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Image Search Results
Journal: The EMBO Journal
Article Title: A microtubule‐LUZP1 association around tight junction promotes epithelial cell apical constriction
doi: 10.15252/embj.2020104712
Figure Lengend Snippet: Representative confocal micrographs of co‐cultures of wild‐type (WT) and LUZP1 knockout (LUZP1 KO) Eph4 cells in the apical plane. Scale bar, 10 μm. Bar plots with dot density plots showing that ROCK1 mean intensities within circumferential rings (CRs) are similar between WT and LUZP1 KO cells (40.87 ± 9.95 arbitrary units [a.u.] [WT] vs. 39.48 ± 6.04 a.u. [LUZP1 KO]). n = 3. P = 0.54 (Mann–Whitney U test). Bars and error bars represent the mean ± standard deviation (SD). In vitro myosin light chain (MLC) phosphorylation assay using 25 ng GST‐MLC, 4 ng GST‐ROCK1 catalytic domain, 1 mM ATP, and 0–5 μg GST‐LUZP1. Quantification of the ppMLC/MLC ratio relative to the control showed that LUZP1 did not change the ratio (1.00 [1 st lane, control] vs. 1.13 ± 0.24 [2 nd lane] vs. 1.01 ± 0.44 [3 rd lane] vs. 1.08 ± 0.73 [4 th lane]). n = 4. P = 0.49 (Kruskal–Wallis test). Bars and error bars represent the mean ± SD. IB, immunoblotting. Representative confocal micrographs of co‐cultures of Venus‐LUZP1‐expressing LUZP1 KO (REV) and LUZP1 KO Eph4 cells treated with 100 nM calyculin A for 30 min. Scale bar, 10 μm. Bar plots with dot density plots showing that calyculin A reversed the difference in ppMLC levels within CRs between REV and LUZP1 KO cells (control, 21.14 ± 16.80 a.u. [WT] vs. 3.10 ± 1.72 a.u. [LUZP1 KO]; calyculin A, 25.24 ± 10.54 a.u. [WT] vs. 20.65 ± 5.62 a.u. [LUZP1 KO]; washout, 22.09 ± 7.90 a.u. [WT] vs. 7.92 ± 4.01 a.u. [LUZP1 KO]). ** P < 0.01 (Mann–Whitney U test). Bars and error bars represent the mean ± SD. n = 3. Representative immunoblot of WT, LUZP1 KO, and Venus‐LUZP1‐expressing LUZP1 knockout (REV) Eph4 cells treated with 100 nM calyculin A for 30 min. Quantification of the ppMLC/MLC ratio relative to WT control, confirming the reversal of the difference in ppMLC levels within CRs between WT and LUZP1 KO cells by calyculin A (WT, 1.00 [control] vs. 1.40 ± 0.06 [calyculin A] vs. 1.14 ± 0.33 [washout]; KO, 0.09 ± 0.04 [control] vs. 1.49 ± 0.06 [calyculin A] vs. 0.81 ± 0.99 [washout]; REV, 2.06 ± 1.78 [control] vs. 1.82 ± 1.50 [calyculin A] vs. 1.80 ± 1.14 [washout]). n = 3. Bars and error bars represent the mean ± SD. Source data are available online for this figure.
