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Recent advances in nanomaterial-based precision medicine for orthotopic tumor therapy
Min Luo1, Fu-Kun Zhao1, Cang-Hong Ouyang1
1Department of Clinical Medicine, The Third Affiliated Hospital of Zunyi Medical University, The First People's Hospital of Zunyi, Zunyi, 563000, Guizhou, China.
Abstract:
The escalating global burden of cancer, marked by high incidence and mortality, necessitates more effective therapeutic strategies. A major bottleneck in clinical translation is the long-standing reliance on subcutaneous tumor models, which fail to recapitulate the complex physiological and pathological features of human malignancies. These ectopic models lack organ-specific barriers-such as the prostatic capsule, cervicovaginal mucus, and dense desmoplastic stroma-and cannot reproduce authentic metastatic niches or immune heterogeneity. Consequently, this review advocates a paradigm shift toward orthotopic-TME-informed nanomedicine design. We systematically evaluate recent progress in nanotherapeutics across twelve major malignancies, categorized into three strategic domains: (i) barrier-penetrating platforms engineered to navigate organ-specific physical and biochemical constraints; (ii) metastasis-targeted delivery systems that exploit native lymphovascular pathways; and (iii) microenvironment-responsive mechanisms that adapt to localized stimuli such as hypoxia and acidity. By integrating data from a wide range of studies, we highlight how orthotopic models provide a more rigorous platform for assessing drug penetration and therapeutic efficacy than conventional subcutaneous models. Furthermore, we critically discuss existing challenges, including manufacturing scalability, the bio-nano interface, and long-term toxicological safety. Looking forward, we propose a strategic roadmap that emphasizes the use of patient-derived orthotopic xenografts (PDOX), multi-omics data integration, and the development of closed-loop adaptive nanosystems. By aligning nanomaterial properties with constraints inherent to the orthotopic microenvironment, this review aims to provide a blueprint for the next generation of precision oncology platforms that can successfully bridge the gap from bench to bedside.
Insights
This review advocates for orthotopic tumor models over subcutaneous ones for developing effective nanomedicine for cancer. Orthotopic models better mimic human tumors, improving the design and testing of targeted cancer therapies.
Area of Science:
- Oncology
- Nanomedicine
- Translational Research
Background:
- Cancer's global burden necessitates advanced therapeutic strategies.
- Subcutaneous tumor models inadequately represent human cancer complexity and metastasis.
- Organ-specific barriers and tumor microenvironment (TME) are critical for therapeutic efficacy.
Purpose of the Study:
- To advocate for a paradigm shift towards orthotopic-TME-informed nanomedicine design.
- To systematically evaluate nanotherapeutics for twelve major malignancies using orthotopic models.
- To provide a roadmap for next-generation precision oncology platforms.
Main Methods:
- Review of recent nanotherapeutics progress across twelve major malignancies.
- Categorization of nanotherapeutics into barrier-penetrating, metastasis-targeted, and TME-responsive systems.
- Integration of data from studies utilizing orthotopic models versus subcutaneous models.
Main Results:
- Orthotopic models offer a more rigorous platform for assessing nanodrug penetration and efficacy compared to subcutaneous models.
- Nanotherapeutics are being engineered to overcome organ-specific barriers and target metastasis.
- Microenvironment-responsive nanomedicines show promise in adapting to localized tumor stimuli.
Conclusions:
- A shift to orthotopic models is crucial for successful clinical translation of nanomedicine.
- Challenges in manufacturing, bio-nano interface, and safety must be addressed.
- Future directions include patient-derived orthotopic xenografts (PDOX) and adaptive nanosystems for precision oncology.
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