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Targeted cancer therapy using single- and multi-drug loaded nanoformulations: a comprehensive review
Ayse Nur Nurdogan1, Ayse Karatug Kacar2
1Institute of Graduate Studies in Sciences, Istanbul University, Istanbul, Turkey.
Abstract:
Cancer therapy continues to face significant limitations related to insufficient selectivity, systemic toxicity, and therapeutic resistance, driving growing interest in nanoformulation-based targeted approaches. This review critically synthesizes recent preclinical and clinical evidence on nano-enabled cancer therapies, with a specific focus on delivery systems incorporating either a single therapeutic agent or the co-delivery of multiple agents. Across major cancer types-including lung, breast, prostate, pancreatic, and colorectal cancers-nano-based drug delivery systems demonstrate improved pharmacokinetics, enhanced tumor accumulation, and reduced off-target toxicity. Importantly, our comparative analysis reveals that while single-drug nanoformulations primarily enhance drug stability, bioavailability, and safety, multi-drug nanoformulations more consistently achieve superior therapeutic outcomes by addressing tumor heterogeneity and multidrug resistance through synergistic mechanisms. Distinct from existing reviews that emphasize individual nanocarriers or isolated cancer models, this work provides a cross-cancer, strategy-oriented evaluation of single-agent versus multi-drug nanoformulations. Despite their greater therapeutic promise, multi-drug systems face substantial challenges related to formulation complexity, reproducibility, and clinical translation, underscoring the need for standardized design frameworks and rigorous clinical validation to enable their successful implementation.
Insights
Nanoformulations offer improved cancer treatment by enhancing drug delivery and reducing toxicity. Multi-drug nanoformulations show superior outcomes by tackling tumor heterogeneity and resistance, despite facing translation challenges.
Area of Science:
- Oncology
- Nanotechnology
- Drug Delivery
Background:
- Cancer therapies face limitations like poor selectivity, toxicity, and resistance.
- Nanoformulation-based targeted delivery is a growing area of interest.
Purpose of the Study:
- To review preclinical and clinical evidence of nano-enabled cancer therapies.
- To compare single-agent versus multi-agent nanoformulations across various cancer types.
Main Methods:
- Critical synthesis of recent scientific literature.
- Comparative analysis of nano-based drug delivery systems.
- Cross-cancer, strategy-oriented evaluation.
Main Results:
- Nano-based delivery improves pharmacokinetics, tumor accumulation, and reduces toxicity in lung, breast, prostate, pancreatic, and colorectal cancers.
- Single-drug nanoformulations enhance stability and bioavailability.
- Multi-drug nanoformulations achieve superior outcomes by overcoming heterogeneity and resistance via synergistic effects.
Conclusions:
- Multi-drug nanoformulations hold greater therapeutic promise for complex cancers.
- Challenges in formulation complexity, reproducibility, and clinical translation must be addressed for multi-drug systems.
- Standardized design and rigorous validation are crucial for successful clinical implementation.
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