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Inorganic Nanomaterial-Mediated Gene Therapy in Combination with Other Antitumor Treatment Modalities
Guanyou Lin1, Richard A Revia1, Miqin Zhang1
1Department of Materials Science and Engineering, University of Washington, Seattle, WA 98195, USA.
Abstract:
Cancer is a genetic disease originating from the accumulation of gene mutations in a cellular subpopulation. Although many therapeutic approaches have been developed to treat cancer, recent studies have revealed an irrefutable challenge that tumors evolve defenses against some therapies. Gene therapy may prove to be the ultimate panacea for cancer by correcting the fundamental genetic errors in tumors. The engineering of nanoscale inorganic carriers of cancer therapeutics has shown promising results in the efficacious and safe delivery of nucleic acids to treat oncological diseases in small-animal models. When these nanocarriers are used for co-delivery of gene therapeutics along with auxiliary treatments, the synergistic combination of therapies often leads to an amplified health benefit. In this review, an overview of the inorganic nanomaterials developed for combinatorial therapies of gene and other treatment modalities is presented. First, the main principles of using nucleic acids as therapeutics, inorganic nanocarriers for medical applications and delivery of gene/drug payloads are introduced. Next, the utility of recently developed inorganic nanomaterials in different combinations of gene therapy with each of chemo, immune, hyperthermal, and radio therapy is examined. Finally, current challenges in the clinical translation of inorganic nanomaterial-mediated therapies are presented and outlooks for the field are provided.
Insights
Inorganic nanomaterials offer a promising approach for cancer gene therapy by enabling the co-delivery of gene therapeutics with other treatments. This combinatorial strategy enhances therapeutic efficacy and overcomes tumor resistance.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Cancer is a genetic disease driven by accumulating mutations.
- Tumors can develop resistance to conventional therapies.
- Gene therapy holds potential for correcting fundamental genetic errors in cancer cells.
Purpose of the Study:
- To review inorganic nanomaterials for combinatorial cancer therapies.
- To explore the integration of gene therapy with chemotherapy, immunotherapy, hyperthermia, and radiotherapy.
Main Methods:
- Overview of nucleic acid therapeutics and inorganic nanocarriers.
- Examination of nanomaterial applications in combined gene therapy modalities.
- Discussion of clinical translation challenges and future outlooks.
Main Results:
- Inorganic nanocarriers facilitate safe and effective delivery of gene therapeutics.
- Combinatorial therapies using nanocarriers show synergistic effects, amplifying health benefits.
- Specific examples of inorganic nanomaterials combined with chemo-, immune-, hyperthermal-, and radiotherapy are discussed.
Conclusions:
- Inorganic nanomaterials are crucial for advancing combinatorial cancer gene therapy.
- Further research and clinical translation are needed to realize the full potential of these nanomedicines.
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