Article Snippet:
Techniques: Knock-Out, MANN-WHITNEY, Standard Deviation, In Vitro, Phosphorylation Assay, Western Blot, Expressing
Journal: The EMBO Journal
Article Title: A microtubule‐LUZP1 association around tight junction promotes epithelial cell apical constriction
doi: 10.15252/embj.2020104712
Figure Lengend Snippet: A schematic drawing of myosin phosphatase. Myosin phosphatase consists of PP1c β/δ, myosin phosphatase targeting subunit 1 (MYPT1), and a small 20‐kDa regulatory subunit (M20). PP1c β/δ represents a catalytic subunit responsible for dephosphorylating myosin light chain (MLC), whereas MYPT1 targets myosin phosphatase to MLC by binding both PP1c β/δ and MLC. Representative confocal micrographs of co‐cultures of wild‐type (WT) and LUZP1 knockout (LUZP1 KO) Eph4 cells in the apical plane. Scale bar, 10 μm. Bar plots with dot density plots showing that PP1c mean intensities within CRs are similar between WT and LUZP1 KO cells (28.68 ± 9.60 arbitrary units [a.u.] [WT] vs. 25.04 ± 9.47 a.u. [LUZP1 KO]). P = 0.09 [Mann–Whitney U test]. n = 3. Bars and error bars represent the mean ± standard deviation (SD). Co‐immunoprecipitation of HA‐PP1c β/δ and GFP‐LUZP1. LUZP1 binds to PP1c β/δ. IB, immunoblotting. In vitro MLC phosphorylation assay using 1 μg GST‐PP1c β/δ in addition to 25 ng GST‐MLC, 4 ng GST‐ROCK1 catalytic domain, 1 mM ATP, and 0–5 μg GST‐LUZP1. Quantification of the di‐phosphorylated MLC (ppMLC)/MLC ratio relative to the control showed that LUZP1 upregulated ppMLC/MLC levels in a dose‐dependent manner (1.00 [1 st lane, control] vs. 1.27 ± 0.33 [2 nd lane] vs. 1.76 ± 0.68 [3 rd lane] vs. 2.53 ± 1.65 [4 th lane] vs. 2.93 ± 2.45 [5 th lane]). n = 3 or 6. ** P < 0.01 (Kruskal–Wallis test followed by Steel test [compared with 1 st lane]). Bars and error bars represent the mean ± SD. In vitro Merlin phosphorylation assay using 1 μg GST‐PP1c β/δ, 100 ng GST‐Merlin, 2 pg p21‐activated kinase 1 (PAK1), and 5 μg GST‐LUZP1. Quantification of the phosphorylated Merlin (pMerlin)/Merlin ratio relative to the control showed that LUZP1 upregulated pMerlin/Merlin levels (0.23 ± 0.15 [1 st lane] vs. 1.00 [2 nd lane, control] vs. 0.32 ± 0.17 [3 rd lane] vs. 0.97 ± 0.42 [4 th lane] vs. 1.25 ± 0.39 [5 th lane]). n = 4 or 9. * P < 0.05, ** P < 0.01 (Kruskal–Wallis test followed by Steel test [compared with 3 rd lane]). Bars and error bars represent the mean ± SD. A schematic drawing of the relationships among ppMLC, LUZP1, and myosin phosphatase at tight junction (TJ)‐associated CRs to promote apical constriction. Source data are available online for this figure.
Article Snippet:
Techniques: Binding Assay, Knock-Out, MANN-WHITNEY, Standard Deviation, Immunoprecipitation, Western Blot, In Vitro, Phosphorylation Assay
Journal: The EMBO Journal
Article Title: A microtubule‐LUZP1 association around tight junction promotes epithelial cell apical constriction
doi: 10.15252/embj.2020104712
Figure Lengend Snippet: Box plots with dot density plots showing the ratio of the apical area/basal area in co‐cultures of Venus‐LUZP1‐expressing LUZP1 knockout (REV) and LUZP1 knockout (LUZP1 KO) Eph4 cells; 2 μM nocodazole treatment for 30 min partially reversed apical constriction of REV cells (REV, 0.65 ± 0.16 [control] vs. 0.90 ± 0.18 [nocodazole] vs. 0.64 ± 0.16 [washout]; KO, 1.30 ± 0.17 [control] vs. 1.07 ± 0.13 [nocodazole] vs. 1.32 ± 0.19 [washout]). ** P < 0.01 (Kruskal–Wallis test followed by Steel–Dwass test). The solid lines represent the medians, and the boxes represent the interquartile ranges. The error