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Adaptive nanocarriers targeting tumor systemic intelligence: A paradigm to overcome systemic barriers in precision
Fansu Meng1, Majid Sharifi2, Laila Abdulmohsen Jaragh-Alhadad3
1Zhongshan Hospital of Traditional Chinese Medicine Affiliated to Guangzhou University of Traditional Chinese Medicine, Zhongshan 528400, China.
Abstract:
Biological barriers remain a primary limitation to effective cancer therapy, restricting drug delivery, distribution, and therapeutic efficacy across tumor sites. These barriers arise from a complex and dynamic interplay between tumor- and host-derived factors, including abnormal vasculature, dense extracellular matrices, immune clearance, and spatiotemporal heterogeneity within the tumor microenvironment. Increasing evidence suggests that these components operate as an integrated and adaptive network. Here, we conceptualize this network as "tumor systemic intelligence," which enables tumors to sense and respond to therapeutic and physiological perturbations by reinforcing delivery barriers and limiting drug access. Conventional nanomedicine strategies, often designed to overcome individual barriers, have shown limited success in addressing this coordinated system. To overcome these limitations, we propose "adaptive intelligence" as a design paradigm for next-generation nanocarriers. In this framework, nanocarriers are engineered as responsive systems capable of sensing microenvironmental cues and dynamically modulating their physicochemical properties to navigate multiple, evolving barriers during systemic circulation and tumor penetration. We discuss key design strategies for adaptive nanocarriers, including programmable control over size, shape, surface charge, and bioactive interfaces, enabling improved circulation stability, enhanced transvascular transport, deeper tumor penetration, and reduced immune recognition. We further examine how these systems can modulate or bypass critical barriers such as extracellular matrix density, abnormal perfusion, and cellular uptake limitations. Integration with external physical stimuli is also considered to further enhance barrier penetration and delivery efficiency. Despite promising advances, clinical translation remains limited by challenges including nanocarrier safety, immunogenicity, and the complexity of tumor-host interactions. This review highlights emerging opportunities and design principles for adaptive nanocarriers that effectively navigate biological barriers, with the goal of improving drug delivery and therapeutic outcomes in cancer treatment. Importantly, the concepts of systemic intelligence and adaptive intelligence are intended as conceptual frameworks to guide the rational design of next-generation nanomedicines rather than as formal biological classifications.
Insights
Biological barriers hinder cancer drug delivery. New "adaptive intelligence" nanocarriers can sense and overcome these barriers by changing properties, improving treatment efficacy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Biological barriers impede drug delivery and efficacy in cancer treatment.
- Tumor microenvironment factors create a complex, adaptive network, termed "tumor systemic intelligence."
- Conventional nanomedicine struggles against this coordinated barrier system.
Purpose of the Study:
- Introduce "adaptive intelligence" as a nanocarrier design paradigm.
- Develop nanocarriers that dynamically respond to tumor microenvironment cues.
- Enhance drug delivery across biological barriers for improved cancer therapy.
Main Methods:
- Conceptualize nanocarriers with programmable, dynamic physicochemical properties.
- Design strategies include modulating size, shape, charge, and bioactive interfaces.
- Integrate external stimuli for enhanced barrier penetration.
Main Results:
- Adaptive nanocarriers can improve circulation stability and reduce immune recognition.
- Enhanced transvascular transport and deeper tumor penetration are achievable.
- These systems can overcome barriers like dense extracellular matrix and abnormal perfusion.
Conclusions:
- Adaptive nanocarriers offer a promising approach to overcome biological barriers in cancer.
- Challenges remain in clinical translation, including safety and immunogenicity.
- This framework guides the rational design of next-generation nanomedicines for cancer treatment.
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