4.8 Article

Enhanced cellular uptake and nuclear accumulation of drug-peptide nanomedicines prepared by enzyme-instructed self-assembly

期刊

JOURNAL OF CONTROLLED RELEASE
卷 317, 期 -, 页码 109-117

出版社

ELSEVIER
DOI: 10.1016/j.jconrel.2019.11.028

关键词

Self-assembly; Peptide; Nuclear accumulation; Anti-cancer; Enzyme

资金

  1. National Science Fund for Distinguished Young Scholars [31825012]
  2. National Key Research and Development Program of China [2017YFC1103502]
  3. Fundamental Research Funds for the Central Universities
  4. National Nature Science Fund of China [31670973, 51673150]
  5. Tianjin Science Fund for Distinguished Young Scholars [17JCJQJC44900]
  6. National Program for Support of Top-notch Young Professionals
  7. Science and Technology Support Funding of Tianjin [18YFZCSY00280]

向作者/读者索取更多资源

Subcellular delivery of nanomedicines has emerged as a promising approach to enhance the therapeutic efficacy of anticancer drugs. Nuclear accumulation of anticancer drugs are essential for its therapeutic efficacy because their targets are generally located within the nucleus. However, strategies for the nuclear accumulation of nanomedicines with anticancer drugs rarely reported. In this study, we reported a promising nanomedicine, comprising a drug-peptide amphiphile, with enhanced cellular uptake and nuclear accumulation capability for cancer therapy. The drug-peptide amphiphile consisted of the peptide ligand PMI (TSFAEYWNLLSP), which was capable of activating the p53 gene by binding with the MDM2 and MDMX located in the cell nucleus. Peptide conformations could be finely tuned by using different strategies including heating-cooling and enzyme-in-structed self-assembly (EISA) to trigger molecular self-assembly at different temperatures. Due to the different peptide conformations, the drug-peptide amphiphile self-assembled into nanomedicines with various properties, including stabilities, cellular uptake, and nuclear accumulation. The optimized nanomedicine formed by EISA strategy at a low temperature of 4 degrees C showed enhanced cellular uptake and nuclear accumulation capability, and thus exhibited superior anticancer ability both in vitro and in vivo. Overall, our study provides a useful strategy for finely tuning the properties and activities of peptide-based supramolecular nanomaterials, which may lead to optimized nanomedicines with enhanced performance.

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