4.6 Article

Biodegradable PEG-dendritic block copolymers: synthesis and biofunctionality assessment as vectors of siRNA

期刊

JOURNAL OF MATERIALS CHEMISTRY B
卷 5, 期 25, 页码 4901-4917

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7tb00279c

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资金

  1. FEDER funds through the Programa Operacional Factores de Competitividade-COMPETE
  2. Portuguese funds through FCT-Fundacao para a Ciencia e a Tecnologia [PTDC/CTM-NAN/112428/2009, PTDC/CTM-NAN/3547/2014]
  3. FCT/MEC through National Fund
  4. FEDER [PT2020, 4293]
  5. FCT [SFRH/BPD/69110/2010, SFRH/BPD/108738/2015]
  6. Norte Portugal Regional Operational Programme (NORTE), under the PORTUGAL Partnership Agreement, through the European Regional Development Fund (ERDF) [NORTE-01-0145-FEDER-000012]
  7. Marie Curie Actions of the European Community's Seventh Framework Program [PIEF-GA-2011-300485]
  8. Spanish Government (MINECO) [CTQ2012-34790, CTQ2012-33436]
  9. Xunta de Galicia [CN2011/037]
  10. Fundação para a Ciência e a Tecnologia [PTDC/CTM-NAN/3547/2014, PTDC/CTM-NAN/112428/2009, SFRH/BPD/69110/2010] Funding Source: FCT

向作者/读者索取更多资源

One important drawback of most of the currently used dendrimers for biomedical applications is their high stability under physiological conditions that can result in cytotoxicity or complications induced by the accumulation of non-degradable synthetic materials in the organism. Particularly in the gene therapy field, vector stability can further hinder the intracellular release of the nucleic acid from the dendriplex, consequently leading to low transfection efficiencies. Therefore, biodegradable cationic dendritic structures have been eagerly awaited. However, the development of these dendritic nanocarriers is challenging because of the undesired and/or premature degradation observed during their synthesis and/or application. Here, we report new hybrid-biodegradable, biocompatible, non-toxic, and water-soluble azide-terminated PEG-GATGE dendritic block copolymers, based on a gallic acid (GA) core and triethylene glycol (TG) butanoate arms, incorporating ester bonds (E) at the dendritic arms/shell. Their successful functionalization by click'' chemistry with unprotected alkynated amines allowed complexation and delivery of siRNA. The hydrophobic character of the GATGE building unit confers to these hydrolyzable dendritic bionanomaterials a great ability to complex, protect and mediate the cellular internalization of siRNA. Moreover, the localization of the degradation points at the dendritic periphery, close to the complexed siRNA, was found to be important for nucleic acid release from the nanoparticles, rendering a significant improvement of the transfection efficiency compared to their hydrolytically stable PEG-GATG copolymer counterparts. The present study puts forward these biodegradable PEG-dendritic block copolymers not only as suitable vectors for nucleic acids, but also as new avenues for further developments exploring their use in theranostics.

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