Caveolin-1 Regulates P2Y2 Receptor Signaling during Mechanical Injury in Human 1321N1 Astrocytoma
<p>shRNA-mediated knockdown of caveolin-1 expression of 1321N1 astrocytoma cells. (<b>A</b>) Immunoblot analysis of hHAP2Y<sub>2</sub>R, caveolin-1 (Cav-1), and GAPDH (control) expression in serum-starved wild-type (WT) 1321N1 cells (lane 1), human 1321N1 cells expressing hHAP2Y<sub>2</sub>R (hHAP2Y<sub>2</sub>R 1321N1 cells) (lane 3), or cells infected with Cav-1 shRNA lentiviral particles (lanes 2 and 4; Cav-1 knockdown (KD)). (<b>B</b>) Densitometric analysis of immunoblots indicates the level of Cav-1 normalized to GAPDH expression. Results are presented as the means ± S.E.M. (n = 3; *** <span class="html-italic">p</span> < 0.001 as determined by one-way ANOVA).</p> "> Figure 2
<p>Cav-1 KD reduced the P2Y<sub>2</sub>R-mediated ERK1/2 phosphorylation after mechanical injury. Post-injury ERK1/2 phosphorylation time course of (<b>A</b>–<b>C</b>) Cav-1-expressing and (<b>D</b>–<b>F</b>) Cav-1 KD 1321N1 cell lines. Immunoblots for (<b>A</b>) Cav-1-expressing WT-1321N1 and (<b>B</b>) Cav-1/hHAP2Y<sub>2</sub>R-expressing 1321N1 cells. Densitometric analysis of the latter immunoblots is shown in (<b>C</b>), revealing the post-injury hHAP2Y<sub>2</sub>R-mediated increased ERK1/2 activity. Immunoblots for (<b>D</b>) Cav-1 KD WT-1321N1 and (<b>E</b>) Cav-1 KD/hHAP2Y<sub>2</sub>R-expressing 1321N1 cells. Densitometric analysis of the latter immunoblots is shown in (<b>F</b>), revealing the diminished post-injury hHAP2Y<sub>2</sub>R-mediated increased ERK1/2 activity in Cav-1KD 1321N1 cells. Cells were subjected to a severe traumatic injury and immunoblot analysis was done as described in the Materials and Methods section. ERK1/2 phosphorylation and total ERK1/2, Cav-1, and GAPDH (control) expression in equal amounts of protein were determined by Western blot analysis. Immunoblots are representative of at least three independent experiments. In (C) and (F), ERK1/2 phosphorylation was normalized using the formula: phosphorylated ERK1/2/(total ERK1/2 + GAPDH) and expressed as a percentage of untreated controls at 0 min. Values represent the means ± S.E.M. (n = 4), * <span class="html-italic">p</span> < 0.05 and *** <span class="html-italic">p</span> < 0.001 (one-way ANOVA) represent statistically significant differences between P2Y<sub>2</sub>R-devoid and P2Y<sub>2</sub>R-expressing 1321N1 cells.</p> "> Figure 3
<p>Cav-1 KD reduced the P2Y<sub>2</sub>R-mediated Akt phosphorylation after mechanical injury. Post-injury Akt phosphorylation time course of (<b>A</b>–<b>C</b>) Cav-1-expressing and (<b>D</b>–<b>F</b>) Cav-1 KD 1321N1 cell lines. Immunoblots for (<b>A</b>) Cav-1-expressing WT-1321N1 and (<b>B</b>) Cav-1/hHAP2Y<sub>2</sub>R-expressing 1321N1 cells. Densitometric analysis of the latter immunoblots is shown in (<b>C</b>), revealing the post-injury hHAP2Y<sub>2</sub>R-mediated increased Akt activity. Immunoblots for (<b>D</b>) Cav-1 KD WT-1321N1 and (<b>E</b>) Cav-1 KD/hHAP2Y<sub>2</sub>R-expressing 1321N1 cells. Densitometric analysis of the latter immunoblots is shown in (<b>F</b>), revealing the diminished post-injury hHAP2Y2R-mediated increased Akt activity in Cav-1 KD 1321N1 cells. Cells were lysed and Akt phosphorylation on Ser473 and total Akt, Cav-1, and GAPDH (control) expression in equal amounts of protein were determined by Western blot analysis. Immunoblots are representative of at least three independent experiments. In panels C and F, Akt phosphorylation on Ser473 was normalized using the formula: phosphorylated Akt/(pan Akt + GAPDH) and expressed as a percentage of untreated controls at 0 min. Values represent the means ± S.E.M. (n = 4), where * <span class="html-italic">p</span> < 0.05, ** <span class="html-italic">p</span> < 0.01, and *** <span class="html-italic">p</span> < 0.001 (one-way ANOVA) represent statistically significant differences between P2Y<sub>2</sub>R-devoid and P2Y<sub>2</sub>R-expressing 1321N1 cells.</p> "> Figure 4