bars extending from the box represent the data within 1.5 times of the interquartile range. Representative confocal micrographs of co‐cultures of LUZP1‐expressing wild‐type (WT) and LUZP1 KO Eph4 cell treated with 2 μM nocodazole for 30 min. Nocodazole treatment partially reversed the difference in di‐phosphorylated MLC (ppMLC) levels within circumferential rings (CRs) between WT and LUZP1 KO cells. Scale bar, 10 μm. Bar plots with dot density plots showing that ppMLC levels within CRs were significantly downregulated in WT Eph4 cells after nocodazole treatment. Importantly, ppMLC levels in LUZP1 KO Eph4 cells were unchanged after nocodazole treatment (WT, 21.43 ± 6.96 arbitrary units [a.u.] [control] vs. 17.67 ± 5.40 a.u. [nocodazole] vs. 20.84 ± 7.19 a.u. [washout]; KO, 8.74 ± 1.71 a.u. [control] vs. 8.67 ± 1.89 a.u. [nocodazole] vs. 7.96 ± 2.35 a.u. [washout]). n = 3. ** P < 0.01 (Kruskal–Wallis test followed by Steel–Dwass test). Bars and error bars represent the mean ± standard deviation (SD). In vitro MLC phosphorylation assay using 1 μg MTs in addition to 25 ng GST‐MLC, 4 ng GST‐ROCK1 catalytic domain, 1 mM ATP, 1 μg GST‐protein phosphatase 1c β/δ (PP1c β/δ), and 0–5 μg GST‐LUZP1. Quantification of the relative ppMLC/MLC ratio to the control showed that MTs promote LUZP1‐mediated inhibition of PP1c β/δ (1.00 [1 st ‐lane, control] vs. 1.42 ± 0.59 [2 nd ‐lane] vs. 1.72 ± 0.76 [3 rd ‐lane] vs. 1.99 ± 0.56 [4 th ‐lane] vs. 1.14 ± 0.37 [5 th ‐lane] vs. 2.87 ± 1.51 [6 th ‐lane] vs. 2.74 ± 1.19 [7 th ‐lane] vs. 2.50 ± 0.88 [8 th ‐lane]). n = 6. * P < 0.05 (Kruskal–Wallis test followed by Steel test [compared with 1 st lane]). Bars and error bars represent the mean ± SD. A schematic drawing of the relationships among MTs, ppMLC, LUZP1, and myosin phosphatase at TJ‐associated CRs to promote apical constriction. Source data are available online for this figure.
Article Snippet:
Techniques: Expressing, Knock-Out, Standard Deviation, In Vitro, Phosphorylation Assay, Inhibition
Journal: The EMBO Journal
Article Title: A microtubule‐LUZP1 association around tight junction promotes epithelial cell apical constriction
doi: 10.15252/embj.2020104712
Figure Lengend Snippet:
Article Snippet:
Techniques: Recombinant, Plasmid Preparation, Sequencing, Transfection, Protease Inhibitor, Purification, Western Blot, Blocking Assay, Software, Imaging, Modification
Journal: Methods in molecular biology (Clifton, N.J.)
Article Title: Use of Inhibitors in the Study of MAP Kinases
doi: 10.1007/978-1-60761-795-2_6
Figure Lengend Snippet: List of antibodies for the phosphorylated and phosphorylation-independent (total) forms of MAP kinases and phosphorylated forms of MAP kinase substrate proteins
Article Snippet: See for a list of many of the antibodies used to study the phosphorylation status of the major MAP kinases and their substrates. table ft1 table-wrap mode="anchored" t5 caption a7 Protein targets Antibody (phosphorylation site recognized) Vendor (catalog#) ERK1/2 Activated ERK1/2 (Thr185/Tyr187) Sigma-Aldrich (M9692) Santa Cruz Biotechnology (sc-16982) EMD Biosciences (442706) Epitomics (148101) Total ERK2 Epitomics (1586-1) Santa Cruz Biotechnology (sc-154) EMD Bioscience (442685) Total ERK1 Santa Cruz Biotechnology (sc-94) p38α, β, γ Activated p38 MAP kinase (Thr180/Tyr182) Cell Signaling Technology (CST) (9211) Epitomics (1229-1) Total p38α, β, γ MAP kinase CST (9212) EMD Biosciences (506123) Epitomics (1544-1) JNK1/2 Activated JNK1/2 MAP kinase (Thr183/Tyr185) Santa Cruz Biotechnology (sc-6254) CST (9251) Total JNK1 