| Literature DB >> 33304925 |
Rei J Abe1, Hannah Savage2, Masaki Imanishi3, Priyanka Banerjee1, Sivareddy Kotla3, Jesus Paez-Mayorga1, Jack Taunton4, Keigi Fujiwara3, Jong Hak Won3, Syed Wamique Yusuf3, Nicolas L Palaskas3, Jose Banchs3, Steven H Lin5, Keri L Schadler2, Jun-Ichi Abe3, Nhat-Tu Le1.
Abstract
Previously, we reported that post-tEntities:
Keywords: EC permeability; Hippo pathway; MAGI1; SUMOylation; p90RSK
Year: 2020 PMID: 33304925 PMCID: PMC7693647 DOI: 10.3389/fcvm.2020.542485
Source DB: PubMed Journal: Front Cardiovasc Med ISSN: 2297-055X
Figure 1p90RSK increases EC permeability. (A) Automated capillary electrophoresis western analysis (WES analysis) of p90RSK protein expression level in lysates collected from human umbilical vein ECs (HUVECs) transduced with Ad-p90RSK or Ad-LacZ, β-actin served as a loading control. Protein bands are shown as pseudoblots. (B) Thb (10 U/mL)-mediated reduction in TEER values observed in the Ad-LacZ-transduced cells (blue) was accelerated in the Ad-p90RSK-transduced cells (red), as assessed by the ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. (C) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 3) (D) WES analysis of DNRSK protein expression level in lysates collected from HUVECs transduced with Ad-DNRSK or Ad-LacZ, β-actin was served as a loading control. Protein bands are shown as pseudoblots. (E) Thb (10 U/mL)-mediated reduction of TEER values observed in the Ad-LacZ-transduced cells (red) was inhibited in the Ad-DN-p90RSK-transduced cells (blue), as assessed by the ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. A reduction in TEER indicates an increase in cell barrier permeability (33) through paracellular mechanism (34). (F) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 3). Statistical significance was assessed using ANOVA followed by Bonferroni post-hoc testing for multiple group comparison. ***P < 0.001, **P < 0.01, and *P < 0.05. (G) Graph demonstrates that Thb (10 U/mL)-induced permeability in HUVECs, represented by fluorescence intensity measured in arbitrary units (a.u.), is inhibited by treatment with the specific p90RSK inhibitor FMK-MEA (10 uM). An increase in fluorescence intensity indicates an increase in cell barrier permeability (35, 36). Statistical significance was assessed using ANOVA followed by Bonferroni post-hoc testing for multiple group comparison. **P < 0.01.
Figure 2MAGI1 is required to maintain EC barrier function. (A) WES analysis of MAGI1 protein expression level in lysates collected from HUVECs transduced with Ad-MAGI1 or Ad-LacZ, β-actin served as a loading control. Protein bands are shown as pseudoblots. (B) Thb (10 U/mL)-mediated reduction in TEER values observed in cells transduced with Ad-LacZ (red) was inhibited in cells transduced with Ad-MAGI1 (blue), as assessed by ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. (C) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 3). (D) IB analysis of MAGI1 protein expression level in lysates collected from human aortic ECs (HAECs) treated with MAGI1 siRNA (siMAGI1) (100 nM, 48 h) or control siRNA (siCTRL), tubulin served as a loading control. (E) Thb (5 U/mL)-mediated reduction in TEER values observed in cells treated with siCTRL (blue) was increased to a greater extent in cells treated with siMAGI1 (red), as assessed by the ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. A reduction in TEER values indicates an increase in cell barrier permeability (33) through paracellular mechanisms (34). (F) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 4). Statistical significance was assessed using ANOVA followed by Bonferroni post-hoc testing for multiple group comparison. ***P < 0.001 and *P < 0.05.
Figure 3MAGI1 S741 phosphorylation and de-SUMOylation regulates EC permeability. (A) Schematic illustration of MAGI1 PTMs and cellular localization. (B) IB analysis of MAGI1 protein expression level in lysates collected from HAECs transduced with Ad-LacZ, -MAGI1-WT, or -S741A phosphorylation mutant, tubulin served as a loading control. (C) Thb (2.5 U/mL)-mediated reduction in TEER values observed in cells transduced with MAGI1-WT (blue) was significantly inhibited in cells transduced with the MAGI1-S741A phosphorylation mutant (red) as assessed by the ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. (D) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 4) (E) HUVECs transduced with Ad-Flag-MAGI1-WT or -K931R were treated with Thb (1 h) and then immunostained with a Flag antibody (green) (F) IB analysis of MAGI1 protein expression level in lysates collected from HAECs transduced by Ad-MAGI1 K931R mutant, Ad-MAGI1-WT, and Ad-LacZ, tubulin served as a loading control. (G) Thb (2.5 U/mL)-mediated reduction in TEER values observed in cells transduced with Ad-MAGI1 WT (blue) was increased to a greater extent in cells transduced with Ad-MAGI1 K931R mutant (red), as assessed by ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. A reduction in TEER indicates an increase in cell barrier permeability (33) through paracellular mechanisms (34). (H) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 4). Statistical significance was assessed using ANOVA followed by Bonferroni post-hoc testing for multiple group comparison. ***P < 0.001 and **P < 0.01.
Figure 4The depletion of MAGI1 increases LATS1/2 expression, but the depletion of LATS1/2 shows no effect on MAGI1 expression. (A–C) Levels of MAGI1 and LATS1/2 mRNA expression were quantified in HAECs treated with siMAGI1 with or without siLATS1 and siLATS2, or siCTRL (mean ± SEM, n = 4). (D) Wes analysis of MAGI1 and LATS1/2 protein expression levels in cell lysates collected from HAECs treated with siMAGI1 (100 nM, 48 h), actin serves as a loading control. (E) Quantification of MAGI1 and LATS1/2 expression shown in (D) (mean ± SEM, n = 3). Statistical differences between two independent groups (E,F) were assessed using the Student t-test (two-tailed), and one-way analysis of variance followed by Bonferroni post-hoc testing for multiple group. ***P < 0.001, **P < 0.01, and *P < 0.05.
