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Updated: Aug 11, 2026

A Simple Bioassay for the Evaluation of Vascular Endothelial Growth Factors
Published on: March 15, 2016
ERKs activation and calcium signaling are both required for VEGF induction by vanadium in mouse epidermal Cl41 cells
Jingxia Li1, Qiangsong Tong, Xianglin Shi
1Nelson Institute of Environmental Medicine, School of Medicine, New York University, Old Forge Road, Tuxedo, New York 10987, USA.
Abstract:
The previous studies have demonstrated that vanadium exposure can cause a variety of biological effects. However, the mechanisms involved in the biological effects caused by vanadium are not well understood. Our previous studies have shown that exposure of mouse epidermal Cl 41 cells to vanadate stimulated the phosphorylation of both ERKs and p38K, and calcium signaling leading NFAT activation. In view of the evidence that ERKs and p38 kinase contribute to VEGF induction, we investigated in the present study the potential roles of ERKs, p38K, and calcium signaling in VEGF induction caused by vanadium exposure. Exposure of Cl 41 cells to vanadium led to VEGF induction in both time- and dose-dependent manners. Pre-treatment of Cl 41 cells with PD98059, an inhibitor of MEK1/2-ERKs pathway, but not SB202190, an inhibitor for p38K pathway, resulted in a dramatic inhibition of VEGF induction by vanadium. More interesting, pre-treatment of Cl 41 cells with intracellular calcium chelator, but not calcium channel blocker, resulted in a dramatic decrease in VEGF induction by vanadium. However, both PI-3K inhibitors and overexpression of Deltap85, a dominant negative PI-3K mutant, resulted in only a marginal decrease in VEGF induction by vanadium. Moreover, mTOR, as a downstream molecule of PI-3K, did not attribute to VEGF induction by vanadium because rapamycin pre-treatment did not show any inhibitory effect on VEGF induction. These results indicate that ERKs and intracellular stored calcium release play a critical role in VEGF induction by vanadium. PI-3K is partially involved in VEGF induction by vanadium, while p38K and mTOR are not involved. Those results will help us to understand the molecular mechanisms involved in vanadium-induced biological effects.
Insights
Vanadium exposure stimulates vascular endothelial growth factor (VEGF) induction. Extracellular signal-regulated kinases (ERKs) and intracellular calcium release are critical for this effect, while p38 kinase and mTOR are not involved.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Vanadium exposure causes various biological effects, but the underlying mechanisms remain unclear.
- Previous research indicated vanadate stimulates ERK and p38 kinase phosphorylation, and calcium signaling leading to NFAT activation.
- ERK and p38 kinase are known to contribute to VEGF induction.
Purpose of the Study:
- To investigate the roles of ERKs, p38 kinase, and calcium signaling in vanadium-induced VEGF induction.
- To elucidate the molecular mechanisms behind vanadium's biological effects.
Main Methods:
- Exposure of mouse epidermal Cl 41 cells to vanadium.
- Treatment with pathway inhibitors: PD98059 (MEK1/2-ERKs), SB202190 (p38K).
- Use of intracellular calcium chelator and calcium channel blocker.
- Involvement of PI-3K pathway assessed using inhibitors and a dominant-negative mutant (Deltap85).
- Role of mTOR investigated using rapamycin.
Main Results:
- Vanadium exposure induced VEGF in a time- and dose-dependent manner.
- PD98059 significantly inhibited vanadium-induced VEGF, while SB202190 did not.
- Intracellular calcium chelator decreased VEGF induction, but calcium channel blockers had no effect.
- PI-3K inhibition and Deltap85 expression only marginally reduced VEGF induction.
- Rapamycin did not inhibit VEGF induction, indicating mTOR is not involved.
Conclusions:
- Extracellular signal-regulated kinases (ERKs) and intracellular stored calcium release are critical for vanadium-induced VEGF.
- Phosphatidylinositol 3-kinase (PI-3K) is partially involved in this process.
- p38 kinase and mammalian target of rapamycin (mTOR) do not play a significant role in vanadium-induced VEGF production.
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