4.8 Article

Intracellular responsive dual delivery by endosomolytic polyplexes carrying DNA anchored porous silicon nanoparticles

期刊

JOURNAL OF CONTROLLED RELEASE
卷 249, 期 -, 页码 111-122

出版社

ELSEVIER
DOI: 10.1016/j.jconrel.2017.01.046

关键词

Nanocomplexes; Combined delivery; Click chemistry; Bioresponsive; Endosomal escape; Combination therapy

资金

  1. Academy of Finland [252215, 281300]
  2. University of Helsinki Research Funds
  3. Biocentrum Helsinki
  4. European Research Council under the European Union Seventh Framework Programme (FP/2007-2013) [310892]
  5. Academy of Finland (AKA) [281300, 252215, 252215, 281300] Funding Source: Academy of Finland (AKA)

向作者/读者索取更多资源

Bioresponsive cytosolic nanobased multidelivery has been emerging as an enormously challenging novel concept due to the intrinsic protective barriers of the cells and hardly controllable performances of nanomaterials. Here, we present a new paradigm to advance nano-in-nano integration technology amenable to create multifunctional nanovehicles showing considerable promise to overcome restrictions of intracellular delivery, solve impediments of endosomal localization and aid effectual tracking of nanoparticles. A redox responsive intercalator chemistry comprised of cystine and 9-aminoacridine is designed as a cross-linker to cap carboxylated porous silicon nanoparticles with DNA. These intelligent nanocarriers are then encapsulated within novel one-pot electrostatically complexed nano-networks made of a zwitterionic amino acid (cysteine), an anionic bioadhesive polymer (poly(methyl vinyl ether-alt-maleic acid)) and a cationic endosomolytic polymer (polyethyleneimine). This combined nanocomposite is successfully tested for the co-delivery of hydrophobic (sorafenib) or hydrophilic (calcein) molecules loaded within the porous core, and an imaging agent covalently integrated into the polyplex shell by click chemistry. High loading capacity, low cyto- and hemo-toxicity, glutathione responsive on-command drug release, and superior cytosolic delivery are shown as achievable key features of the proposed formulation. Overall, formulating drug molecules, DNA and imaging agents, without any interference, in a physicochemically optimized carrier may open a path towards broad applicability of these cost-effective multivalent nanocomposites for treating different diseases. (C) 2017 Elsevier B.V. All rights reserved.

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