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Transfer of Manipulated Tumor-associated Neutrophils into Tumor-Bearing Mice to Study their Angiogenic Potential In Vivo
Published on: July 20, 2019
Imatinib modulates pro-inflammatory microenvironment with angiostatic effects in experimental lung carcinogenesis
Shipra Puri1, Gagandeep Kaur1, Honit Piplani1,2
1Department of Biophysics, Panjab University, Chandigarh, 160014, India.
Abstract:
Lung cancer has second highest rate of incidence and mortality around the world. Smoking cigarettes is the main stream cause of lung carcinogenesis along with other factors such as spontaneous mutations, inactivation of tumor suppressor genes. The present study was aimed to identify the mechanistic role of Imatinib in the chemoprevention of experimental lung carcinogenesis in rat model. Gross morphological observations for tumor formation, histological examinations, RT-PCR, Western blotting, fluorescence spectroscopy and molecular docking studies were performed to elucidate the chemopreventive effects of Imatinib and support our hypothesis by various experiments. It is evident that immuno-compromised microenvironment inside solid tumors is responsible for tumor progression and drug resistance. Therefore, it is inevitable to modulate the pro-inflammatory signaling inside solid tumors to restrict neoangiogenesis. In the present study, we observed that Imatinib could downregulate the inflammatory signaling and also attributed angiostatic effects. Moreover, Imatinib also altered the biophysical properties of BAL cells such as plasma membrane potential, fluidity and microviscosity to restrict their infiltration and thereby accumulation to mount immuno-compromised environment inside the solid tumors during angiogenesis. Our molecular docking studies suggest that immunomodulatory and angiostatic properties of Imatinib could be either independent of each other or just a case of synergistic pleiotropy. Imatinib was observed to activate the intrinsic or mitochondrial pathway of apoptosis to achieve desired effects in cancer cell killings. Interestingly, binding of Imatinib inside the catalytic domain of PARP-1 also suggests that it has caspase-independent properties in promoting cancer cell deaths.
Insights
This study investigated Imatinib
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Lung cancer is a leading cause of global mortality.
- Carcinogenesis involves genetic mutations and tumor suppressor gene inactivation.
- Tumor microenvironments often promote progression and drug resistance.
Purpose of the Study:
- To investigate the chemopreventive mechanisms of Imatinib in experimental lung cancer.
- To explore Imatinib's role in modulating tumor microenvironments and inflammatory signaling.
- To elucidate Imatinib's effects on cancer cell apoptosis and biophysical properties.
Main Methods:
- Rat model of lung carcinogenesis.
- Gross morphological and histological tumor analysis.
- Gene expression (RT-PCR), protein analysis (Western blotting), fluorescence spectroscopy, and molecular docking.
Main Results:
- Imatinib downregulated inflammatory signaling and exhibited angiostatic effects.
- Altered biophysical properties of BAL cells, restricting infiltration.
- Activated intrinsic apoptosis pathway and demonstrated potential caspase-independent cell death promotion via PARP-1 interaction.
Conclusions:
- Imatinib exhibits chemopreventive effects against lung carcinogenesis.
- Its mechanisms involve immunomodulation, anti-angiogenesis, and induction of apoptosis.
- Imatinib shows potential for targeting lung cancer by altering tumor microenvironment and promoting cancer cell death.
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