Santa Cruz Biotechnology (sc-1648) Total JNK2 Santa Cruz Biotechnology (sc-572) ERK5 Activated pERK5 MAP kinase (Thr218/Tyr220) CST (2271) Total ERK5 Epitomics (1719-1) Millipore (07-039) Sigma-Aldrich (E1523) Phosphorylated ERK1/2 substrates p90RSK-1 (Thr573) CST (9346) BD Biosciences (610225) ELK-1 (S383) CST (9186) c-Myc (T58/S62) CST (9401) MNK-1 (T197/T202) CST (2111) PPAR-γ (S112) Millipore (05-816) Connexin-43 (S255) Santa Cruz Biotechnology (sc-12899-R) Tyrosine Hydroxylase (S31) Millipore (AB5423) Estrogen receptor-α (S118) Epitomics (1091-1) Tau (S199/S202) Biosource (44-768G) Epitomics (1242-1) eEF2 (T56/T58) Epitomics (1853-1) eIF-2a (S51) Epitomics (1090-1) eIF-4B (S504) Epitomics (2260-1) eIF-4E (S209) Epitomics (2227-1) ATF-2 (T71) CST (9221) Epitomics (1268-1)
Techniques: Phospho-proteomics
Journal: Methods in molecular biology (Clifton, N.J.)
Article Title: Use of Inhibitors in the Study of MAP Kinases
doi: 10.1007/978-1-60761-795-2_6
Figure Lengend Snippet: (a) Immunoblots of active ERK1/2 (ppERK1/2) and phosphorylated p90Rsk-1 (pRsk-1) in HeLa cell lysates following treatment with EGF for 5 min in the absence or presence of the MEK1/2 inhibitor U0126. The expression of α-tubulin was used as a protein loading control. (b) Immunoblots of active p38 MAP kinase (p-p38) in HeLa cell lysates following treatment with anisomycin in the absence or presence of SB203580. Total p38 MAP kinase expression was used as a protein loading control.
Article Snippet: See for a list of many of the antibodies used to study the phosphorylation status of the major MAP kinases and their substrates. table ft1 table-wrap mode="anchored" t5 caption a7 Protein targets Antibody (phosphorylation site recognized) Vendor (catalog#) ERK1/2 Activated ERK1/2 (Thr185/Tyr187) Sigma-Aldrich (M9692) Santa Cruz Biotechnology (sc-16982) EMD Biosciences (442706) Epitomics (148101) Total ERK2 Epitomics (1586-1) Santa Cruz Biotechnology (sc-154) EMD Bioscience (442685) Total ERK1 Santa Cruz Biotechnology (sc-94) p38α, β, γ Activated p38 MAP kinase (Thr180/Tyr182) Cell Signaling Technology (CST) (9211) Epitomics (1229-1) Total p38α, β, γ MAP kinase CST (9212) EMD Biosciences (506123) Epitomics (1544-1) JNK1/2 Activated JNK1/2 MAP kinase (Thr183/Tyr185) Santa Cruz Biotechnology (sc-6254) CST (9251) Total JNK1 Santa Cruz Biotechnology (sc-1648) Total JNK2 Santa Cruz Biotechnology (sc-572) ERK5 Activated pERK5 MAP kinase (Thr218/Tyr220) CST (2271) Total ERK5 Epitomics (1719-1) Millipore (07-039) Sigma-Aldrich (E1523) Phosphorylated ERK1/2 substrates p90RSK-1 (Thr573) CST (9346) BD Biosciences (610225) ELK-1 (S383) CST (9186) c-Myc (T58/S62) CST (9401) MNK-1 (T197/T202) CST (2111) PPAR-γ (S112) Millipore (05-816) Connexin-43 (S255) Santa Cruz Biotechnology (sc-12899-R) Tyrosine Hydroxylase (S31) Millipore (AB5423) Estrogen receptor-α (S118) Epitomics (1091-1) Tau (S199/S202) Biosource (44-768G) Epitomics (1242-1) eEF2 (T56/T58) Epitomics (1853-1) eIF-2a (S51) Epitomics (1090-1) eIF-4B (S504) Epitomics (2260-1) eIF-4E (S209) Epitomics (2227-1) ATF-2 (T71) CST (9221) Epitomics (1268-1)
Techniques: Western Blot, Expressing, Control
Journal: Journal of Biological Chemistry
Article Title: IL-1β-induced and p38MAPK-dependent activation of the mitogen-activated protein kinase-activated protein kinase 2 (MK2) in hepatocytes: Signal transduction with robust and concentration-independent signal amplification
doi: 10.1074/jbc.m117.775023
Figure Lengend Snippet: Figure 1: Quantification of p38MAPK phosphorylation in primary mouse hepatocytes.
