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Measurement of Low Concentration of Micro-Plastics by Detection of Bioaffinity-Induced Particle Retention Using Surface Plasmon Resonance Biosensors

机译:使用表面等离子体共振生物传感器检测生物亲和诱导的颗粒保留测量微塑料的低浓度

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摘要

The issue of micro-plastics is becoming more and more important due to their ubiquity and the harm they cause to the human body. Therefore, evaluating the biological–physical interaction of micro-plastics with health cells has become the focus of many research efforts. This study focuses on the movement mode and low concentration detection development for micro-plastics in surface plasmon resonance (SPR). Firstly, 20-micrometer micro-plastics were prepared by grinding and filtering, and the movement mode was explored; then, the characteristics were investigated by SPR. Chromatographic analysis showed that the surface charge of micro-plastics dominated the elution time, and estrogen receptors (ERs) played a supporting role. A difference of micro-plastics in SPR sensorgram was observed, inferring the micro-plastics’ movement in rolling mode on the ERs. Characteristics analysis indicated that the low particle number of micro-plastics on SPR showed a linear relationship with the response unit (RU). When ERs were immobilized on the biosensor, the force of the binding of micro-plastics to ERs under an ultra-low background was equivalent to the dissociation rate constant shown as follows: PS (0.05 nM) > PVC (0.09 nM) > PE (0.14 nM). The ELISA-like magnetic beads experiment verified the specificity between ERs and micro-plastics. Therefore, by using the SPR technique, a biological-derived over-occupation of PS was found via higher binding force with ERs and longer retention time. In the future, there will be considerable potential for micro-plastics issues, such as identification in natural samples, biomarking, real-time detection in specific environments/regions and human health subject.
机译:由于他们的笨拙和它们对人体造成伤害,微塑料问题变得越来越重要。因此,评估微塑料与健康细胞的生物学 - 物理相互作用已成为许多研究努力的焦点。该研究侧重于表面等离子体共振(SPR)中微塑料的运动模式和低浓度检测开发。首先,通过研磨和过滤制备20微米的微塑料,探索运动模式;然后,通过SPR研究了特征。色谱分析表明,微塑料的表面电荷在洗脱时间中占主导地位,雌激素受体(ERS)发挥了支持作用。观察到SPR传感图中微塑料的差异,推断出轧制模式上的微塑料运动。特征分析表明,SPR上的微塑料低粒子数显示与响应单元(RU)的线性关系。当ERS固定在生物传感器上时,微塑料与超低背景下的人的结合的力相当于如下所示的离解率常数:PS(0.05nm)> PVC(0.09nm)> PE( 0.14 nm)。 ELISA样磁珠实验验证了ERS和微塑料之间的特异性。因此,通过使用SPR技术,通过具有更高的粘合力和更长的保留时间来发现生物衍生的PS过度占用。将来,微塑料问题将存在相当大的潜力,例如在天然样本中的鉴定,在特定环境/地区和人类健康主题中的生物脉标,实时检测。

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