Department of Biochemistry, Faculty of Biological and Veterinary Sciences, Nicolaus Copernicus University in Toruń, Lwowska 1, 87-100 Toruń, Poland.
Physicochemistry of Carbon Materials Research Group, Faculty of Chemistry, Nicolaus Copernicus University in Toruń, Gagarina 7, 87-100 Toruń, Poland.
Colloids Surf B Biointerfaces. 2022 Dec;220:112919. doi: 10.1016/j.colsurfb.2022.112919. Epub 2022 Oct 12.
Rapid growth in the mass production of nanomaterials together with their abundant use in consumer products, progressively increases the potential risks of living organisms exposure. Some unique properties of nanomaterials and nanoparticles facilitate their interactions with biomolecules (nano-bio interactions). The purinergic signalling system is one of the oldest evolutionary and widespread transmitter system that utilizes extracellular purine nucleotides and nucleosides as chemical messengers. However, interactions between nanomaterials and components of purinergic signalling pathway have not been fully recognized so far. In view of the emerging data, we summarize the current state-of-art and present the perspectives of nanomaterials influence on the functions of purinergic signaling pathway in different types of cells. The described nano-bio interactions include inter alia direct interplay with purinergic receptors or altering receptor genes expression, activation of inflammatory processes, and induction of cell death. However, the precise mechanisms are yet still to be disentangled. Due to the fact that majority of the effects ascribed to nanomaterials seems to induce disordered signalling, these interactions cannot stay neglected. A better understanding of signalling modulations induced by nanomaterials is not only essential for the accurate assessment of their toxicity, but also for synthesis and design of novel, safer nanomaterials.
随着纳米材料大规模生产及其在消费产品中的广泛应用,生物暴露的潜在风险日益增加。纳米材料和纳米粒子的一些独特性质促进了它们与生物分子(纳米-生物相互作用)的相互作用。嘌呤能信号系统是最古老和广泛存在的递质系统之一,它利用细胞外嘌呤核苷酸和核苷作为化学信使。然而,纳米材料与嘌呤能信号通路成分之间的相互作用尚未得到充分认识。鉴于新出现的数据,我们总结了目前的最新进展,并提出了纳米材料对不同类型细胞中嘌呤能信号通路功能的影响的观点。所描述的纳米-生物相互作用包括与嘌呤能受体的直接相互作用或改变受体基因表达、激活炎症过程和诱导细胞死亡等。然而,确切的机制尚待阐明。由于大多数归因于纳米材料的效应似乎会导致信号紊乱,因此这些相互作用不容忽视。更好地理解纳米材料诱导的信号调节不仅对准确评估其毒性至关重要,而且对新型、更安全的纳米材料的合成和设计也至关重要。