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mmp fluorogenic peptide substrate  (R&D Systems)


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    Structured Review

    R&D Systems mmp fluorogenic peptide substrate
    Figure 1 | Fluid flow stimulates motility and matrix metalloprotease activity. (a) Cylindrical PDMS fluidics channels coated in collagen support a monolayer of cells. Flow of media through the culture chamber exposes cells to WSS of 0.05 dyne cm 2. Scale bar on bright field photomicrograph of PC3 cells within the scaffold represents 400 mm. (b) Filopodia formation in response to WSS is extensive. Scale bar in left panel, 10 mm, scale bar in right panel, 5 mm. (c) Transcription of MMP2 and MMP9 is stimulated by WSS (n ¼ 3 independent experiments; Kruskal–Wallis one-way ANOVA, Po0.001). (d) Total <t>MMP</t> activity measured by fluorogenic peptide substrate digestion assays was increased by exposure to 6 h WSS (n ¼ 3 independent experiments; unpaired t-test, **Po0.0001). (e) Spatial tracking of PC3 and DU145 cancer cell movement during 6 h of time-lapse imaging, where each cell lies at the origin (0,0) at t ¼ 0 h. Plots depict motility of individual cells in one representative experiment. (f) Quantification of migration speed reveals increased cellular velocities of individual cells under WSS. (n ¼ 7 independent experiments, two-tailed t-test, **P ¼ 4.22E 18 for PC3 cells; n ¼ 3 independent experiments, two-tailed t-test, **P ¼ 1.56E 9 for DU145 cells). (g) Time segmented migration speed of cells after WSS initiation (Kruskal–Wallis one-way ANOVA, *Po0.05, **Po0.01). Error bars represent±s.e.m.
    Mmp Fluorogenic Peptide Substrate, supplied by R&D Systems, used in various techniques. Bioz Stars score: 93/100, based on 95 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/fluorogenic+peptide+substrate/pm28098159-293-1-6?v=R%26D+Systems
    Average 93 stars, based on 95 article reviews
    mmp fluorogenic peptide substrate - by Bioz Stars, 2026-08
    93/100 stars

    Images

    1) Product Images from "Fluid shear stress activates YAP1 to promote cancer cell motility."

    Article Title: Fluid shear stress activates YAP1 to promote cancer cell motility.

    Journal: Nature communications

    doi: 10.1038/ncomms14122

    Figure 1 | Fluid flow stimulates motility and matrix metalloprotease activity. (a) Cylindrical PDMS fluidics channels coated in collagen support a monolayer of cells. Flow of media through the culture chamber exposes cells to WSS of 0.05 dyne cm 2. Scale bar on bright field photomicrograph of PC3 cells within the scaffold represents 400 mm. (b) Filopodia formation in response to WSS is extensive. Scale bar in left panel, 10 mm, scale bar in right panel, 5 mm. (c) Transcription of MMP2 and MMP9 is stimulated by WSS (n ¼ 3 independent experiments; Kruskal–Wallis one-way ANOVA, Po0.001). (d) Total MMP activity measured by fluorogenic peptide substrate digestion assays was increased by exposure to 6 h WSS (n ¼ 3 independent experiments; unpaired t-test, **Po0.0001). (e) Spatial tracking of PC3 and DU145 cancer cell movement during 6 h of time-lapse imaging, where each cell lies at the origin (0,0) at t ¼ 0 h. Plots depict motility of individual cells in one representative experiment. (f) Quantification of migration speed reveals increased cellular velocities of individual cells under WSS. (n ¼ 7 independent experiments, two-tailed t-test, **P ¼ 4.22E 18 for PC3 cells; n ¼ 3 independent experiments, two-tailed t-test, **P ¼ 1.56E 9 for DU145 cells). (g) Time segmented migration speed of cells after WSS initiation (Kruskal–Wallis one-way ANOVA, *Po0.05, **Po0.01). Error bars represent±s.e.m.
    Figure Legend Snippet: Figure 1 | Fluid flow stimulates motility and matrix metalloprotease activity. (a) Cylindrical PDMS fluidics channels coated in collagen support a monolayer of cells. Flow of media through the culture chamber exposes cells to WSS of 0.05 dyne cm 2. Scale bar on bright field photomicrograph of PC3 cells within the scaffold represents 400 mm. (b) Filopodia formation in response to WSS is extensive. Scale bar in left panel, 10 mm, scale bar in right panel, 5 mm. (c) Transcription of MMP2 and MMP9 is stimulated by WSS (n ¼ 3 independent experiments; Kruskal–Wallis one-way ANOVA, Po0.001). (d) Total MMP activity measured by fluorogenic peptide substrate digestion assays was increased by exposure to 6 h WSS (n ¼ 3 independent experiments; unpaired t-test, **Po0.0001). (e) Spatial tracking of PC3 and DU145 cancer cell movement during 6 h of time-lapse imaging, where each cell lies at the origin (0,0) at t ¼ 0 h. Plots depict motility of individual cells in one representative experiment. (f) Quantification of migration speed reveals increased cellular velocities of individual cells under WSS. (n ¼ 7 independent experiments, two-tailed t-test, **P ¼ 4.22E 18 for PC3 cells; n ¼ 3 independent experiments, two-tailed t-test, **P ¼ 1.56E 9 for DU145 cells). (g) Time segmented migration speed of cells after WSS initiation (Kruskal–Wallis one-way ANOVA, *Po0.05, **Po0.01). Error bars represent±s.e.m.

