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Photodynamic Therapy with Blended Conducting Polymer/Fullerene Nanoparticle Photosensitizers
Published on: October 28, 2015
Potent angiogenesis inhibition by the particulate form of fullerene derivatives
Huan Meng1, Gengmei Xing, Baoyun Sun
1CAS Key Laboratory for Biomedical Effects of Nanomaterials & Nanosafety, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
Antiangiogenesis is an effective strategy for cancer treatment because uncontrolled tumor growth depends on tumor angiogenesis and sufficient blood supply. Great progress has been made in developing a "molecular" form of angiogenesis inhibitors; however, the narrow inhibition spectrum limits anticancer efficacy as those inhibitors that usually target a few or even a single angiogenic factor among many angiogenic factors might initially be effective but ultimately lead to the failure of the treatment due to the induction of expression of other angiogenic factors. In this work, we report that with a multiple hydroxyl groups functionalized surface, the Gd@C(82)(OH)(22) fullerenic nanoparticles (f-NPs) are capable of simultaneously downregulating more than 10 angiogenic factors in the mRNA level that is further confirmed at the protein level. After studying this antiangiogenesis activity of the f-NPs by cellular experiment, we further investigated its anticancer efficacy in vivo. A two-week treatment with the f-NPs decreased >40% tumor microvessels density and efficiently lowered the speed of blood supply to tumor tissues by approximately 40%. Efficacy of the treatment using f-NPs in nude mice was comparable to the clinic anticancer drug paclitaxel, while no pronounced side effects were found. These findings indicate that the f-NPs with multiple hydroxyl groups serve as a potent antiangiogenesis inhibitor that can simultaneously target multiple angiogenic factors. We propose that using nanoscale "particulate" itself as a new form of medicine (particulate medicine) may be superior to the traditional "molecular" form of medicine (molecular medicine) in cancer treatment.
Insights
Novel fullerene nanoparticles (f-NPs) effectively inhibit tumor growth by downregulating multiple angiogenic factors. This particulate medicine approach shows promise for cancer treatment with minimal side effects.
Area of Science:
- Nanotechnology
- Oncology
- Biochemistry
Background:
- Tumor growth relies on angiogenesis, making antiangiogenesis a key cancer treatment strategy.
- Current molecular inhibitors targeting single factors have limited efficacy due to compensatory mechanisms.
- Developing broad-spectrum antiangiogenic agents is crucial for effective cancer therapy.
Purpose of the Study:
- To investigate the antiangiogenic and anticancer efficacy of Gd@C(82)(OH)(22) fullerenic nanoparticles (f-NPs).
- To evaluate the ability of f-NPs to simultaneously downregulate multiple angiogenic factors.
- To compare the in vivo anticancer efficacy and safety of f-NPs with paclitaxel.
Main Methods:
- Synthesis and characterization of hydroxyl-functionalized fullerenic nanoparticles (f-NPs).
- In vitro cellular experiments to assess antiangiogenic activity by measuring mRNA and protein levels of angiogenic factors.
- In vivo studies in nude mice to evaluate tumor microvessel density, blood supply, and overall anticancer efficacy.
Main Results:
- f-NPs simultaneously downregulated over 10 angiogenic factors at both mRNA and protein levels.
- In vivo treatment with f-NPs reduced tumor microvessel density by over 40% and blood supply by approximately 40%.
- f-NP treatment demonstrated comparable efficacy to paclitaxel with no significant side effects.
Conclusions:
- Hydroxyl-functionalized fullerenic nanoparticles (f-NPs) are potent broad-spectrum antiangiogenesis inhibitors.
- Particulate medicine, using nanoparticles, may offer advantages over traditional molecular medicine for cancer treatment.
- f-NPs represent a promising new therapeutic strategy for cancer by targeting multiple angiogenic pathways.
Related Concept Videos
Regulation of Angiogenesis and Blood Supply
Mechanism of Angiogenesis

