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Contrast Ultrasound Targeted Treatment of Gliomas in Mice via Drug-Bearing Nanoparticle Delivery and Microvascular Ablation
Published on: December 15, 2010
Dual tumor- and subcellular-targeted photodynamic therapy using glucose-functionalized MoS2 nanoflakes for
Shaohui Xu1, Pan Zhang2, Isabelle Heing-Becker1
1Institut für Chemie und Biochemie, Freie Universität Berlin, Takustraße 3, 14195, Berlin, Germany.
Abstract:
Photodynamic therapy (PDT) is emerging as an efficient strategy to combat multidrug-resistant (MDR) cancer. However, the short half-life and limited diffusion of reactive oxygen species (ROS) undermine the therapeutic outcomes of this therapy. To address this issue, a tumor-targeting nanoplatform was developed to precisely deliver mitochondria- and endoplasmic reticulum (ER)-targeting PDT agents to desired sites for dual organelle-targeted PDT. The nanoplatform is constructed by functionalizing molybdenum disulfide (MoS2) nanoflakes with glucose-modified hyperbranched polyglycerol (hPG), and then loading the organelle-targeting PDT agents. The resultant nanoplatform Cy7.5-TG@GPM is demonstrated to mediate both greatly enhanced internalization within MDR cells and precise subcellular localization of PDT agents, facilitating in situ near-infrared (NIR)-triggered ROS generation for augmented PDT and reversal of MDR, causing impressive tumor shrinkage in a HeLa multidrug-resistant tumor mouse model. As revealed by mechanistic studies of the synergistic mitochondria- and ER-targeted PDT, ROS-induced ER stress not only activates the cytosine-cytosine-adenosine-adenosine thymidine/enhancer-binding protein homologous protein (CHOP) pro-apoptotic signaling pathway, but also cooperates with ROS-induced mitochondrial dysfunction to trigger cytochrome C release from the mitochondria and induce subsequent cell death. Furthermore, the mitochondrial dysfunction reduces ATP production and thereby contributes to the reversal of MDR. This nanoplatform, with its NIR-responsive properties and ability to target tumors and subcellular organelles, offers a promising strategy for effective MDR cancer therapy.
Insights
A novel nanoplatform enhances photodynamic therapy (PDT) for multidrug-resistant (MDR) cancers by targeting mitochondria and endoplasmic reticulum. This approach improves reactive oxygen species (ROS) delivery, leading to significant tumor reduction.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Photodynamic therapy (PDT) shows promise against multidrug-resistant (MDR) cancers.
- Limited reactive oxygen species (ROS) half-life and diffusion hinder PDT efficacy.
- Dual organelle targeting is a strategy to enhance PDT outcomes.
Purpose of the Study:
- To develop a tumor-targeting nanoplatform for dual mitochondria- and endoplasmic reticulum (ER)-targeted PDT.
- To overcome the limitations of ROS diffusion and enhance therapeutic effects in MDR cancer.
Main Methods:
- Functionalized molybdenum disulfide (MoS2) nanoflakes with glucose-modified hyperbranched polyglycerol (hPG).
- Loaded organelle-targeting PDT agents onto the nanoplatform (Cy7.5-TG@GPM).
- Evaluated nanoplatform efficacy in a HeLa MDR tumor mouse model.
Main Results:
- Achieved enhanced internalization and precise subcellular localization of PDT agents in MDR cells.
- Demonstrated near-infrared (NIR)-triggered ROS generation for augmented PDT and MDR reversal.
- Observed significant tumor shrinkage via synergistic mitochondria- and ER-targeted PDT.
Conclusions:
- The nanoplatform effectively triggers apoptosis through ER stress and mitochondrial dysfunction.
- Mitochondrial dysfunction contributes to ATP reduction and MDR reversal.
- This NIR-responsive nanoplatform offers a promising strategy for MDR cancer therapy.
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