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Transforming Cancer Treatment with Nanotechnology: The Role of Berberine as a Star Natural Compound
Liyan Sun1, Jinshuai Lan1,2, Zhe Li1,2
1School of Pharmacy, Shanghai University of Traditional Chinese Medicine, Shanghai, 201203, People's Republic of China.
Abstract:
Berberine (BBR), recognized as an oncotherapeutic phytochemical, exhibits its anti-cancer properties via multiple molecular pathways. However, its clinical application is hindered by suboptimal tumor accumulation, rapid systemic elimination, and diminished bioactive concentration owing to extensive metabolic degradation. To circumvent these limitations, the strategic employment of nanocarriers and other drugs in combination with BBR is emerging as a focus to potentiate its anti-cancer efficacy. This review introduced the expansive spectrum of BBR's anti-cancer activities, BBR and other drugs co-loaded nanocarriers for anti-cancer treatments, and evaluated the synergistic augmentation of these amalgamated modalities. The aim is to provide an overview of BBR for cancer treatment based on nano-delivery. Berberine (BBR), recognized as an oncotherapeutic phytochemical, exhibits its anti-cancer properties via multiple molecular pathways. However, its clinical application is hindered by suboptimal tumor accumulation, rapid systemic elimination, and diminished bioactive concentration owing to extensive metabolic degradation. To circumvent these limitations, the strategic employment of nanocarriers and other drugs in combination with BBR is emerging as a focus to potentiate its anti-cancer efficacy. Nano-delivery systems increase drug concentration at the tumor site by improving pharmacological activity and tissue distribution, enhancing drug bioavailability. Organic nanocarriers have advantages for berberine delivery including biocompatibility, encapsulation, and controlled release of the drug. While the advantages of inorganic nanocarriers for berberine delivery mainly lie in their efficient loading ability of the drug and their slow release ability of the drug. This review introduced the expansive spectrum of BBR's anti-cancer activities, BBR and other drugs co-loaded nanocarriers for anti-cancer treatments, and evaluated the synergistic augmentation of these amalgamated modalities. The aim is to provide an overview of BBR for cancer treatment based on nano-delivery.
Insights
Berberine (BBR) shows anti-cancer promise but faces delivery challenges. Combining BBR with nanocarriers and other drugs enhances its cancer-fighting efficacy through improved tumor targeting and bioavailability.
Area of Science:
- Oncology
- Pharmacology
- Nanotechnology
Background:
- Berberine (BBR) is an oncotherapeutic phytochemical with broad anti-cancer properties.
- Clinical use of BBR is limited by poor tumor accumulation, rapid elimination, and metabolic degradation.
- Nanocarrier-based delivery systems offer a strategy to overcome BBR's limitations.
Purpose of the Study:
- To review the anti-cancer activities of Berberine (BBR).
- To explore BBR and other drugs co-loaded into nanocarriers for cancer therapy.
- To evaluate the synergistic effects of these combined nano-delivery modalities.
Main Methods:
- Review of existing literature on Berberine's anti-cancer mechanisms.
- Analysis of studies utilizing nanocarriers (organic and inorganic) for BBR delivery.
- Evaluation of co-delivery systems combining BBR with other therapeutic agents.
Main Results:
- Nano-delivery systems enhance BBR concentration at tumor sites, improving pharmacological activity and bioavailability.
- Organic nanocarriers offer biocompatibility, encapsulation, and controlled release of BBR.
- Inorganic nanocarriers provide efficient drug loading and sustained BBR release.
Conclusions:
- Nanocarrier-based delivery significantly potentiates the anti-cancer efficacy of Berberine.
- Co-loading BBR with other drugs in nanocarriers demonstrates synergistic anti-cancer effects.
- This nano-delivery approach holds promise for improved cancer treatment strategies.
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