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Intravital Microscopy of Tumor-associated Vasculature Using Advanced Dorsal Skinfold Window Chambers on Transgenic Fluorescent Mice
Published on: January 19, 2018
Tumor vessel normalization by the PI3K inhibitor HS-173 enhances drug delivery
Soo Jung Kim1, Kyung Hee Jung1, Mi Kwon Son1
1Department of Medicine, College of Medicine, Inha University, 3-ga, Sinheung-dong, Jung-gu, Incheon, 400-712, Republic of Korea.
Abstract:
Tumor vessels are leaky and immature, which causes poor oxygen and nutrient supply to tumor vessels and results in cancer cell metastasis to distant organs. This instability of tumor blood vessels also makes it difficult for anticancer drugs to penetrate and reach tumors. Numerous tumor vessel normalization approaches have been investigated for improving drug delivery into tumors. In this study, we investigated whether phosphoinositide 3-kinase (PI3K) inhibitors are able to improve vascular structure and function over the prolonged period necessary to achieve effective vessel normalization. The PI3K inhibitors, HS-173 and BEZ235 potently suppressed tumor growth and hypoxia, and increased tumor apoptosis in animal models. PI3K inhibitors also induced a regular, flat monolayer of endothelial cells (ECs) in vessels, improving stability of vessel structure, and normalized tumor vessels by increasing vascular maturity, pericyte coverage, basement membrane thickness, and tight-junctions. These effects resulted in a decrease in tumor vessel tortuosity and vessel thinning, and improved vessel function and blood flow. The tumor vessel stabilization effect of the PI3K inhibitor HS-173 also decreased the number of metastatic lung nodules in vivo metastasis model. Furthermore, HS-173 improved the delivery of doxorubicin into the tumor region, enhancing its anticancer effects. Mechanistic studies suggested that PI3K inhibitor HS-173-induced vessel normalization reflected changes in endothelial Notch signaling. Taken together, our findings indicate that vessel normalization by PI3K inhibitors restrained tumor growth and metastasis while improving chemotherapy by enhancing drug delivery into the tumor, suggesting that HS-173 may have a therapeutic value as an enhancer or an anticancer drug.
Insights
Phosphoinositide 3-kinase (PI3K) inhibitors normalize tumor blood vessels, improving chemotherapy delivery and reducing cancer metastasis. This suggests PI3K inhibitors like HS-173 hold therapeutic potential for cancer treatment.
Area of Science:
- Oncology
- Vascular Biology
- Pharmacology
Background:
- Tumor vessels are immature and leaky, hindering drug delivery and promoting metastasis.
- Effective cancer therapy requires normalizing tumor vasculature for better drug penetration and reduced tumor burden.
Purpose of the Study:
- To investigate the efficacy of phosphoinositide 3-kinase (PI3K) inhibitors in normalizing tumor vasculature.
- To assess the impact of PI3K inhibition on tumor growth, metastasis, and chemotherapy delivery.
Main Methods:
- Administration of PI3K inhibitors (HS-173, BEZ235) to animal models.
- Evaluation of tumor vessel structure, function, and maturity.
- Assessment of tumor growth, apoptosis, metastasis, and drug delivery efficacy.
Main Results:
- PI3K inhibitors suppressed tumor growth, reduced hypoxia, and increased apoptosis.
- Inhibitors normalized tumor vessels by improving endothelial cell structure, pericyte coverage, and basement membrane thickness.
- HS-173 decreased lung metastasis and enhanced doxorubicin delivery, improving anticancer effects.
Conclusions:
- PI3K inhibitors effectively normalize tumor vasculature, restraining tumor growth and metastasis.
- Vessel normalization by PI3K inhibitors enhances chemotherapy efficacy through improved drug delivery.
- HS-173 demonstrates therapeutic potential as an anticancer agent or adjuvant therapy.
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