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In Vivo Model for Testing Effect of Hypoxia on Tumor Metastasis
Published on: December 9, 2016
Modulating Hypoxia via Nanomaterials Chemistry for Efficient Treatment of Solid Tumors
Yanyan Liu1, Yaqin Jiang1, Meng Zhang2
1Shanghai Key Laboratory of Green Chemistry and Chemical Processes, College of Chemistry and Molecular Engineering , East China Normal University , 3663 North Zhong-shan Road , Shanghai 200062 , P. R. China.
Abstract:
The common existence of hypoxia in solid tumors has been heavily researched because it renders tumors more resistant to most standard therapeutic methods, such as radiotherapy (RT), chemotherapy, and photodynamic therapy (PDT), and is associated with a more malignant phenotype and poor survival in patients with tumors. The development of hypoxia modulation methods for advanced therapeutic activity is therefore of great interest but remains a considerable challenge. Since the significant development of nanotechnology and nanomedicine, functionalized nanomaterials can be exploited as adjuvant "drugs" for these oxygen-dependent standard therapies or as hypoxia initiators for advanced new therapies to solid tumors. In this Account, we summarize our recent studies on the design and synthesis of nanomaterials with a set of desired chemistry benefits achievable by modulating hypoxia, suggesting a valid therapeutic option for tumors. The investigated strategies can be categorized into three groups: The first strategy is based on countering hypoxia. Considering that O2 deficiency is the major obstacle for the oxygen-dependent therapies, we initially developed methods to supply O2 by taking advantage of the hypoxia-responsive properties of nano-MnO2 or nanomaterials' photothermal effects for increased intratumoral blood flow. The second approach is to disregard hypoxia. Possible benefits of nanoagents include reducing/eliminating reliance on O2 or making O2 replacements as adjuvants to standard therapies. To this end, we investigated a nano-upconversion/scintillator with the capacity toup-/down-convert near-infrared light (NIR)/X-ray to luminescence in the ultraviolet/visible region fortype-I PDT with minimized oxygen-tension dependency or developed Fe-based nanomaterials for chemodynamic therapy (CDT) without external energy and oxygen participation for efficient free radical killing of deep tumors. The third strategy involves exploiting hypoxia. The unique biological characteristics of hypoxia are exploited to activate nanoagents for new therapies. To address the discrepancy between the nanoagents' demand and supply within the hypoxia region, a smart "molecule-nano" medicine that stays small-molecule-like in the bloodstream and turns into self-assembled nanovesicles after entry into the hypoxia region was constructed for hypoxia-adaptive photothermal therapy (PTT). In addition to traditional anti-angiogenesis therapy, we prepared Mg2Si nanoparticles by a special self-propagating high-temperature synthesis approach. These nanoparticles can directly remove the intratumoral oxygen via the oxidation reactions of Mg2Si and later efficiently block the rapid reoxygenation via tumor blood vessels by the resultant SiO2 microsheets for cancer starvation therapy. Taken together, these findings indicate that nanomaterials will assume a valuable role for anticancer exploration based on either their properties to make up oxygen deficiency or the use of hypoxia for therapeutic applications.
Insights
Nanomaterials offer novel strategies to combat solid tumors by addressing tumor hypoxia. These approaches either replenish oxygen, bypass oxygen dependency, or exploit hypoxia for targeted cancer therapies, improving treatment outcomes.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Tumor hypoxia is a major challenge in cancer therapy, leading to resistance against radiotherapy, chemotherapy, and photodynamic therapy.
- Hypoxia is linked to increased tumor malignancy and poorer patient survival.
- Developing effective hypoxia modulation strategies is crucial for advancing cancer therapeutics.
Purpose of the Study:
- To summarize recent studies on the design and synthesis of functionalized nanomaterials for modulating tumor hypoxia.
- To explore strategies for using nanomaterials as adjuvants for standard therapies or as initiators for novel hypoxia-based treatments.
- To present a valid therapeutic option for solid tumors by leveraging nanomaterial properties.
Main Methods:
- Countering hypoxia: Utilizing nano-MnO2 or photothermal effects to supply oxygen and increase intratumoral blood flow.
- Disregarding hypoxia: Developing oxygen-independent therapies like type-I photodynamic therapy (PDT) using upconversion/scintillator nanomaterials and chemodynamic therapy (CDT) with Fe-based nanomaterials.
- Exploiting hypoxia: Designing smart 'molecule-nano' medicines for hypoxia-adaptive photothermal therapy (PTT) and using Mg2Si nanoparticles for cancer starvation therapy.
Main Results:
- Methods were developed to supply oxygen or reduce oxygen dependency in tumor treatments.
- Novel nanomaterials were synthesized for oxygen-independent therapies like PDT and CDT, effective for deep tumors.
- Hypoxia-responsive nanomedicines and nanoparticles were created for targeted PTT and cancer starvation therapy.
Conclusions:
- Functionalized nanomaterials offer promising therapeutic strategies for solid tumors by modulating tumor hypoxia.
- These nanomaterials can either compensate for oxygen deficiency or utilize hypoxic conditions for targeted cancer treatment.
- Nanomaterials are poised to play a significant role in future anticancer research and therapeutic applications.
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