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Platelet-Activating Factor-Receptor Signaling Mediates Targeted Therapies-Induced Microvesicle Particles Release in
Shreepa J Chauhan1, Anita Thyagarajan1, Yanfang Chen1
1Department of Pharmacology and Toxicology, Boonshoft School of Medicine Wright State University, Dayton, OH 45345, USA.
Abstract:
Microvesicle particles (MVP) secreted by a variety of cell types in response to reactive oxygen species (ROS)-generating pro-oxidative stressors have been implicated in modifying the cellular responses including the sensitivity to therapeutic agents. Our previous studies have shown that expression of a G-protein coupled, platelet-activating factor-receptor (PAFR) pathway plays critical roles in pro-oxidative stressors-mediated cancer growth and MVP release. As most therapeutic agents act as pro-oxidative stressors, the current studies were designed to determine the role of the PAFR signaling in targeted therapies (i.e., gefitinib and erlotinib)-mediated MVP release and underlying mechanisms using PAFR-expressing human A549 and H1299 non-small cell lung cancer (NSCLC) cell lines. Our studies demonstrate that both gefitinib and erlotinib generate ROS in a dose-dependent manner in a process blocked by antioxidant and PAFR antagonist, verifying their pro-oxidative stressor's ability, and the role of the PAFR in this effect. We observed that these targeted therapies induce MVP release in a dose- and time-dependent manner, similar to a PAFR-agonist, carbamoyl-PAF (CPAF), and PAFR-independent agonist, phorbol myristate acetate (PMA), used as positive controls. To confirm the PAFR dependency, we demonstrate that siRNA-mediated PAFR knockdown or PAFR antagonist significantly blocked only targeted therapies- and CPAF-mediated but not PMA-induced MVP release. The use of pharmacologic inhibitor strategy suggested the involvement of the lipid ceramide-generating enzyme, acid sphingomyelinase (aSMase) in MVP biogenesis, and observed that regardless of the stimuli used, aSMase inhibition significantly blocked MVP release. As mitogen-activated protein kinase (MAPK; ERK1/2 and p38) pathways crosstalk with PAFR, their inhibition also significantly attenuated targeted therapies-mediated MVP release. These findings indicate that PAFR signaling could be targeted to modify cellular responses of targeted therapies in lung cancer cells.
Insights
Targeted lung cancer therapies like gefitinib and erlotinib trigger microvesicle particle (MVP) release via platelet-activating factor-receptor (PAFR) signaling. Inhibiting PAFR or related pathways may alter cancer cell responses to treatment.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Microvesicle particles (MVP) are released by cells under oxidative stress and influence treatment sensitivity.
- Platelet-activating factor-receptor (PAFR) signaling is crucial for pro-oxidative stress-induced cancer growth and MVP release.
- Targeted cancer therapies often act as pro-oxidative stressors.
Purpose of the Study:
- To investigate the role of PAFR signaling in gefitinib and erlotinib-mediated MVP release in non-small cell lung cancer (NSCLC).
- To elucidate the underlying mechanisms of PAFR-dependent MVP biogenesis induced by targeted therapies.
Main Methods:
- Utilized human A549 and H1299 NSCLC cell lines.
- Assessed reactive oxygen species (ROS) generation and MVP release in response to gefitinib, erlotinib, PAFR agonists, and PMA.
- Employed siRNA for PAFR knockdown, PAFR antagonists, and inhibitors for acid sphingomyelinase (aSMase) and mitogen-activated protein kinase (MAPK) pathways.
Main Results:
- Gefitinib and erlotinib induced dose-dependent ROS generation, blocked by antioxidants and PAFR antagonists.
- Targeted therapies and PAFR agonist (CPAF) stimulated MVP release in a dose- and time-dependent manner.
- siRNA-mediated PAFR knockdown and PAFR antagonist significantly inhibited targeted therapy- and CPAF-induced MVP release, but not PMA-induced release.
- Inhibition of aSMase and MAPK pathways (ERK1/2, p38) attenuated targeted therapy-mediated MVP release.
Conclusions:
- PAFR signaling plays a significant role in targeted therapy-induced MVP release in NSCLC.
- Targeted therapies induce MVP release through ROS generation and PAFR activation.
- aSMase and MAPK pathways are involved in the biogenesis of MVP induced by targeted therapies.
- Targeting PAFR signaling presents a potential strategy to modulate cellular responses to targeted therapies in lung cancer.
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