACHT domain, inhibiting inflammasome assembly and subsequent pyroptosis. By attenuating macrophage pyroptosis and the associated cytokine storm, the treatment reduces the activation and infiltration of pathogenic T‑cell subsets (such as Th1 and Th17 cells) and promotes a shift in macrophage polarization toward an anti‑inflammatory phenotype. Ultimately, this locally restricted immunomodulation alleviates intestinal GVHD

    Journal: Journal of Nanobiotechnology

    Article Title: A living therapeutic platform for localized in situ modulation of macrophage pyroptosis ameliorates GVHD while preserving GVL

    doi: 10.1186/s12951-026-04285-6

    Figure Lengend Snippet: Schematic of the engineered probiotic strategy for treating intestinal GVHD. Orally administered, engineered Escherichia coli Nissle 1917 produces outer membrane vesicles (OMVs) displaying the NLRP3-inhibitory peptide BigLEN in the gut. These OMVs enable delivery of the displayed peptide to intestinal tissues and are uptake by lamina propria macrophages. Inside macrophages, BigLEN binds to the NLRP3 NACHT domain, inhibiting inflammasome assembly and subsequent pyroptosis. By attenuating macrophage pyroptosis and the associated cytokine storm, the treatment reduces the activation and infiltration of pathogenic T‑cell subsets (such as Th1 and Th17 cells) and promotes a shift in macrophage polarization toward an anti‑inflammatory phenotype. Ultimately, this locally restricted immunomodulation alleviates intestinal GVHD

    Article Snippet: Surface plasmon resonance (SPR) analysis was performed on a Biacore T200 instrument (GE Healthcare, USA) to measure the binding affinity between the NACHT protein (HY-P701027, MCE, USA) and BigLEN (501036-69-7, MCE, USA).

    Techniques: Membrane, Activation Assay

    Identification and functional validation of BigLEN as a novel NLRP3‑inhibitory peptide. ( A ) Schematic workflow for the virtual screening of NLRP3‑inhibitory peptides. ( B ) Structural analysis of the NLRP3 NACHT domain in complex with a known inhibitor, highlighting the conserved hydrophobic binding pocket. ( C ) Pharmacophore model constructed based on key inhibitor‑protein interactions, featuring four critical chemical features (hydrogen bond acceptors and donors) for virtual screening. ( D ) Molecular docking pose of the candidate peptide BigLEN within the NACHT domain hydrophobic pocket. ( E ) Detailed interaction diagram between BigLEN and key residues (His367, Arg578, Glu369, Glu629) of the NLRP3 NACHT domain, with corresponding binding energies. ( F ) Surface plasmon resonance (SPR) sensograms showing concentration‑dependent binding of BigLEN to immobilized NLRP3 protein. The equilibrium dissociation constant (KD) was calculated to be 1.749 × 10⁻⁷ M. ( G - H ) Flow cytometry analysis of cell death in mouse bone marrow‑derived macrophages (BMDMs). Cells were primed with LPS and stimulated with nigericin in the presence or absence of BigLEN (10 or 50 µM). ( I ) Representative Western blot images of key pyroptosis‑related proteins and ASC in BMDMs in different groups. ( J ) Lactate dehydrogenase (LDH) release assay of supernatant from BMDMs following LPS/nigericin stimulation in the presence or absence of BigLEN (10 or 50 µM), supernatants were collected 12 h after BigLEN treatment. ( K ) Representative TEM image of BMDMs in different groups. Scale bar = 1 μm. Data are representative of three independent experiments. Statistical significance was determined by one‑way ANOVA with Tukey’s post‑hoc test (* p < 0.05). Quantitative data are presented as mean ± SEM

    Journal: Journal of Nanobiotechnology

    Article Title: A living therapeutic platform for localized in situ modulation of macrophage pyroptosis ameliorates GVHD while preserving GVL

    doi: 10.1186/s12951-026-04285-6

    Figure Lengend Snippet: Identification and functional validation of BigLEN as a novel NLRP3‑inhibitory peptide. ( A ) Schematic workflow for the virtual screening of NLRP3‑inhibitory peptides. ( B ) Structural analysis of the NLRP3 NACHT domain in complex with a known inhibitor, highlighting the conserved hydrophobic binding pocket. ( C ) Pharmacophore model constructed based on key inhibitor‑protein interactions, featuring four critical chemical features (hydrogen bond acceptors and donors) for virtual screening. ( D ) Molecular docking pose of the candidate peptide BigLEN within the NACHT domain hydrophobic pocket. ( E ) Detailed interaction diagram between BigLEN and key residues (His367, Arg578, Glu369, Glu629) of the NLRP3 NACHT domain, with corresponding binding energies. ( F ) Surface plasmon resonance (SPR) sensograms showing concentration‑dependent binding of BigLEN to immobilized NLRP3 protein. The equilibrium dissociation constant (KD) was calculated to be 1.749 × 10⁻⁷ M. ( G - H ) Flow cytometry analysis of cell death in mouse bone marrow‑derived macrophages (BMDMs). Cells were primed with LPS and stimulated with nigericin in the presence or absence of BigLEN (10 or 50 µM). ( I ) Representative Western blot images of key pyroptosis‑related proteins and ASC in BMDMs in different groups. ( J ) Lactate dehydrogenase (LDH) release assay of supernatant from BMDMs following LPS/nigericin stimulation in the presence or absence of BigLEN (10 or 50 µM), supernatants were collected 12 h after BigLEN treatment. ( K ) Representative TEM image of BMDMs in different groups. Scale bar = 1 μm. Data are representative of three independent experiments. Statistical significance was determined by one‑way ANOVA with Tukey’s post‑hoc test (* p < 0.05). Quantitative data are presented as mean ± SEM

    Article Snippet: Surface plasmon resonance (SPR) analysis was performed on a Biacore T200 instrument (GE Healthcare, USA) to measure the binding affinity between the NACHT protein (HY-P701027, MCE, USA) and BigLEN (501036-69-7, MCE, USA).

    Techniques: Functional Assay, Biomarker Discovery, Binding Assay, Construct, SPR Assay, Flow Cytometry, Western Blot, Lactate Dehydrogenase Assay