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Dendrimers are branched macromolecular structures that are useful nanocarriers for small-molecule drugs, such as cancer therapeutics. Their small size permits penetration into solid tumors, coupled with functionalization with a low-fouling PEG coating that minimizes transient cellular interactions and enhances plasma circulation time. While PEGylated dendrimers show significant promise as anticancer therapeutics, there is potential to increase tumor cell specificity and drive uptake of drugs into cells by conjugating cell-targeting ligands onto the dendrimers. To achieve this, we used an expanded genetic code and bio-orthogonal click chemistry to functionalize monomethyl auristatin E (MMAE)-loaded PEGylated dendrimers with a single tumor cell-targeting nanobody per dendrimer. The uniform addition of a single nanobody ligand facilitated greater intracellular uptake of the drug payload into HER2-positive target cells, while preserving the desirable circulatory characteristics of dendrimers. While the nanobody-dendrimer conjugates show similar levels of tumor infiltration over 24 h compared to unmodified dendrimers, the targeted dendrimers had significantly greater inhibition of tumor growth and long-term retention in the tumors. Our results highlight that biodistribution studies alone are poor predictors of therapeutic performance. The controlled conjugation strategy presented here preserves the size advantage and tissue penetration of dendrimers while maximizing targeted cellular uptake and potency in difficult-to-access solid tumor tissue.
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http://dx.doi.org/10.1021/acsnano.4c10851 | DOI Listing |
Carbohydr Res
September 2025
Area for Molecular Function, Division of Material Science, Graduate School of Science and Engineering, Saitama University, Sakura, Saitama, 338-8570, Japan; Medical Innovation Research Unit (MiU), Advanced Institute of Innovative Technology (AIIT), Saitama University, Sakura, Saitama, 338-8570, Japa
Multivalent interactions between lectins and glycans are crucial for biological recognition; however, predicting functional inhibition based on binding affinity remains challenging. Herein, we investigated a series of structurally defined N-acetylglucosamine (GlcNAc)-functionalized dendrimers (1a-1c and 2a-2c) to examine how spatial orientation and temperature influenced the inhibition of wheat germ agglutinin (WGA). Using enzyme-linked lectin assays (ELLAs), we observed biphasic inhibition profiles for all the dendrimers, characterized by an initial enhancement of WGA binding at low concentrations, followed by effective inhibition at higher concentrations.
View Article and Find Full Text PDFBiochem Pharmacol
September 2025
Department of Oncology, Karmanos Cancer Institute, Wayne State University, Detroit, MI 48201, USA. Electronic address:
Glioblastoma (GBM) is the most aggressive and lethal primary brain tumor in adults, characterized by rapid growth, diffuse infiltration, and a dismal prognosis. Despite aggressive treatment involving maximal surgical resection followed by radiotherapy and temozolomide (TMZ) chemotherapy, therapeutic outcomes remain poor due to intrinsic and acquired resistance. Autophagy, a catabolic process that degrades damaged cellular components, plays a critical role in this resistance by enabling tumor cells to survive under metabolic, hypoxic, and therapeutic stress conditions.
View Article and Find Full Text PDFDrug Dev Ind Pharm
September 2025
Department of Pharmaceutical Technology, Maulana Abul Kalam Azad University of Technology, West Bengal, Nadia, PIN-741249, India.
Objective: This review aims to explore advanced nanotechnology-integrated delivery systems designed to facilitate the transport of therapeutic agents across the blood-brain barrier (BBB) for the treatment of central nervous system (CNS) disorders, particularly neurodegenerative diseases.Significance:CNS disorders remain a primary global health concern due to their progressive nature and limited treatment options. Conventional therapies exhibit minimal efficacy, primarily due to the restrictive nature of the BBB, which impedes drug access to brain tissue.
View Article and Find Full Text PDFBiomater Sci
September 2025
Henan-Macquarie Joint Center for Biomedical Innovation, College of Life Sciences, Henan University, Kaifeng, China.
Gene therapy holds significant promise for the treatment of liver cancer. However, the development of safe and efficient gene delivery systems remains a critical challenge. Cationic polymers are widely utilized as gene carriers due to their high transfection efficiency, yet their application is often hindered by cytotoxicity and lack of target specificity.
View Article and Find Full Text PDFCurr Aging Sci
September 2025
Department of Pharmacy, Faculty of Pharmacy, Integral University, Lucknow, India.
Dementia, characterized by a progressive decline in cognitive function, poses a significant challenge to global healthcare systems, with current therapeutic approaches offering limited efficacy. The development of nanotechnology-based drug delivery systems has introduced promising avenues for enhancing the treatment of neurodegenerative disorders such as Alzheimer's disease. Dendrimers, with their highly branched, nanoscale structure, provide an innovative platform for targeted drug delivery to the brain.
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