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Smart Nanomaterials in Cancer Theranostics: Challenges and Opportunities
Brijendra Kumar Kashyap1, Virendra Vikram Singh2, Manoj Kumar Solanki3
1Department of Biotechnology Engineering, Institute of Engineering and Technology, Bundelkhand University, Jhansi 284128, Uttar Pradesh, India.
Abstract:
Cancer is ranked as the second leading cause of death globally. Traditional cancer therapies including chemotherapy are flawed, with off-target and on-target toxicities on the normal cells, requiring newer strategies to improve cell selective targeting. The application of nanomaterial has been extensively studied and explored as chemical biology tools in cancer theranostics. It shows greater applications toward stability, biocompatibility, and increased cell permeability, resulting in precise targeting, and mitigating the shortcomings of traditional cancer therapies. The nanoplatform offers an exciting opportunity to gain targeting strategies and multifunctionality. The advent of nanotechnology, in particular the development of smart nanomaterials, has transformed cancer diagnosis and treatment. The large surface area of nanoparticles is enough to encapsulate many molecules and the ability to functionalize with various biosubstrates such as DNA, RNA, aptamers, and antibodies, which helps in theranostic action. Comparatively, biologically derived nanomaterials perceive advantages over the nanomaterials produced by conventional methods in terms of economy, ease of production, and reduced toxicity. The present review summarizes various techniques in cancer theranostics and emphasizes the applications of smart nanomaterials (such as organic nanoparticles (NPs), inorganic NPs, and carbon-based NPs). We also critically discussed the advantages and challenges impeding their translation in cancer treatment and diagnostic applications. This review concludes that the use of smart nanomaterials could significantly improve cancer theranostics and will facilitate new dimensions for tumor detection and therapy.
Insights
Smart nanomaterials offer improved cancer theranostics by enhancing targeted delivery and reducing toxicity compared to traditional chemotherapy. This review highlights their potential for advanced tumor detection and therapy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Cancer is a leading global cause of death, with traditional therapies like chemotherapy exhibiting significant toxicities.
- There is a critical need for advanced strategies to improve cancer cell-selective targeting and treatment efficacy.
- Nanomaterials offer enhanced stability, biocompatibility, and cell permeability for precise cancer targeting.
Purpose of the Study:
- To review various techniques in cancer theranostics.
- To emphasize the applications of smart nanomaterials in cancer diagnosis and treatment.
- To discuss the advantages and challenges of translating nanomaterials in clinical settings.
Main Methods:
- Review of existing literature on cancer theranostics and nanomaterial applications.
- Categorization and discussion of smart nanomaterials including organic, inorganic, and carbon-based nanoparticles.
- Analysis of nanoparticle functionalization with biosubstrates for theranostic action.
Main Results:
- Nanomaterials provide a large surface area for drug encapsulation and functionalization with targeting moieties (DNA, antibodies, etc.).
- Smart nanomaterials, including organic, inorganic, and carbon-based nanoparticles, show significant promise in cancer theranostics.
- Biologically derived nanomaterials present economic and safety advantages over conventionally produced ones.
Conclusions:
- Smart nanomaterials can significantly improve cancer theranostics, offering enhanced tumor detection and therapeutic strategies.
- Nanotechnology provides a versatile platform for developing multifunctional cancer treatments.
- Overcoming challenges in translation is key to realizing the full potential of nanomaterials in oncology.
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