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Multifunctional theranostic nanoparticles for biomedical cancer treatments - A comprehensive review
Ganeshlenin Kandasamy1, Dipak Maity2
1Department of Biomedical Engineering, Vel Tech Rangarajan Dr. Sagunthala R&D Institute of Science and Technology, Chennai, India.
Abstract:
Modern-day search for the novel agents (their preparation and consequent implementation) to effectively treat the cancer is mainly fuelled by the historical failure of the conventional treatment modalities. Apart from that, the complexities such as higher rate of cell mutations, variable tumor microenvironment, patient-specific disparities, and the evolving nature of cancers have made this search much stronger in the latest times. As a result of this, in about two decades, the theranostic nanoparticles (TNPs) - i.e., nanoparticles that integrate therapeutic and diagnostic characteristics - have been developed. The examples for TNPs include mesoporous silica nanoparticles, luminescence nanoparticles, carbon-based nanomaterials, metal nanoparticles, and magnetic nanoparticles. These TNPs have emerged as single and powerful cancer-treating multifunctional nanoplatforms, as they widely provide the necessary functionalities to overcome the previous/conventional limitations including lack of the site-specific delivery of anti-cancer drugs, and real-time continuous monitoring of the target cancer sites while performing therapeutic actions. This has been mainly possible due to the association of the as-developed TNPs with the already-available unique diagnostic (e.g., luminescence, photoacoustic, and magnetic resonance imaging) and therapeutic (e.g., photothermal, photodynamic, hyperthermia therapy) modalities in the biomedical field. In this review, we have discussed in detail about the recent developments on the aforementioned important TNPs without/with targeting ability (i.e., attaching them with ligands or tumor-specific antibodies) and also the strategies that are implemented to increase their tumor accumulation and to enhance their theranostic efficacies for effective biomedical cancer treatments.
Insights
Theranostic nanoparticles (TNPs) integrate diagnostic and therapeutic functions, offering advanced cancer treatment. These multifunctional nanoplatforms overcome conventional therapy limitations for improved patient outcomes.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Conventional cancer treatments face limitations due to tumor complexities and patient variability.
- The development of novel therapeutic agents is crucial for effective cancer management.
- Theranostic nanoparticles (TNPs) have emerged as a promising solution, combining diagnosis and therapy.
Purpose of the Study:
- To review recent advancements in theranostic nanoparticles (TNPs) for cancer treatment.
- To discuss strategies for enhancing TNP tumor accumulation and theranostic efficacy.
- To highlight the potential of TNPs in overcoming limitations of traditional cancer therapies.
Main Methods:
- Review of current literature on theranostic nanoparticles.
- Discussion of various TNP types including mesoporous silica, luminescence, carbon-based, metal, and magnetic nanoparticles.
- Analysis of targeting strategies and methods to improve tumor accumulation.
Main Results:
- TNPs offer multifunctional platforms for site-specific drug delivery and real-time monitoring.
- Integration of diagnostic modalities (e.g., MRI, photoacoustics) with therapeutic actions (e.g., photothermal, photodynamic therapy).
- Targeting strategies using ligands or antibodies enhance TNP efficacy.
Conclusions:
- Theranostic nanoparticles represent a significant advancement in cancer therapy.
- TNPs provide a powerful approach to personalized and effective cancer treatment.
- Further research into TNP development and application holds great promise for oncology.
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