Aug 2026· Journal of Biomaterials Science. Polymer Edition· pp.
1-20
· 0 citations· 47 references
Medicine
TL;DR
This article reviews the recent progress and challenges associated with nano-based non-viral vectors designed for targeted delivery of DNA into cancerous cells.
Abstract
Gene therapy has emerged as one of the most promising approaches in both medical and biotechnological fields due to its capacity to modify, optimize, and regulate target DNA sequences. Recent advancements integrating gene therapy with nanotechnology, particularly through nano-carrier systems, have enabled precise delivery of therapeutic nucleic acids with controlled release at specific pathological sites [1]. Initially focused on monogenic disorders, gene therapy applications have now expanded to a broad spectrum of inherited and acquired diseases [2]. Protein-based nanocarriers have attracted considerable attention as next-generation non-viral vectors due to their intrinsic biocompatibility, biodegradability, and structural versatility [3]. Their ability to encapsulate nucleic acids, support controlled release, and enable targeted delivery makes them attractive candidates for cancer gene therapy. These unique characteristics position protein-based nanocarriers as a cell-friendly and effective strategy for improving the safety and efficiency of gene delivery systems [4]. Consequently, they represent a promising strategy for improving the safety and efficacy of cancer gene therapy. The development of safe, efficient, and biocompatible vectors remains a critical determinant of therapeutic success. Recombinant peptides, despite their therapeutic potential, face challenges such as high toxicity, instability, poor bioavailability, and costly production, which gene therapy strategies aim to overcome [5]. Techniques including gene knockdown, mutation correction, and gene insertion are central to modern gene therapy approaches. This article reviews the recent progress and challenges associated with nano-based non-viral vectors designed for targeted delivery of DNA into cancerous cells.
Despite their promise, significant challenges remain, including low cargo-loading efficiency, batch heterogeneity, limited scalability and the absence of standardized manufacturing and regulatory frameworks, future research must address these barriers to accelerate the clinical translation of exosome-based therapeutics.
Elza Karabagh, Babek Alibayov, Adil Allahverdiyev· Expert Reviews in Molecular...· 0 citations
Small interfering RNA (siRNA) therapeutics have emerged as a transformative approach for sequence-specific gene silencing, offering the potential to treat a broad spectrum of diseases by selectively suppressing disease-associated genes. However, the clinical translation of siRNA remains limited by rapid enzymatic degradation, poor cellular uptake, inadequate endosomal escape, and off-target effects, necessitating the development of efficient delivery systems. Extracellular vesicles (EVs) have gained considerable attention as natural nanocarriers owing to their excellent biocompatibility, low immunogenicity, intrinsic targeting capability, and ability to protect therapeutic cargo while traversing complex biological barriers. This review comprehensively discusses the biological characteristics of EVs, the molecular basis of RNA interference, and the major challenges associated with siRNA delivery [Fig. 1]. Recent advances in EV engineering, including cargo-loading strategies such as electroporation, sonication, extrusion, parent-cell engineering, and microfluidic approaches, together with surface functionalization using peptides, antibodies, aptamers, and hybrid nanoplatforms, are critically evaluated for improving targeting specificity and intracellular delivery. Furthermore, the therapeutic applications of engineered EV-mediated siRNA delivery in cancer, neurological disorders, liver diseases, cardiovascular diseases, inflammatory disorders, and infectious diseases are systematically summarized, highlighting their potential to enhance gene silencing while minimizing systemic toxicity. Current challenges related to large-scale manufacturing, cargo-loading efficiency, standardization, quality control, regulatory approval, and clinical translation are also discussed, together with emerging technologies involving synthetic biology, genome engineering, artificial intelligence, and multifunctional hybrid vesicles. Overall, engineered extracellular vesicles represent a highly versatile and biologically inspired platform for targeted siRNA delivery, providing a promising foundation for the development of next-generation precision RNA therapeutics and accelerating the clinical translation of gene-silencing strategies.
G. S. Amrish Varshan, S. Namasivayam· Nanomedicine: Nanotechnology...· 0 citations
Gene therapy and genome editing increasingly depend on the safe, effective, and cell-selective delivery of nucleic acids and protein–nucleic acid complexes. Although viral vectors remain important for applications requiring durable gene expression, non-viral vectors offer advantages in cargo capacity, modularity, transient expression, potential repeat dosing, and avoidance of vector–genome integration. Lipid nanoparticles (LNPs), polymeric nanoparticles, inorganic nanomaterials, extracellular vesicles (EVs), and biomimetic hybrid systems have consequently become central platforms for delivery of siRNA, mRNA, plasmid DNA, antisense oligonucleotides, and CRISPR-based genome editors. Among these, ionizable LNPs are currently the most clinically mature non-viral technology, supported by the clinical success of siRNA therapeutics and mRNA vaccines, as well as the emergence of in vivo CRISPR therapies. Nevertheless, efficient endosomal escape, cell-type-selective targeting, extrahepatic delivery, and repeat-dose tolerability remain substantial barriers. Polymeric vectors provide broad chemical tunability, allowing adjustment of charge density, degradability, stimulus responsiveness, intracellular trafficking, and cargo release. However, toxicity and batch-to-batch reproducibility remain key concerns. EVs provide a biologically derived alternative with favorable membrane interfaces and potential advantages for protein and ribonucleoprotein delivery, but their clinical translation is constrained by heterogeneity, loading efficiency, product characterization, and scalable manufacturing. This review summarizes recent advances in non-viral gene-delivery platforms, compares their strengths and limitations, and discusses future directions in cell-selective delivery, endosomal escape, transient delivery of genome-editing machinery, engineered EVs, hybrid vectors, and manufacturing-oriented development. The field is transitioning from organ-level delivery toward delivery of the correct payload to the correct cell type at a clinically relevant exposure and safety margin.
The composition of core functions of the component of LNPs, molecular evolution trajectory, targeting optimization and so on, and the latest research progress of LNP in targeted delivery of traditional chemotherapeutic agents, specific gene regulation by nucleic acid therapy and combination cancer therapy etc are summarized.
Haoze Zhu· International Journal of Bio...· 0 citations
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