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Immune-smart nanocarriers for nucleic acid oncology: engineering biomaterials for safe, precise, and durable
Kanaka Durga Devi Nelluri1, S K Abdul Rahaman2, Padamata Sai Rohith1
1KVSR Siddhartha College of Pharmaceutical Sciences, Vijayawada, 520010, Andhra Pradesh, India.
Abstract:
Nucleic acid therapeutics, including messenger RNA, small interfering RNA, antisense oligonucleotides, and gene-editing platforms, have emerged as highly effective and promising tools in oncology because they directly regulate oncogenic pathways. However, rapid degradation, poor cellular uptake, off-target effects, and undesired immune activation limit their clinical application. To overcome these challenges, researchers have developed immune-smart nanocarriers that integrate advanced biomaterial engineering with immunological functionality. These nanocarriers protect labile nucleic acids, evade immune recognition and clearance, and deliver therapeutic payloads selectively to cancer or immune cells with precise spatial and temporal control. By incorporating stimulus-responsive components, surface ligands, and immune-modulatory features, smart nanocarriers can sense tumor microenvironment signals and regulate payload release, thereby enhancing therapeutic efficacy while minimizing systemic toxicity. Furthermore, optimized nanocarrier size, charge, and composition can effectively modulate immune responses, prevent immune suppression, and induce durable anticancer immunity. Recent advances have highlighted the successful integration of nucleic acid therapeutics with cancer immunotherapy strategies, including immune checkpoint modulation and personalized cancer vaccines, using lipid-based, polymeric, and hybrid nanocarrier systems. This review discusses the fundamental principles of immune-smart nanocarriers for nucleic acid-based oncology, recent developments in biomaterials and their biomedical applications, and the major challenges associated with achieving safe clinical translation, prolonged targeting, and high therapeutic efficacy for personalized anticancer treatment.
Insights
Immune-smart nanocarriers enhance nucleic acid therapies for cancer by protecting payloads and improving delivery. These advanced biomaterials overcome limitations, boosting efficacy and reducing toxicity for personalized anticancer treatments.
Area of Science:
- Biomedical Engineering
- Oncology
- Immunology
Background:
- Nucleic acid therapeutics show promise in oncology by targeting oncogenic pathways.
- Clinical application is limited by degradation, poor uptake, off-target effects, and immune activation.
Purpose of the Study:
- To review immune-smart nanocarriers for nucleic acid-based oncology.
- To discuss biomaterial advancements and challenges in clinical translation.
Main Methods:
- Development of nanocarriers integrating biomaterial engineering and immunology.
- Incorporation of stimulus-responsive components, surface ligands, and immune-modulatory features.
- Optimization of nanocarrier size, charge, and composition.
Main Results:
- Nanocarriers protect nucleic acids, evade immune clearance, and enable targeted delivery.
- Smart nanocarriers control payload release based on tumor microenvironment signals.
- Nanocarrier properties modulate immune responses to induce anticancer immunity.
Conclusions:
- Immune-smart nanocarriers are crucial for advancing nucleic acid therapeutics in oncology.
- Overcoming challenges in targeting, efficacy, and safety is key for clinical translation.
- Integration with immunotherapy strategies like checkpoint modulation and vaccines shows potential.