Article Snippet: A.) while for in vitro phosphorylation of
Techniques: Phospho-proteomics
Journal: Journal of Biological Chemistry
Article Title: IL-1β-induced and p38MAPK-dependent activation of the mitogen-activated protein kinase-activated protein kinase 2 (MK2) in hepatocytes: Signal transduction with robust and concentration-independent signal amplification
doi: 10.1074/jbc.m117.775023
Figure Lengend Snippet: Figure 2: ODE Model of IL-1 dependent p38MAPK/MK2 activation and fit to experimental data
Article Snippet: A.) while for in vitro phosphorylation of
Techniques: Activation Assay
Journal: Journal of Biological Chemistry
Article Title: IL-1β-induced and p38MAPK-dependent activation of the mitogen-activated protein kinase-activated protein kinase 2 (MK2) in hepatocytes: Signal transduction with robust and concentration-independent signal amplification
doi: 10.1074/jbc.m117.775023
Figure Lengend Snippet: Figure 4: Simulation of the p38MAPK and MK2 phosphorylation kinetics as a function of IL-1 concentration and time
Article Snippet: A.) while for in vitro phosphorylation of
Techniques: Phospho-proteomics, Concentration Assay
Journal: Journal of Biological Chemistry
Article Title: IL-1β-induced and p38MAPK-dependent activation of the mitogen-activated protein kinase-activated protein kinase 2 (MK2) in hepatocytes: Signal transduction with robust and concentration-independent signal amplification
doi: 10.1074/jbc.m117.775023
Figure Lengend Snippet: Figure 8: Schematic representation of the signal amplification within the IL-1 induced p38MAPK and MK2 pathway.
Article Snippet: A.) while for in vitro phosphorylation of
Techniques: Amplification
Journal: Scientific Reports
Article Title: Development of an orally available inhibitor of CLK1 for skipping a mutated dystrophin exon in Duchenne muscular dystrophy
doi: 10.1038/srep46126
Figure Lengend Snippet: ( a ) TG693 and TG003 chemical structures. ( b ) Pharmacokinetic profile of TG693 after a single 30 mg kg −1 dose administered by subcutaneous injection in imprinting control region (ICR) mice. Data indicate the mean ± SEM (n = 3). ( c ) Recombinant CLK1 was incubated with the substrate peptide in the presence of the indicated concentrations of small molecules. Data represent the means ± SD (n = 3). Representative dose-response curves with Hill slopes are shown. ( d ) TG693 competitive ATP inhibition is shown in Michaelis-Menten (left) and Hanes-Woolf (right) plots. CLK1 kinase activity was measured at the indicated concentrations of TG693 and ATP. Velocity was plotted versus [ATP] and [ATP]/velocity was plotted versus [ATP]. ( e ) Map of the inhibitory activities of TG693 on a kinase dendrogram. Percent inhibition by 1 μM TG693 was measured for a panel of 313 kinases. Red circles indicate the inhibited kinases and are sized according to percent inhibition. The illustration was reproduced courtesy of Cell Signaling Technology, Inc. ( www.cellsignal.com ).
