4.8 Article

Effects of ligands with different water solubilities on self-assembly and properties of targeted nanoparticles

期刊

BIOMATERIALS
卷 32, 期 26, 页码 6226-6233

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2011.04.078

关键词

Nanoparticles; Targeting ligand; Surface ligand density; RGD; Folate

资金

  1. Koch-Prostate Cancer Foundation
  2. NCI Center of Cancer Nanotechnology Excellence [U54-CA151884]
  3. NHLBI [HHSN268201000045C]
  4. NSF

向作者/读者索取更多资源

The engineering of drug-encapsulated targeted nanoparticles (NPs) has the potential to revolutionize drug therapy. A major challenge for the smooth translation of targeted NPs to the clinic has been developing methods for the prediction and optimization of the NP surface composition, especially when targeting ligands (TL) of different chemical properties are involved in the NP self-assembly process. Here we investigated the self-assembly and properties of two different targeted NPs decorated with two widely used TLs that have different water solubilities, and developed methods to characterize and optimize NP surface composition. We synthesized two different biofunctional polymers composed poly(lactide-co-glycolide)-b-polyethyleneglycol-RGD (PLGA-PEG-RGD, high water solubility TL) and PLGA-PEG-Folate (low water solubility TL). Targeted NPs with different ligand densities were prepared by mixing TL-conjugated polymers with non-conjugated PLGA-PEG at different ratios through nano-precipitation. The NP surface composition was quantified and the results revealed two distinct nanoparticle assembly behaviors: for the case of PLGA-PEG-RGD, nearly all RGD molecules conjugated to the polymer were found to be on the surface of the NPs. In contrast, only similar to 20% of the folate from PLGA-PEG-Folate was present on the NP surface while the rest remained presumably buried in the PLGA NP core due to hydrophobic interactions of PLGA and folate. Finally, in vitro phagocytosis and cell targeting of NPs were investigated, from which a window of NP formulations exhibiting minimum uptake by macrophages and maximum uptake by targeted cells was determined. These results underscore the impact the ligand chemical properties have on the targeting capabilities of self-assembled targeted nanoparticles and provide an engineering strategy for improving their targeting specificity. (C) 2011 Elsevier Ltd. All rights reserved.

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