Kokhanyuk Bohdana, Vántus Viola Bagóné, Radnai Balázs, Vámos Eszter, Kajner Gyula, Galbács Gábor, Telek Elek, Mészáros Mária, Deli Mária A, Németh Péter, Engelmann Péter
Department of Immunology and Biotechnology, Clinical Center, Medical School, University of Pécs, H-7624 Pécs, Hungary.
Department of Biochemistry and Medicinal Chemistry, Medical School, University of Pécs, H-7624 Pécs, Hungary.
Nanomaterials (Basel). 2022 Aug 17;12(16):2818. doi: 10.3390/nano12162818.
The consequences of engineered silver nanoparticle (AgNP) exposure and cellular interaction with the immune system are poorly understood. The immunocytes of the earthworm are frequently applied in ecotoxicological studies and possess functional similarity to vertebrate macrophages. Hence, we characterized and compared the endocytosis mechanisms for the uptake of 75 nm AgNPs by earthworm coelomocytes, human THP-1 monocytes, and differentiated THP-1 (macrophage-like) cells. Our results indicate that microtubule-dependent, scavenger-receptor, and PI3K signaling-mediated macropinocytosis are utilized during AgNP engulfment by human THP-1 and differentiated THP-1 cells. However, earthworm coelomocytes employ actin-dependent phagocytosis during AgNPs uptake. In both human and earthworm immunocytes, AgNPs were located in the cytoplasm, within the endo-/lysosomes. We detected that the internalization of AgNPs is TLR/MyD88-dependent, also involving the bactericidal/permeability-increasing protein (BPI) in the case of human immunocytes. The exposure led to decreased mitochondrial respiration in human immunocytes; however, in coelomocytes, it enhanced respiratory parameters. Our findings provide more data about NP trafficking as nano-carriers in the nanomedicine field, as well as contribute to an understanding of the ecotoxicological consequences of nanoparticle exposure.
工程银纳米颗粒(AgNP)暴露的后果以及细胞与免疫系统的相互作用目前尚不清楚。蚯蚓的免疫细胞常用于生态毒理学研究,并且与脊椎动物巨噬细胞具有功能相似性。因此,我们对蚯蚓体腔细胞、人THP-1单核细胞和分化的THP-1(巨噬细胞样)细胞摄取75 nm AgNP的内吞机制进行了表征和比较。我们的结果表明,人THP-1和分化的THP-1细胞在吞噬AgNP过程中利用了微管依赖性、清道夫受体和PI3K信号介导的巨胞饮作用。然而,蚯蚓体腔细胞在摄取AgNP时采用肌动蛋白依赖性吞噬作用。在人和蚯蚓的免疫细胞中,AgNP都位于细胞质内的内体/溶酶体内。我们检测到AgNP的内化是TLR/MyD88依赖性的,在人免疫细胞中还涉及杀菌/通透性增加蛋白(BPI)。这种暴露导致人免疫细胞中线粒体呼吸减少;然而,在体腔细胞中,它增强了呼吸参数。我们的研究结果提供了更多关于纳米颗粒作为纳米医学领域纳米载体转运的数据,也有助于理解纳米颗粒暴露的生态毒理学后果。