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Published on: September 27, 2024
Progress in the Application of Nanomaterials in Tumor Treatment
Xingyu He1,2, Lilin Wang1,2, Tongtong Zhang1,3
1Obesity and Metabolism Medicine-Engineering Integration Laboratory, Department of General Surgery, Affiliated Hospital of Southwest Jiaotong University, The Third People's Hospital of Chengdu, Chengdu 610000, China.
Abstract:
Cancer continues to pose a major global health burden, with conventional therapeutic modalities such as surgical resection, chemotherapy, radiotherapy, and immunotherapy often hindered by limited tumor specificity, substantial systemic toxicity, and the emergence of multidrug resistance. The rapid advancement of nanotechnology has introduced functionalized nanomaterials as innovative tools in the realm of precision oncology. These nanoplatforms possess desirable physicochemical properties, including tunable particle size, favorable biocompatibility, and programmable surface chemistry, which collectively enable enhanced tumor targeting and reduced off-target effects. This review systematically examines recent developments in the application of nanomaterials for cancer therapy, with a focus on several representative nanocarrier systems. These include lipid-based formulations, synthetic polymeric nanoparticles, inorganic nanostructures composed of metallic or non-metallic elements, and carbon-based nanomaterials. In addition, the article outlines key strategies for functionalization, such as ligand-mediated targeting, stimulus-responsive drug release mechanisms, and biomimetic surface engineering to improve in vivo stability and immune evasion. These multifunctional nanocarriers have demonstrated significant potential across a range of therapeutic applications, including targeted drug delivery, photothermal therapy, photodynamic therapy, and cancer immunotherapy. When integrated into combinatorial treatment regimens, they have exhibited synergistic therapeutic effects, contributing to improved efficacy by overcoming tumor heterogeneity and resistance mechanisms. A growing body of preclinical evidence supports their ability to suppress tumor progression, minimize systemic toxicity, and enhance antitumor immune responses. This review further explores the design principles of multifunctional nanoplatforms and their comprehensive application in combination therapies, highlighting their preclinical efficacy. In addition, it critically examines major challenges impeding the clinical translation of nanomedicine. By identifying these obstacles, the review provides a valuable roadmap to guide future research and development. Overall, this work serves as an important reference for researchers, clinicians, and regulatory bodies aiming to advance the safe, effective, and personalized application of nanotechnology in cancer treatment.
Insights
Nanomaterials offer targeted cancer therapies with reduced toxicity, overcoming resistance. This review explores nanocarrier systems and functionalization strategies for improved precision oncology and combination treatments.
Area of Science:
- Oncology
- Nanotechnology
- Materials Science
Background:
- Conventional cancer treatments face challenges like limited tumor specificity, systemic toxicity, and multidrug resistance.
- Nanotechnology offers functionalized nanomaterials as innovative tools for precision oncology.
- Nanoplatforms possess tunable properties for enhanced tumor targeting and reduced off-target effects.
Purpose of the Study:
- To review recent advancements in nanomaterial applications for cancer therapy.
- To examine various nanocarrier systems and functionalization strategies.
- To highlight the potential of multifunctional nanoplatforms in combination therapies and discuss clinical translation challenges.
Main Methods:
- Systematic review of recent developments in nanomaterial-based cancer therapy.
- Focus on representative nanocarrier systems: lipid-based, polymeric, inorganic, and carbon-based.
- Analysis of functionalization strategies: ligand-mediated targeting, stimulus-responsive release, and biomimetic engineering.
Main Results:
- Multifunctional nanocarriers show potential in targeted drug delivery, photothermal/photodynamic therapy, and cancer immunotherapy.
- Combinatorial regimens with nanocarriers exhibit synergistic effects, overcoming tumor heterogeneity and resistance.
- Preclinical evidence supports nanomaterials in suppressing tumor progression, minimizing toxicity, and enhancing immune responses.
Conclusions:
- Functionalized nanomaterials represent a promising frontier in precision oncology, offering improved therapeutic efficacy and safety.
- Multifunctional nanoplatforms are crucial for developing advanced combination therapies against complex cancers.
- Addressing challenges in clinical translation is vital for realizing the full potential of nanomedicine in cancer treatment.

