Jakub Maculewicz , Anna Białk-Bielińska , Dorota Kowalska , Piotr Stepnowski , Stefan Stolte , Stephan Beil , Agnieszka Gajewicz-Skretna , Joanna Dołżonek
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Our findings indicate that ILs may have a strong affinity for the lipids that form cell membranes, with the key factor being the length of the cation's side chain. For quaternary ammonium cations, increase in membrane affinity (logMA) was observed from 3.45 ± 0.06 at 10 carbon atoms in chain to 4.79 ± 0.06 at 14 carbon atoms. We also found that the anion can significantly affect the membrane partitioning of the cation, even though the anions themselves tend to have weaker interactions with phospholipids than the cations of ILs. For 1-methyl-3-octylimidazolium cation the presence of tricyanomethanide anion caused increase in logMA to 4.23 ± 0.06. Although some of our data proved to be consistent with predictions made by the COSMO<em>mic</em> model, there are also significant discrepancies. These results suggest that further research is needed to improve our understanding of the mechanisms and structure-activity relationships involved in ILs bioconcentration and to develop more accurate predictive models.</p></div>","PeriodicalId":2,"journal":{"name":"ACS Applied Bio Materials","volume":null,"pages":null},"PeriodicalIF":4.6000,"publicationDate":"2024-04-06","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Bioconcentration potential of ionic liquids: New data on membrane partitioning and its comparison with predictions obtained by COSMOmic\",\"authors\":\"Jakub Maculewicz , Anna Białk-Bielińska , Dorota Kowalska , Piotr Stepnowski , Stefan Stolte , Stephan Beil , Agnieszka Gajewicz-Skretna , Joanna Dołżonek\",\"doi\":\"10.1016/j.bbamem.2024.184320\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>Ionic liquids (ILs) have recently gained significant attention in both the scientific community and industry, but there is a limited understanding of the potential risks they might pose to the environment and human health, including their potential to accumulate in organisms. 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引用次数: 0
摘要
离子液体(ILs)最近在科学界和工业界都获得了极大的关注,但人们对其可能对环境和人类健康造成的潜在风险,包括其在生物体内积累的潜力,了解还很有限。虽然膜脂和贮存脂被认为是驱动生物累积的主要吸附相,但在本研究中,我们使用了一种称为固体支撑脂膜(SSLMs)的体外工具来研究 ILs 与膜脂--磷脂酰胆碱--的亲和力,并将结果与现有的硅学模型进行了比较。我们的研究结果表明,ILs 对构成细胞膜的脂质可能有很强的亲和力,关键因素是阳离子侧链的长度。对于季铵盐阳离子,膜亲和力(logMA)从链上 10 个碳原子时的 3.45 ± 0.06 增加到 14 个碳原子时的 4.79 ± 0.06。我们还发现,阴离子会显著影响阳离子的膜分配,尽管阴离子本身与磷脂的相互作用往往弱于 ILs 的阳离子。对于 1-甲基-3-辛基咪唑鎓阳离子,三氰基甲烷阴离子的存在使 logMA 增加到 4.23 ± 0.06。尽管我们的一些数据证明与 COSMOmic 模型的预测一致,但也存在明显差异。这些结果表明,我们需要开展进一步的研究,以加深对涉及 ILs 生物富集的机制和结构-活性关系的理解,并开发出更准确的预测模型。
Bioconcentration potential of ionic liquids: New data on membrane partitioning and its comparison with predictions obtained by COSMOmic
Ionic liquids (ILs) have recently gained significant attention in both the scientific community and industry, but there is a limited understanding of the potential risks they might pose to the environment and human health, including their potential to accumulate in organisms. While membrane and storage lipids have been considered as primary sorption phases driving bioaccumulation, in this study we used an in vitro tool known as solid-supported lipid membranes (SSLMs) to investigate the affinity of ILs to membrane lipid - phosphatidylcholine and compare the results with an existing in silico model. Our findings indicate that ILs may have a strong affinity for the lipids that form cell membranes, with the key factor being the length of the cation's side chain. For quaternary ammonium cations, increase in membrane affinity (logMA) was observed from 3.45 ± 0.06 at 10 carbon atoms in chain to 4.79 ± 0.06 at 14 carbon atoms. We also found that the anion can significantly affect the membrane partitioning of the cation, even though the anions themselves tend to have weaker interactions with phospholipids than the cations of ILs. For 1-methyl-3-octylimidazolium cation the presence of tricyanomethanide anion caused increase in logMA to 4.23 ± 0.06. Although some of our data proved to be consistent with predictions made by the COSMOmic model, there are also significant discrepancies. These results suggest that further research is needed to improve our understanding of the mechanisms and structure-activity relationships involved in ILs bioconcentration and to develop more accurate predictive models.