Figure 5The depletion of LATS1/2 inhibits EC permeability. (A–D) Thb (2.5 U/mL)-mediated reduction in TEER values observed in HAECs treated with siCTRL (blue, A–D) was inhibited in cells treated with siLATS1 (A,B) or siLATS2 (C,D), as assessed by ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. A reduction in TEER indicates an increase in cell barrier permeability (33) through paracellular mechanisms (34). (B,D) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 3–4). Statistical significance was assessed using ANOVA followed by Bonferroni post-hoc testing for multiple group comparison. ***P < 0.001 and **P < 0.01. (E) Graph demonstrates that Thb (10 U/mL)-induced permeability in HUVECs treated with siCTRL, represented by fluorescence intensity measured in arbitrary units (a.u.), is further increased in HUVECs treated with siYAP (100 nM, 48 h). An increase in fluorescence intensity indicates an increase in cell barrier permeability (35, 36). Statistical significance was assessed using ANOVA followed by Bonferroni post-hoc testing for multiple group comparison. *P < 0.05.
Figure 6YAP is required in the maintenance of EC barrier function, especially in LATS1/2 depleted condition. (A) HAECs were transfected with (Left panel) either siLATS1 or siYAP, or the combination of siLATS1 and siYAP; (Right panel) either siLATS2 or siYAP, or the combination of siLATS2 and siYAP, and IB analyses of LATS1/2 and YAP protein expression levels in resulting cell lysates were performed using anti-LATS1 or 2, anti-YAP, anti-β-actin as indicated (B–E). Thb (2.5 U/mL)-mediated reduction in TEER values observed in cells transfected with siLATS1 (A left panel, blue in B,C), siLATS2 (A right panel, blue in D,E) was increased to a greater extent by siYAP transfection, as assessed by the ECIS system and shown as normalized resistance measured approximately every 4 min for indicated times. The dashed line indicates addition of Thb. A reduction in TEER values indicates an increase in cell barrier permeability (33) through paracellular mechanisms (34). (C,E) Graph demonstrates normalized resistance after Thb treatment at indicated times, relative to basal level (mean ± SEM, n = 3). Statistical significance was assessed using ANOVA followed by Bonferroni post-hoc testing for multiple group comparison. ***P < 0.001, **P < 0.01, and *P < 0.05. (F) Scheme of MAGI1-mediated Hippo pathway regulation.
Figure 7Pharmacological inhibition of p90RSK reduces tumor vessel permeability without altering vascular structure or tumor growth. (A) Experimental scheme of mouse experiment. (B) A673 Ewing sarcoma orthotopic tumor volumes were plotted over time (means ± SEM, n = 10 mice/treatment). (C–F) Tumor vasculature structural analysis was performed by quantifying number of vessels, average vessel length, number of vessels >100 um, number of open lumens, and microvessel density in 5 random fields/tumor (means ± SEM, n = 10/group). Statistical significance was assessed using student's t-test. (G) Representative images of FITC-dextran (green), CD31 (red), and DAPI (blue) immunofluorescence. (H,I) Tumor vessel permeability was compared between treatment groups using dextran:CD31 quantification (means ± SEM, n = 10/group). Statistical significance was assessed using student's t-test. *P < 0.05, **P < 0.01, ***P < 0.001.
Figure 8FMK-MEA reduces p90RSK activation in CD34+ but not CD34− cells in A673 Ewing sarcoma orthotopic tumor. (A) After 20 days of injection of A673 Ewing sarcoma cells as described in Figure 7A, tumors were isolated and IB analysis of p90RSK phosphorylation, p90RSK protein expression level in resulted cell lysates was performed using anti-p-p90RSK, p90RSK, and b-actin antibodies as indicated (left). (B) Graph shows densitometric quantification of phosphorylated p90RSK, which was normalized by total p90RSK protein levels. Data represent mean ± S.D., n = 7, *p < 0.05, (C,D) Representative images of FITC-dextran (green), CD34 (red), p-p90RSK (C), or p90RSK (D) (blue) in A673 Ewing sarcoma tumor samples. (E,F) Co-localization between CD34 and p-p90RSK (E) or p90RSK (F) staining was quantified in 5 random fields/tumor using Pearson's correlation coefficient. Data represent mean ± S.D., n = 4, *p < 0.05, (G) Around 100–200 cells of CD34 negative but p-p90RSK positive or negative cells were counted from 5 random fields/tumor, and ratios per all counted cells by CD34 negative were calculated. Data represent mean ± S.D. N.S. = not significant. All the statistical analyses were performed by unpaired 2-tailed t-test.
The information of antibodies used in this work.
| p90RSK | Novus Biologicals | MAB2056 |
| p-p90RSK | Cell Signaling | 9341S |
| MAGI1 | Santa Cruz Biotechnology | sc-100326 |
| Tubulin | Sigma-Aldrich | T9026-.2ML |
| LATS1/2 | MyBioSource | MBS8241758 |
| LATS1 | Bethyl | A300-478A-M |
| LATS2 | Abcam | Ab110780 |
| YAP | Cell Signaling | 4912S |
| p-YAP S127 | Cell Signaling | 4911S |
| Mouse anti β-actin | Novus Biologicals | NBP1-47423 |
| Rabbit anti β-actin | Novus Biologicals | NB600-532 |