Article Snippet: The reaction mixture containing serially diluted inhibitors, 10 mM MOPS-KOH (pH 6.5), 10 mM magnesium chloride, 200 μM EDTA, 1 μM ATP, 0.167 μCi of [γ- 32 P] ATP, 0.417 μg of synthetic RS peptide, and recombinant GST-tagged
Techniques: Injection, Recombinant, Incubation, Inhibition, Activity Assay
Journal: Scientific Reports
Article Title: Development of an orally available inhibitor of CLK1 for skipping a mutated dystrophin exon in Duchenne muscular dystrophy
doi: 10.1038/srep46126
Figure Lengend Snippet: ( a ) SR protein phosphorylation was assessed in HeLa cells treated with TG693 and TG003 for 1 h. Lamin B served as a loading control. Uncropped images have been provided in . ( b , c ) Effect of TG693 on exon 31 skipping with the reporter plasmid. Transfected HeLa cells were incubated in the presence of TG693, TG003, or DMSO vehicle for 24 h. Reporter and endogenous CLK1 splicing was then analyzed by RT-PCR. GAPDH served as a control. The Splicing ratios were quantified by intensity analysis and normalized to GAPDH expression. Uncropped images have been provided in and , respectively. Data represent the means ± SD (n = 3).
Article Snippet: The reaction mixture containing serially diluted inhibitors, 10 mM MOPS-KOH (pH 6.5), 10 mM magnesium chloride, 200 μM EDTA, 1 μM ATP, 0.167 μCi of [γ- 32 P] ATP, 0.417 μg of synthetic RS peptide, and recombinant GST-tagged
Techniques: Plasmid Preparation, Transfection, Incubation, Reverse Transcription Polymerase Chain Reaction, Expressing
Journal: Scientific Reports
Article Title: Development of an orally available inhibitor of CLK1 for skipping a mutated dystrophin exon in Duchenne muscular dystrophy
doi: 10.1038/srep46126
Figure Lengend Snippet: ( a ) TG693 bioavailability in the tibialis anterior (TA) muscle of ICR mice after oral administration of a single 30 mg kg −1 dose. Data represent the mean ± SEM (n = 3). ( b ) SR protein phosphorylation status in the TA muscle of ICR mice after oral administration. Lamin B served as a loading control. SRSF4 phosphorylation was quantified by densitometry. Uncropped images are provided in . Data represent means ± SD (n = 5). * p < 0.05. ( c,d ) Clk1 expression in the TA muscle, heart and diaphragm were analyzed by RT-PCR with a GAPDH internal control. Uncropped images are provided in and in , respectively. Data represent the means ± SD (n = 3). * p < 0.05.
Article Snippet: The reaction mixture containing serially diluted inhibitors, 10 mM MOPS-KOH (pH 6.5), 10 mM magnesium chloride, 200 μM EDTA, 1 μM ATP, 0.167 μCi of [γ- 32 P] ATP, 0.417 μg of synthetic RS peptide, and recombinant GST-tagged
Techniques: Expressing, Reverse Transcription Polymerase Chain Reaction
Journal: eLife
Article Title: Selective inhibition reveals the regulatory function of DYRK2 in protein synthesis and calcium entry
doi: 10.7554/eLife.77696
Figure Lengend Snippet: ( A ) Chemical structure of C17. ( B ) IC 50 values of C17 against DYRK1A, DYRKIB, DYRK3, Haspin and MARK3. ( C ) Kinome profiling of C17 at 500 nM was carried out using 468 human kinases ( https://www.discoverx.com/ ). ( D ) C17 inhibits Rpt3-Thr25 phosphorylation. HEK293T cells stably expressing FLAG-DYRK2 were treated with the indicated concentrations of C17 for 1 hr. The cells were lysed, and immunoblotting was carried out with the indicated antibodies. Figure 2—source data 1. Raw data of C17 Kinome profiling list for . Figure 2—source data 2. Raw data of western blot for .
Article Snippet: peptide, recombinant protein ,
Techniques: Stable Transfection, Expressing, Western Blot
Journal: eLife
Article Title: Selective inhibition reveals the regulatory function of DYRK2 in protein synthesis and calcium entry
doi: 10.7554/eLife.77696
Figure Lengend Snippet: ( A–E ) IC 50 of C17 on DYRK2, DYRK1A, DYRK1B, DYRK3, Haspin and MARK3. The IC 50 graph was plotted using GraphPad Prism 8.4.0 software. The results are presented as the percentage of kinase activity relative to the DMSO-treated control. Results are means ± SD for triplicate reactions with similar results obtained in at least one other experiment.
