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◆ International journal of nanomedicine2026-01-01

Near-Infrared Fluorescent Highly Branched Poly(β-Amino Ester)s Nanoparticles for Gene Delivery: In vivo Biodistribution and Safety Evaluation.

Hongzhen Zhang, Jiahao Liu, Rui Huang, Ailin Hu, Rui Miao, Guang Chen, Haonan Li, Wenxin Wang, Zhonglei He

一句话结论 · In one sentence

HPAE-3 achieved a balanced integration of NIR-I fluorescence, DNA-delivery capability, nanoparticle stability, and preliminary in vivo tolerability. These results establish ICG-labeled HPAE as a potential platform for noninvasive visualization of polymer-mediated gene delivery and provide a foundation for further investigation of its biodistribution, intracellular fate, and therapeutic applications.

原始摘要(英文原文)· Original abstract
BACKGROUND: Cationic highly branched poly(β-amino ester)s (HPAEs) represent a promising class of nonviral gene-delivery polymers; however, their in vivo distribution and biological fate remain challenging to monitor. Here, we explored covalent conjugation of indocyanine green (ICG) as a strategy to impart near-infrared-I (NIR-I) fluorescence to HPAEs while maintaining their DNA complexation capacity and gene-delivery performance. METHODS: HPAE was modified with increasing feed amounts of ICG-N-hydroxysuccinimide (ICG-NHS), generating a series of fluorescent polymers designated HPAE-0, HPAE-1, HPAE-3, HPAE-5, HPAE-7, and HPAE-9, where the numerical suffixes indicate ICG-NHS feed volumes rather than substitution ratios. The resulting conjugates and their DNA nanoparticles were characterized by spectroscopic and chromatographic analyses, DNA-binding assays, dynamic light scattering, zeta-potential measurements, transmission electron microscopy, and optical-stability evaluation. In vitro gene-delivery activity and cytocompatibility were assessed in multiple cell models, while systemic distribution, biocompatibility, and tissue responses were evaluated in healthy BALB/c mice following administration. RESULTS: Increasing ICG-NHS feed resulted in tunable incorporation of fluorescent moieties into the HPAE backbone. Among the tested formulations, HPAE-3 exhibited an apparent amine substitution degree of 18.98% ± 0.54% and a fluorescence emission maximum at approximately 834 nm. HPAE-3-based nanoparticles displayed favorable physicochemical properties, including hydrodynamic diameters of approximately 170-290 nm, low-to-moderate dispersity (PDI, 0.18-0.40), positive surface potentials (+23 to +40 mV), and efficient DNA condensation at polymer/DNA ratios ≥20:1. Importantly, ICG incorporation at this level preserved reporter-gene expression in HEK293T, RAW264.7, and MLE-12 cells while maintaining acceptable cytocompatibility. Following systemic administration in mice, HPAE-3 mediated luciferase reporter-gene expression predominantly in the liver, spleen, and lungs. HPAE-3-associated NIR-I fluorescence was most evident in the liver and lungs at 6 h, with a weaker signal in the spleen, and declined thereafter; by 72 h, residual ex vivo fluorescence was detected predominantly in the liver. No apparent acute tissue damage, significant alterations in serum biochemical parameters, or deviations in body-weight profiles were observed compared with control groups. CONCLUSION: HPAE-3 achieved a balanced integration of NIR-I fluorescence, DNA-delivery capability, nanoparticle stability, and preliminary in vivo tolerability. These results establish ICG-labeled HPAE as a potential platform for noninvasive visualization of polymer-mediated gene delivery and provide a foundation for further investigation of its biodistribution, intracellular fate, and therapeutic applications.
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Near-Infrared Fluorescent Highly Branched Poly(β-Amino Ester)s Nanoparticles for Gene Delivery: In vivo Biodistribution and Safety Evaluation. — 科研速览 Science Skim