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RNA nanotechnology is an emerging field at the interface of biochemistry and nanomaterials that shows immense promise for applications in nanomedicines, therapeutics and nanotechnology. Noncoding RNAs, such as siRNA, miRNA, ribozymes, and riboswitches, play important roles in the regulation of cellular processes. They carry out highly specific functions on a compact and efficient footprint. The properties of specificity and small size make them excellent modules in the construction of multifaceted RNA nanoparticles for targeted delivery and therapy. Biological activity of RNA molecules, however, relies on their proper folding. Therefore their thermodynamic and biochemical stability in the cellular environment is critical. Consequently, it is essential to assess global fold and intracellular lifetime of multifaceted RNA nanoparticles to optimize their therapeutic effectiveness. Here, we describe a method to express and assemble stable RNA nanoparticles in cells, and to assess the folding and turnover rate of RNA nanoparticles in vitro as well as in vivo in real time using a thermostable core motif derived from pRNA of bacteriophage Phi29 DNA packaging motor and fluorogenic RNA modules.
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http://dx.doi.org/10.1007/978-1-4939-2562-9_7 | DOI Listing |
J Med Chem
September 2025
Department of Natural Products and Medicinal Chemistry, CSIR-Indian Institute of Chemical Technology, Hyderabad 500007, India.
Nitric oxide (NO) is a multifunctional signaling molecule in oncology, influencing tumor progression, apoptosis, and immune responses. In contrast, chlorambucil (Cbl), a DNA-alkylating chemotherapeutic, induces cytotoxicity through DNA damage. Here, we report a photoresponsive nanoparticle platform for sequential codelivery of NO and Cbl, where NO is released within 10 min of irradiation, followed by Cbl release within 30 min.
View Article and Find Full Text PDFJ Control Release
September 2025
Department of Pharmaceutical Sciences, College of Pharmacy, University of Michigan, Ann Arbor, MI 48109, USA; Bioinnovations in Brain Cancer, Biointerfaces Institute; The Developmental Therapeutics Program, Rogel Cancer Center; Center for RNA Biomedicine, University of Michigan, Ann Arbor, MI 48109,
Lipid nanoparticles (LNPs) have played an instrumental role in the delivery of RNA therapeutics and vaccines, including the emerging class of synthetic circular RNA (circRNA). Pulmonary vaccines hold the potential to prevent various respiratory infectious diseases, such as influenza caused by influenza infection. Here, we report the pulmonary delivery of LNPs loaded with highly stable small circRNA vaccine for influenza prevention.
View Article and Find Full Text PDFHepatology
September 2025
Department of Pathology, Department of Molecular Biology, Moores Cancer Center, University of California San Diego, La Jolla, CA 92037, USA.
Background And Aims: So far, there is no effective mechanism-based therapeutic agent tailored for liver tumors. Immune checkpoint inhibitors (ICIs) have demonstrated limited efficacy in liver cancer, often associated with severe adverse effects. Although poly-inosinic:cytidylic acid (polyIC) has shown an adjuvant effect when combined with anti-PD-L1 antibody (αPD-L1) in treating liver tumors in animal models, its systemic toxicity limits its clinical utility.
View Article and Find Full Text PDFMol Ther Methods Clin Dev
June 2025
Eisai Co., Ltd., Tsukuba Research Laboratories, 5-1-3, Tokodai, Tsukuba, Ibaraki 300-2635, Japan.
Liver-humanized chimeric mice (PXB-mice) are widely utilized for predicting human pharmacokinetics (PK) and as human disease models. However, residual metabolic activity of mouse hepatocytes in chimeric mice can interfere with accurate human PK estimation. Lipid nanoparticle (LNP)-formulated small interfering RNA (siRNA) treatment makes it possible to eliminate the shortcomings of chimeras and create new models.
View Article and Find Full Text PDFMol Ther Methods Clin Dev
June 2025
Key Laboratory of RNA Innovation, Science and Engineering, CAS Center for Excellence in Molecular Cell Science, Shanghai Institute of Biochemistry and Cell Biology, Chinese Academy of Sciences, University of Chinese Academy of Sciences, Shanghai 200031, China.
Lipid nanoparticles (LNPs) are lead non-viral vectors for delivering nucleic acids. LNPs can efficiently encapsulate nucleic acids, protect them from degradation, enhance cellular uptake and induce endosome escape, which show high transfection efficiency and low immunogenicity. In this review, we first introduce the LNP components, highlighting their critical roles in encapsulation, stability, delivery efficiency, and tissue tropism.
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