    Techniques Used: Activity Assay, Imaging, Migration, Two Tailed Test



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    Image Search Results


    PCSK6 promotes MMP activation. ( A ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells on the fluorogenic MMP substrate peptide {Mca}-Lys-Pro-Leu-Gly-Leu-{Dap(Dnp)}-Ala-Arg-NH2 ( n = 3). ( B ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells on the fluorogenic MMP14 substrate peptide MCA-PLA-C(OMeBz)-WAR(Dpa)-NH 2 ( n = 3). ( C ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells collected in the presence or absence of 50 µM furin convertase inhibitor (FC inh) on the fluorogenic MMP substrate peptide ( n = 3). ( D ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells collected in the presence or absence of 50 µM furin convertase inhibitor (FC inh) on the fluorogenic MMP14 substrate peptide ( n = 3). ( E – G ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells in the presence or absence of 500 µM broad-spectrum MMP inhibitor GM6001 ( E ), 50 µM Marimastat ( F ) or the combination of GM6001 and Marimastat ( G ). Fluorescence was measured at excitation 320/20 nm, emission 360/40 nm and normalized to the baseline fluorescence of the substrate peptide in the medium alone. MFI indicates mean channel fluorescence minus background. Data are expressed as mean ± SEM. Statistical significance was tested using mixed-effects analysis with Tukey’s post hoc test for multiple comparisons, and significance is shown relative to the indicated groups. p -values: * <0.05, ** <0.01, *** <0.001 and **** <0.0001.

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    Article Title: Epithelial PCSK6 Promotes Proliferation and Decreases Collagen Deposition by Fibroblasts Potentially via MMP Activation

    doi: 10.3390/ijms27115104

    Figure Lengend Snippet: PCSK6 promotes MMP activation. ( A ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells on the fluorogenic MMP substrate peptide {Mca}-Lys-Pro-Leu-Gly-Leu-{Dap(Dnp)}-Ala-Arg-NH2 ( n = 3). ( B ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells on the fluorogenic MMP14 substrate peptide MCA-PLA-C(OMeBz)-WAR(Dpa)-NH 2 ( n = 3). ( C ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells collected in the presence or absence of 50 µM furin convertase inhibitor (FC inh) on the fluorogenic MMP substrate peptide ( n = 3). ( D ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells collected in the presence or absence of 50 µM furin convertase inhibitor (FC inh) on the fluorogenic MMP14 substrate peptide ( n = 3). ( E – G ) Proteolytic activity of CM from mCherry-control, PCSK6-high and PCSK6-low A549 cells in the presence or absence of 500 µM broad-spectrum MMP inhibitor GM6001 ( E ), 50 µM Marimastat ( F ) or the combination of GM6001 and Marimastat ( G ). Fluorescence was measured at excitation 320/20 nm, emission 360/40 nm and normalized to the baseline fluorescence of the substrate peptide in the medium alone. MFI indicates mean channel fluorescence minus background. Data are expressed as mean ± SEM. Statistical significance was tested using mixed-effects analysis with Tukey’s post hoc test for multiple comparisons, and significance is shown relative to the indicated groups. p -values: * <0.05, ** <0.01, *** <0.001 and **** <0.0001.

    Article Snippet: MMP activity was assessed using a fluorogenic MMP substrate peptide (CAS 720710-69-0, MCE, Monmouth Junction, NJ, USA), in the presence or absence of the broad-spectrum MMP inhibitor GM6001 (sc-203979, Santa Cruz Biotechnology) or Marimastat (CAS 154039-60-8, MCE).

    Techniques: Activation Assay, Activity Assay, Control, Fluorescence

    a) Alexa Fluor 647-labeled AhlyH35A (7.5nM) was incubated with A549 cells in the presence of increasing concentrations of Peptide 88 or a control bicyclic peptide. Cell-associated fluorescence was quantified by flow cytometry and shown as histogram overlays. Negative control (cells only) shown in black; positive control (AhlyH35A without peptide) shown in red. b) Quantification of median fluorescence intensity plotted against peptide concentration. Data are normalized to the negative and positive controls. c) ADAM10 protease activation by Ahly (6µM) was measured using a whole-cell FRET peptide cleavage assay in the presence of Peptide 88 or a control bicyclic peptide (900µM). Mean of two biological replicates; error bars indicate standard deviation. Data were analysed using one-way ANOVA with Dunnett’s test: ns = not significant; ** = P < 0.01.

    Journal: bioRxiv

    Article Title: Discovery, characterisation and optimisation of bicyclic peptide inhibitors that disarm Staphylococcus aureus α-hemolysin

    doi: 10.64898/2026.03.09.710508

    Figure Lengend Snippet: a) Alexa Fluor 647-labeled AhlyH35A (7.5nM) was incubated with A549 cells in the presence of increasing concentrations of Peptide 88 or a control bicyclic peptide. Cell-associated fluorescence was quantified by flow cytometry and shown as histogram overlays. Negative control (cells only) shown in black; positive control (AhlyH35A without peptide) shown in red. b) Quantification of median fluorescence intensity plotted against peptide concentration. Data are normalized to the negative and positive controls. c) ADAM10 protease activation by Ahly (6µM) was measured using a whole-cell FRET peptide cleavage assay in the presence of Peptide 88 or a control bicyclic peptide (900µM). Mean of two biological replicates; error bars indicate standard deviation. Data were analysed using one-way ANOVA with Dunnett’s test: ns = not significant; ** = P < 0.01.

    Article Snippet: Following incubation, cells were washed once with 25mM Tris buffer, pH 8.0 and a fluorogenic ADAM10 substrate peptide (Mca-PLAQAV-Dpa-RSSSR-NH 2 ; R&D Systems) was added at a final concentration of 10μM.

    Techniques: Labeling, Incubation, Control, Fluorescence, Flow Cytometry, Negative Control, Positive Control, Concentration Assay, Activation Assay, Cleavage Assay, Standard Deviation