4.7 Article

Pathway of cytotoxicity induced by folic acid modified selenium nanoparticles in MCF-7 cells

期刊

APPLIED MICROBIOLOGY AND BIOTECHNOLOGY
卷 97, 期 3, 页码 1051-1062

出版社

SPRINGER
DOI: 10.1007/s00253-012-4359-7

关键词

Apoptosis; Endocytosis; Folate; MCF-7 cells; Selenium nanoparticles; Subcellular localization

资金

  1. National Basic Research Program of China (973 Program) [2010CB833603]
  2. Overseas, Hong Kong & Macao Cooperative Research Funds of China [31129002]
  3. National Natural Science Foundation of China [30872404]
  4. Jinan University [21612601, 50503594]

向作者/读者索取更多资源

Selenium nanoparticles (Se NPs) have been recognized as promising materials for biomedical applications. To prepare Se NPs which contained cancer targeting methods and to clarify the cellular localization and cytotoxicity mechanisms of these Se NPs against cancer cells, folic acid protected/modified selenium nanoparticles (FA-Se NPs) were first prepared by a one-step method. Some morphologic and spectroscopic methods were obtained to prove the successfully formation of FA-Se NPs while free folate competitive inhibition assay, microscope, and several biological methods were used to determine the in vitro uptake, subcellular localization, and cytotoxicity mechanism of FA-Se NPs in MCF-7 cells. The results indicated that the 70-nm FA-Se NPs were internalized by MCF-7 cells through folate receptor-mediated endocytosis and targeted to mitochondria located regions through endocytic vesicles transporting. Then, the FA-Se NPs entered into mitochondria; triggered the mitochondria-dependent apoptosis of MCF-7 cells which involved oxidative stress, Ca-2+ stress changes, and mitochondrial dysfunction; and finally caused the damage of mitochondria. FA-Se NPs released from broken mitochondria were transported into nucleus and further into nucleolus which then induced MCF-7 cell cycle arrest. In addition, FA-Se NPs could induce cytoskeleton disorganization and induce MCF-7 cell membrane morphology alterations. These results collectively suggested that FA-Se NPs could be served as potential therapeutic agents and organelle-targeted drug carriers in cancer therapy.

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