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Nanoformulated Terpenoids in Cancer: A Review of Therapeutic Applications, Mechanisms, and Challenges
Arunagiri Sharmila1, Priyanka Bhadra2, Chandra Kishore3,4
1Department of Biotechnology, School of Biosciences and Technology, Vellore Institute of Technology, Vellore 632 014, Tamil Nadu, India.
Abstract:
Cancer remains a major global health concern, and thus, there is a growing demand for efficient and selective therapies with low systemic toxicity. Natural bioactive compounds have emerged as promising alternatives, and terpenoids have shown notable anticancer properties. They exert antiproliferative, proapoptotic, anti-invasive, and antimetastatic effects through the regulation of multiple molecular targets and signaling pathways, including modulation of apoptosis, suppression of angiogenesis, and inhibition of tumor-promoting inflammation. However, their clinical translation is constrained by poor aqueous solubility, low bioavailability, rapid systemic clearance, and inadequate tumor accumulation. Recent advances in nanotechnology offer strategies to overcome these limitations. Nanocarrier-based systems improve the solubility, stability, and pharmacokinetics of terpenoids, while enabling tumor-targeted delivery and controlled release. Various strategies, such as enhanced permeability and retention effect, ligand-mediated active targeting, and stimuli-responsive release have been used to achieve selective tumor accumulation and improved therapeutic outcomes. The purpose of this review is to provide a comprehensive evaluation of nanoformulated terpenoids in cancer with a special emphasis on their therapeutic applications and mechanisms of action. Preclinical studies demonstrate that nanocarrier-loaded terpenoids significantly increase bioavailability, enhance apoptosis, and suppress tumor angiogenesis compared with free terpenoids. The incorporation of artificial intelligence and machine learning further holds promise for the rational design of nanomedicines, accelerating their path toward clinical translation. Collectively, these developments position nanoformulated terpenoids as a powerful platform in precision oncology with strong potential for future application in cancer therapy.
Insights
Natural terpenoids show promise as anticancer agents, but nanotechnology enhances their delivery and effectiveness. Nanoformulated terpenoids improve bioavailability and tumor targeting, offering a powerful platform for precision cancer therapy.
Area of Science:
- Natural product chemistry
- Nanomedicine
- Oncology
Background:
- Terpenoids possess significant anticancer properties, including antiproliferative and proapoptotic effects.
- Clinical application of terpenoids is limited by poor solubility, bioavailability, and tumor accumulation.
- Nanotechnology offers solutions to overcome these limitations for improved cancer treatment.
Purpose of the Study:
- To comprehensively review nanoformulated terpenoids for cancer therapy.
- To evaluate their therapeutic applications and mechanisms of action.
- To highlight advancements in nanocarrier-based delivery systems.
Main Methods:
- Review of preclinical studies on nanoformulated terpenoids.
- Analysis of nanotechnology strategies for targeted delivery (e.g., EPR effect, active targeting).
- Exploration of stimuli-responsive release mechanisms.
Main Results:
- Nanocarrier systems enhance terpenoid solubility, stability, and pharmacokinetics.
- Nanoformulated terpenoids demonstrate increased bioavailability and improved apoptosis induction.
- Targeted delivery systems significantly suppress tumor angiogenesis compared to free terpenoids.
Conclusions:
- Nanoformulated terpenoids represent a promising strategy for enhancing cancer therapy efficacy.
- Nanotechnology overcomes key limitations of natural terpenoids, enabling precision oncology.
- Artificial intelligence and machine learning can accelerate the development of these nanomedicines.
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