Centre for Health Protection, National Institute for Public Health & the Environment, 3720 BA Bilthoven, The Netherlands.
Health Unit, VITO NV, 2400 Mol, Belgium.
Int J Mol Sci. 2022 May 20;23(10):5763. doi: 10.3390/ijms23105763.
The widespread and increasing use of engineered nanomaterials (ENM) increases the risk of human exposure, generating concern that ENM may provoke adverse health effects. In this respect, their physicochemical characteristics are critical. The immune system may respond to ENM through inflammatory reactions. The NLRP3 inflammasome responds to a wide range of ENM, and its activation is associated with various inflammatory diseases. Recently, anisotropic ENM have become of increasing interest, but knowledge of their effects on the immune system is still limited. The objective of the study was to compare the effects of gold ENM of different shapes on NLRP3 inflammasome activation and related signalling pathways. Differentiated THP-1 cells (wildtype, ASC- or NLRP3-deficient), were exposed to PEGylated gold nanorods, nanostars, and nanospheres, and, thus, also different surface chemistries, to assess NLRP3 inflammasome activation. Next, the exposed cells were subjected to gene expression analysis. Nanorods, but not nanostars or nanospheres, showed NLRP3 inflammasome activation. ASC- or NLRP3-deficient cells did not show this effect. Gene Set Enrichment Analysis revealed that gold nanorod-induced NLRP3 inflammasome activation was accompanied by downregulated sterol/cholesterol biosynthesis, oxidative phosphorylation, and purinergic receptor signalling. At the level of individual genes, downregulation of Paraoxonase-2, a protein that controls oxidative stress, was most notable. In conclusion, the shape and surface chemistry of gold nanoparticles determine NLRP3 inflammasome activation. Future studies should include particle uptake and intracellular localization.
纳米材料(ENM)的广泛和日益增多的应用增加了人类暴露的风险,引起了人们的关注,即 ENM 可能会引发不良的健康影响。在这方面,它们的物理化学特性是至关重要的。免疫系统可能会通过炎症反应来应对 ENM。NLRP3 炎性小体对广泛的 ENM 作出反应,其激活与各种炎症性疾病有关。最近,各向异性的 ENM 引起了越来越多的关注,但对它们对免疫系统的影响的了解仍然有限。本研究的目的是比较不同形状的金纳米材料对 NLRP3 炎性小体激活及相关信号通路的影响。用 PEG 化的金纳米棒、纳米星和纳米球(以及不同的表面化学性质)处理分化的 THP-1 细胞(野生型、ASC-或 NLRP3 缺陷型),以评估 NLRP3 炎性小体的激活。然后,对暴露的细胞进行基因表达分析。只有纳米棒,而不是纳米星或纳米球,显示出 NLRP3 炎性小体的激活。ASC-或 NLRP3 缺陷型细胞没有表现出这种效果。基因集富集分析表明,金纳米棒诱导的 NLRP3 炎性小体激活伴随着固醇/胆固醇生物合成、氧化磷酸化和嘌呤能受体信号的下调。在单个基因的水平上,最显著的是控制氧化应激的对氧磷酶-2 蛋白的下调。总之,金纳米颗粒的形状和表面化学决定了 NLRP3 炎性小体的激活。未来的研究应包括颗粒摄取和细胞内定位。