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Disruption of biomolecule function by nanoparticles: How do gold nanoparticles affect Phase I biotransformation of persistent organic pollutants?

机译:纳米粒子破坏生物分子功能:金纳米粒子如何影响持久性有机污染物的第一阶段生物转化?

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摘要

The potential influence of nanoparticles on cytochrome P-450 (CYP) isozyme mediated Phase Ⅰ biotransformation of persistent organic pollutants (POPs) in vitro was investigated using citrate-capped gold nanoparticles (AuNPs) and 2,2',3,5',6-pentachlorobiphenyl (PCB 95) as the probe nanoparticle and compound, respectively. AuNPs affected the biotransformation activity of rat CYP2B1 and changed the atrop-isomeric composition of PCB 95, depending on the incubation time and the AuNP concentration. Electrostatic repulsion between citrate-coated AuNPs and rat CYP2B1 may influence the active conformation of the isozyme and consequently affect its activity and stereoselectivity. In addition, the effects of AuNPs on rat CYP2B1 activity also appeared to be through interference with the CYP catalytic cycle's electron transfer chain. Incubations with AuNPs had a decline in buffer conductance and an absorbance band red shift of AuNPs, from electrostatic interactions of K~+ with negatively-charged AuNP aggregates. These ionic strength changes affected the formation rate of nicotinamide adenine dinucleotide phosphate, which provides electrons for the oxidative reaction cycle, and the biotransformation activity and stereoselectivity of CYP. This study suggests that charged nanoparticles may be able to alter the functions of biomolecules directly, by electrostatic interaction, or indirectly, by changes to the surrounding ionic strength. These factors should be taken into account for further understanding and prediction of the environmental behavior and fate of POPs and nanoparticles.
机译:使用柠檬酸盐封端的金纳米颗粒(AuNPs)和2,2',3,5',6研究了纳米颗粒对细胞色素P-450(CYP)同工酶介导的持久性有机污染物(POPs)的体外Ⅰ期生物转化的潜在影响。 -五氯联苯(PCB 95)分别作为探针纳米颗粒和化合物。 AuNPs影响大鼠CYP2B1的生物转化活性,并改变PCB 95的阻转异构体组成,具体取决于孵育时间和AuNP浓度。柠檬酸盐包覆的AuNP与大鼠CYP2B1之间的静电排斥作用可能会影响同工酶的活性构象,从而影响其活性和立体选择性。此外,AuNPs对大鼠CYP2B1活性的影响似乎也通过干扰CYP催化循环的电子转移链来实现。与Kn +与带负电的AuNP聚集体的静电相互作用导致与AuNP的孵育具有缓冲液电导的下降和AuNP的吸收带红移。这些离子强度的变化影响了烟酰胺腺嘌呤二核苷酸磷酸的形成速率,该形成速率为氧化反应循环提供了电子,并促进了CYP的生物转化活性和立体选择性。这项研究表明,带电的纳米粒子可能能够通过静电相互作用直接改变生物分子的功能,或者通过改变周围离子强度来间接改变生物分子的功能。为了进一步理解和预测持久性有机污染物和纳米颗粒的环境行为和命运,应考虑这些因素。

著录项

  • 来源
    《Chemosphere》 |2013年第1期|123-132|共10页
  • 作者单位

    Department of Chemistry, University of Manitoba, Winnipeg. MB, Canada R3T 2N2;

    Department of Chemistry, University of Manitoba, Winnipeg. MB, Canada R3T 2N2;

    Department of Chemistry, University of Manitoba, Winnipeg. MB, Canada R3T 2N2,Department of Chemistry, University of Alberta, Edmonton, AB, Canada T6C 2C2;

    Department of Chemistry, University of Manitoba, Winnipeg. MB, Canada R3T 2N2,Richardson College for the Environment, University of Winnipeg, Winnipeg, MB, Canada R2B 3E9;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanoparticles; Cytochrome P-450; Chiral organic pollutants; Ionic strength; Disruption;

    机译:纳米颗粒;细胞色素P-450;手性有机污染物;离子强度;破坏;

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