4.7 Article

Jet-Lagged Nanoparticles Enhanced Immunotherapy Efficiency through Synergistic Reconstruction of Tumor Microenvironment and Normalized Tumor Vasculature

期刊

ADVANCED HEALTHCARE MATERIALS
卷 9, 期 12, 页码 -

出版社

WILEY
DOI: 10.1002/adhm.202000075

关键词

immunotherapy; Jet-lagged nanoparticles; lactic acid; metabolic regulation; vascular normalization treatment

资金

  1. National Natural Science Foundation of China [81773655, 81803457]
  2. 333 Project Talent Training Fund of Jiangsu Province [BRA2017432]
  3. Double First-Class University Plan [CPU2018GY26]
  4. Open Project of Jiangsu Key Laboratory of Druggability of Biopharmaceuticals [JKLDBKF201702]
  5. Project Program of State Key Laboratory of Natural Medicines, China Pharmaceutical University [JKGQ201107]
  6. College Students Innovation Project for the R&D of Novel Drugs [J1310032]
  7. National Fund for Fostering Talents of Basic Science (NFFTBS)
  8. National Undergraduate Training Program for Innovation and Entrepreneurship

向作者/读者索取更多资源

Lactic acid (LA), an anaerobic glycolysis metabolite normally oversecreted by tumor cells, can inhibit the activity of T cells and stimulate the rapid proliferation and migration of tumor endothelial cells (TECs), thereby limiting the synergistic treatment efficiency of tumor immunotherapy and vascular normalization. Herein, Jet-lagged nanoparticles, apatinib (APA)-loaded TEC-targeting nanodrug (APA/MCP) and lonidamine (LND)-loaded tumor cell-targeting nanodrug (LND/MCA), are constructed to combine vascular normalization therapy and tumor cell metabolic treatment. APA/MCP can block VEGF/VEGFR2 to inhibit TEC proliferation and LND/MCA can inhibit LA efflux to remodel tumor acid metabolism. After treatment, Jet-lagged nanoparticles remarkably reduce the level of LA in tumor microenvironment (TME) through limiting LA efflux. Besides, the pericyte cell coverage ratio of tumor vasculature increased to 69%, which is significantly improved compared to the APA/MCP group (47%). Moreover, the results of in vivo pharmacodynamic studies show that after the above synergistic reconstruction of TME and normalized tumor vasculature, the therapeutic effect of programmed death 1 (PD-1) drug is improved 3-folds to that of the PD-1 group. Above all, the strategy in this paper may propose an innovative vision to facilitate the tumor immunotherapy through high-precision spatiotemporal delivery strategy of nanodrugs.

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