Growth of ZIF-8 Nanoparticles In Situ on Graphene Oxide Nanosheets: A Multifunctional Nanoplatform for Combined Ion-Interference and Photothermal Therapy.
Chunxu LvWenyan KangShuo LiuPi-Shan YangYuta NishinaShaohua GeAlberto BiancoBaojin MaPublished in: ACS nano (2022)
The regulation of intracellular ions' overload to interrupt normal bioprocesses and cause cell death has been developed as an efficient strategy (named as ion-interference therapy/IIT) to treat cancer. In this study, we design a multifunctional nanoplatform (called BSArGO@ZIF-8 NSs) by in situ growth of metal organic framework nanoparticles (ZIF-8 NPs) onto the graphene oxide (GO) surface, subsequently reduced by ascorbic acid and modified by bovine serum albumin. This nanocomplex causes the intracellular overload of Zn 2+ , an increase of reactive oxygen species (ROS), and exerts a broad-spectrum lethality to different kinds of cancer cells. BSArGO@ZIF-8 NSs can promote cell apoptosis by initiating bim (a pro-apoptotic protein)-mediated mitochondrial apoptotic events, up-regulating PUMA/NOXA expression, and down-regulating the level of Bid/p53AIP1. Meanwhile, Zn 2+ excess triggers cellular dysfunction and mitochondria damage by activating the autophagy signaling pathways and disturbing the intracellular environmental homeostasis. Combined with the photothermal effect of reduced GO (rGO), BSArGO@ZIF-8 NSs mediated ion-interference and photothermal combined therapy leads to effective apoptosis and inhibits cell proliferation and angiogenesis, bringing a higher efficacy in tumor suppression in vivo . This designed Zn-based multifunctional nanoplatform will allow promoting further the development of IIT and the corresponding combined cancer therapy strategy.
Keyphrases
- cancer therapy
- cell death
- reactive oxygen species
- drug delivery
- metal organic framework
- cell cycle arrest
- oxidative stress
- cell proliferation
- signaling pathway
- photodynamic therapy
- heavy metals
- drug release
- poor prognosis
- epithelial mesenchymal transition
- cell cycle
- induced apoptosis
- risk assessment
- endothelial cells
- quantum dots
- squamous cell carcinoma
- climate change
- binding protein
- dna damage
- reduced graphene oxide
- bone marrow
- long non coding rna
- human health
- small molecule