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氧化石墨烯的横向尺寸决定了枯否细胞、肝窦内皮细胞和肝细胞中不同的细胞摄取和细胞死亡途径。

Lateral size of graphene oxide determines differential cellular uptake and cell death pathways in Kupffer cells, LSECs, and hepatocytes.

作者信息

Li Jiulong, Wang Xiang, Mei Kuo-Ching, Chang Chong Hyun, Jiang Jinhong, Liu Xiangsheng, Liu Qi, Guiney Linda M, Hersam Mark C, Liao Yu-Pei, Meng Huan, Xia Tian

机构信息

Center of Environmental Implications of Nanotechnology (UC CEIN), University of California, Los Angeles, CA 90095, USA.

California NanoSystems Institute, University of California, Los Angeles, CA 90095, USA.

出版信息

Nano Today. 2021 Apr;37. doi: 10.1016/j.nantod.2020.101061. Epub 2020 Dec 24.

Abstract

As a representative two-dimensional (2D) nanomaterial, graphene oxide (GO) has shown high potential in many applications due to its large surface area, high flexibility, and excellent dispersibility in aqueous solutions. These properties make GO an ideal candidate for bio-imaging, drug delivery, and cancer therapy. When delivered to the body, GO has been shown to accumulate in the liver, the primary accumulation site of systemic delivery or secondary spread from other uptake sites, and induce liver toxicity. However, the contribution of the GO physicochemical properties and individual liver cell types to this toxicity is unclear due to property variations and diverse cell types in the liver. Herein, we compare the effects of GOs with small (GO-S) and large (GO-L) lateral sizes in three major cell types in liver, Kupffer cells (KCs), liver sinusoidal endothelial cells (LSECs), and hepatocytes. While GOs induced cytotoxicity in KCs, they induced significantly less toxicity in LSECs and hepatocytes. For KCs, we found that GOs were phagocytosed that triggered NADPH oxidase mediated plasma membrane lipid peroxidation, which leads to PLC activation, calcium flux, mitochondrial ROS generation, and NLRP3 inflammasome activation. The subsequent caspase-1 activation induced IL-1β production and GSDMD-mediated pyroptosis. These effects were lateral size-dependent with GO-L showing stronger effects than GO-S. Amongst the liver cell types, decreased cell association and the absence of lipid peroxidation resulted in low cytotoxicity in LSECs and hepatocytes. Using additional GO samples with different lateral sizes, surface functionalities, or thickness, we further confirmed the differential cytotoxic effects in liver cells and the major role of GO lateral size in KUP5 pyroptosis by correlation studies. These findings delineated the GO effects on cellular uptake and cell death pathways in liver cells, and provide valuable information to further evaluate GO effects on the liver for biomedical applications.

摘要

作为一种典型的二维(2D)纳米材料,氧化石墨烯(GO)因其大表面积、高柔韧性以及在水溶液中的优异分散性,在许多应用中展现出了巨大潜力。这些特性使GO成为生物成像、药物递送和癌症治疗的理想候选材料。当GO被输送到体内时,已证明它会在肝脏中积累,肝脏是全身递送的主要积累部位或其他摄取部位的继发性扩散部位,并会诱导肝毒性。然而,由于GO的物理化学性质存在差异以及肝脏中细胞类型多样,目前尚不清楚GO的物理化学性质和单个肝细胞类型对这种毒性的贡献。在此,我们比较了小尺寸(GO-S)和大尺寸(GO-L)横向尺寸的GO对肝脏中三种主要细胞类型,即库普弗细胞(KCs)、肝窦内皮细胞(LSECs)和肝细胞的影响。虽然GO在KCs中诱导了细胞毒性,但在LSECs和肝细胞中诱导的毒性明显较小。对于KCs,我们发现GO被吞噬,触发了NADPH氧化酶介导的质膜脂质过氧化,这导致PLC激活、钙通量、线粒体ROS生成以及NLRP3炎性小体激活。随后的caspase-1激活诱导了IL-1β的产生以及GSDMD介导的细胞焦亡。这些效应具有横向尺寸依赖性,GO-L的效应比GO-S更强。在肝细胞类型中,细胞结合减少和脂质过氧化的缺失导致LSECs和肝细胞中的细胞毒性较低。通过相关性研究,我们使用了具有不同横向尺寸、表面功能或厚度的额外GO样品,进一步证实了肝细胞中的差异细胞毒性效应以及GO横向尺寸在KUP5细胞焦亡中的主要作用。这些发现描绘了GO对肝细胞摄取和细胞死亡途径的影响,并为进一步评估GO在生物医学应用中对肝脏的影响提供了有价值的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb08/8153408/6d834c8999cf/nihms-1669512-f0002.jpg

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