<p>Cav-1 KD inhibits the (<b>A</b>) P2Y<sub>2</sub>R-mediated increased cell viability and (<b>B</b>) anti-apoptotic action after mechanical injury. The relative expression of both P2Y<sub>2</sub>R and Cav-1 are indicated on the <span class="html-italic">x</span>-axes of panels (<b>A</b>) and (<b>B</b>). After injury, cell cultures were returned to the incubator and further incubated for 24 h. Cell viability and caspase-9 activity were measured using AB and caspase-9 fluorometric kit, as described in the Materials and Methods section. Uninjured cells in wells of Flex Plates served as controls. Values are mean ± S.E.M. (n = 4) expressed as a percentage of responses in non-injured cells (upper panel). *** <span class="html-italic">p</span> < 0.001, * <span class="html-italic">p</span> < 0.05 (one-way ANOVA).</p> "> Figure 5
<p>Caveolin-1 is necessary for the P2Y<sub>2</sub>R anti-apoptotic action in 1321N1 cells after mechanical injury. A schematic representation describing the Cav-1-dependent P2Y<sub>2</sub>R-mediated signaling pathways investigated in this study. (<b>A</b>) Nucleotide agonists’ activation of the P2Y<sub>2</sub>R signaling pathways and subsequent antiapoptotic action during mechanical injury. (<b>B</b>) Caveolin-1 knockdown leads to P2Y<sub>2</sub>R uncoupling from its signaling pathways.</p> ">
Abstract
:1. Introduction
2. Materials and Methods
2.1. Antibodies and Reagents
2.2. Cell Culture
2.3. Mechanical Injury
2.4. Mechanical Injury
2.5. Cell Viability Assay
2.6. Caspase-9 Activity
2.7. Protein Extraction
2.8. SDS-PAGE and Immunoblot Analysis
2.9. Statistical Analysis
3. Results
3.1. Cav-1 Knockdown Modulates P2Y2R Signaling Behavior after Mechanical Injury
3.2. Knockdown of Caveolin-1 Expression Inhibits hP2Y2R-Mediated Increased Cell Viability and Anti-Apoptotic Actions after Mechanical Injury
4. Discussion
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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CAV-1-EXPRESSING | CAV1 KD | |||||
---|---|---|---|---|---|---|
SIGNALING | WT-1321N1 | hHAP2Y2R 1321N1 | p-Value | CAV-1 KD 1321N1 | CAV-1 KD hHAP2Y2R 1321N1 | p-Value |
pERK1/2 | 2.33 (+/−0.48) | 20.31 (+/−2.24) | *** | 2.47 (+/−0.65) | 8.41 (+/−0.95) | * |
pAkt | 5.50 (+/−1.61) | 37.23 (+/−2.81) | *** | 8.59 (+/−1.54) | 17.93 (+/−1.50) | * |
Net P2Y2R-mediated pERK1/2 signaling | 17.98 (+/−2.284) | 5.94 (+/−0.90) | ** | |||
Net P2Y2R-mediated pAkt signaling | 31.73 (+/−3.51) | 9.35 (+/−1.13) | *** |
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Martínez, M.; Martínez, N.A.; Miranda, J.D.; Maldonado, H.M.; Silva Ortiz, W.I. Caveolin-1 Regulates P2Y2 Receptor Signaling during Mechanical Injury in Human 1321N1 Astrocytoma. Biomolecules 2019, 9, 622. https://doi.org/10.3390/biom9100622
Martínez M, Martínez NA, Miranda JD, Maldonado HM, Silva Ortiz WI. Caveolin-1 Regulates P2Y2 Receptor Signaling during Mechanical Injury in Human 1321N1 Astrocytoma. Biomolecules. 2019; 9(10):622. https://doi.org/10.3390/biom9100622
Chicago/Turabian StyleMartínez, Magdiel, Namyr A. Martínez, Jorge D. Miranda, Héctor M. Maldonado, and Walter I. Silva Ortiz. 2019. "Caveolin-1 Regulates P2Y2 Receptor Signaling during Mechanical Injury in Human 1321N1 Astrocytoma" Biomolecules 9, no. 10: 622. https://doi.org/10.3390/biom9100622
APA StyleMartínez, M., Martínez, N. A., Miranda, J. D., Maldonado, H. M., & Silva Ortiz, W. I. (2019). Caveolin-1 Regulates P2Y2 Receptor Signaling during Mechanical Injury in Human 1321N1 Astrocytoma. Biomolecules, 9(10), 622. https://doi.org/10.3390/biom9100622