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金属有机框架纳米粒子通过细胞外 pH 控制诱导细胞发生细胞焦亡。

Metal-Organic Framework Nanoparticles Induce Pyroptosis in Cells Controlled by the Extracellular pH.

机构信息

Department of Chemistry and Center for NanoScience (CeNS), LMU Munich, Munich, 81377, Germany.

Nanosystems Initiative Munich (NIM), LMU Munich, Munich, 81377, Germany.

出版信息

Adv Mater. 2020 May;32(19):e1907267. doi: 10.1002/adma.201907267. Epub 2020 Mar 17.

Abstract

Ion homeostasis is essential for cellular survival, and elevated concentrations of specific ions are used to start distinct forms of programmed cell death. However, investigating the influence of certain ions on cells in a controlled way has been hampered due to the tight regulation of ion import by cells. Here, it is shown that lipid-coated iron-based metal-organic framework nanoparticles are able to deliver and release high amounts of iron ions into cells. While high concentrations of iron often trigger ferroptosis, here, the released iron induces pyroptosis, a form of cell death involving the immune system. The iron release occurs only in slightly acidic extracellular environments restricting cell death to cells in acidic microenvironments and allowing for external control. The release mechanism is based on endocytosis facilitated by the lipid-coating followed by degradation of the nanoparticle in the lysosome via cysteine-mediated reduction, which is enhanced in slightly acidic extracellular environment. Thus, a new functionality of hybrid nanoparticles is demonstrated, which uses their nanoarchitecture to facilitate controlled ion delivery into cells. Based on the selectivity for acidic microenvironments, the described nanoparticles may also be used for immunotherapy: the nanoparticles may directly affect the primary tumor and the induced pyroptosis activates the immune system.

摘要

离子内稳对于细胞存活至关重要,而特定离子浓度的升高则被用于启动不同形式的细胞程序性死亡。然而,由于细胞对离子摄取的严格调控,以可控的方式研究特定离子对细胞的影响受到了阻碍。本文展示了脂质包覆的铁基金属有机框架纳米颗粒能够将大量铁离子递送到细胞内并释放出来。虽然高浓度的铁通常会引发铁死亡,但在这里,释放的铁会诱导细胞焦亡,这是一种涉及免疫系统的细胞死亡形式。铁的释放仅发生在略微酸性的细胞外环境中,从而将细胞死亡限制在酸性微环境中的细胞中,并允许外部控制。这种释放机制基于脂质包覆促进的内吞作用,随后纳米颗粒在溶酶体中通过半胱氨酸介导的还原作用降解,在略微酸性的细胞外环境中这种降解作用会增强。因此,本文展示了混合纳米颗粒的一种新功能,即利用其纳米结构将离子可控地递送到细胞内。基于对酸性微环境的选择性,所描述的纳米颗粒也可用于免疫疗法:纳米颗粒可直接影响原发性肿瘤,而诱导的细胞焦亡会激活免疫系统。

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