Article Snippet: peptide, recombinant protein ,
Techniques: Software, Activity Assay
Journal: eLife
Article Title: Selective inhibition reveals the regulatory function of DYRK2 in protein synthesis and calcium entry
doi: 10.7554/eLife.77696
Figure Lengend Snippet:
Article Snippet: peptide, recombinant protein ,
Techniques: Recombinant, Plasmid Preparation, Generated, Modification, Transfection, Protease Inhibitor, Bicinchoninic Acid Protein Assay, Kinase Assay, Software
Journal: Drug Design, Development and Therapy
Article Title: Design, Synthesis, and Biological Evaluation of 2-Anilino-4-Triazolpyrimidine Derivatives as CDK4/HDACs Inhibitors
doi: 10.2147/DDDT.S351049
Figure Lengend Snippet: Enzymatic Inhibitory Activities of Compounds 11a~11k and 16a~16c
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Techniques:
Journal: The Journal of Biological Chemistry
Article Title: The protein kinase MAP3K19 phosphorylates MAP2Ks and thereby activates ERK and JNK kinases and increases viability of KRAS-mutant lung cancer cells
doi: 10.1074/jbc.RA119.012365
Figure Lengend Snippet: MAP3K19 maintains MEK phosphorylation in the presence of RAF inhibitors. A, 48 h after transfection with EV, MAP3K19-WT, or MLK1-WT HEK293T cells were treated with DMSO vehicle control, 1 μm L779450, 1 μm AZD6244, or a combination of both RAF and MEK inhibitors for 1 h, and Western blotting was performed on cell lysates. B, 48 h after transfection with EV, WT, or KD-MAP3K19, HEK293T cells were treated with DMSO vehicle control or indicated inhibitors: 1 μm vemurafenib (BRAFi), 1 μm selumetinib (S, MEKi), or 500 nm cobimetinib (C, MEKi) for 1 h, and Western blotting was performed on cell lysates. Band density was quantified by ImageJ software. The data are shown as mean phospho:total protein density ± S.D. Dunnett's multiple comparisons test was used for statistical analysis, with EV-DMSO group as control. *, p < 0.05; **, p < 0.01; ***, p < 0.001.
Article Snippet: In vitro kinase assay Recombinant human GST-tagged MAP3K19 (YSK4) kinase domain (Thermo Fisher Scientific) or
Techniques: Transfection, Western Blot, Software
Journal: The Journal of Biological Chemistry
Article Title: The protein kinase MAP3K19 phosphorylates MAP2Ks and thereby activates ERK and JNK kinases and increases viability of KRAS-mutant lung cancer cells
doi: 10.1074/jbc.RA119.012365
Figure Lengend Snippet: MAP3K19 directly phosphorylates MAP2Ks. A, MAP3K19 was immunoprecipitated (IP) from HEK293T cells and subjected to a kinase assay with kinase-inactive MEK1. B and C, in vitro kinase assay using recombinant MAP3K19 protein and kinase-inactive MEK1 or ERK2, respectively. D, kinase-inactive MEK1 and purified GST-MAP3K19 or GST-MLK1 kinase domain were subjected to in vitro kinase assay in the presence or absence of inhibitors: 5 μm L779450, 1 μm PLX4032, 5 μm U0126, or 2 μm AZD6244. E and F, in vitro kinase assay using recombinant MAP3K19 protein and kinase-inactive MKK7 or JNK1/2, respectively. The data are shown as mean phospho:total protein density ± S.D. Dunnett's multiple comparisons test was used for statistical analysis, with samples in the first lane as control. *, p < 0.05; **, p < 0.01; ***, p < 0.001; ♢, kinase-inactive.
Article Snippet: In vitro kinase assay Recombinant human GST-tagged MAP3K19 (YSK4) kinase domain (Thermo Fisher Scientific) or
Techniques: Immunoprecipitation, Kinase Assay, In Vitro, Recombinant, Purification