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Glycan heterogeneity on gold nanoparticles increases lectin discrimination capacity in label-free multiplexed bioassays

机译:金纳米颗粒上的聚糖异质性提高了无标记多重生物测定中的凝集素识别能力

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摘要

The development of new analytical tools as point-of-care biosensors is crucial to combat the spread of infectious diseases, especially in the context of drug-resistant organisms, or to detect biological warfare agents. Glycan/lectin interactions drive a wide range of recognition and signal transduction processes within nature and are often the first site of adhesion/recognition during infection making them appealing targets for biosensors. Glycosylated gold nanoparticles have been developed that change colour from red to blue upon interaction with carbohydrate-binding proteins and may find use as biosensors, but are limited by the inherent promiscuity of some of these interactions. Here we mimic the natural heterogeneity of cell-surface glycans by displaying mixed monolayers of glycans on the surface of gold nanoparticles. These are then used in a multiplexed, label-free bioassay to create ‘barcodes’ which describe the lectin based on its binding profile. The increased information content encoded by using complex mixtures of a few sugars, rather than increased numbers of different sugars makes this approach both scalable and accessible. These nanoparticles show increased lectin identification power at a range of lectin concentrations, relative to single-channel sensors. It was also found that some information about the concentration of the lectins can be extracted, all from just a simple colour change, taking this technology closer to being a realistic biosensor.
机译:开发新的分析工具作为即时医疗生物传感器,对于抵抗传染病的蔓延至关重要,特别是在耐药生物的情况下,或者对于检测生物战剂而言至关重要。聚糖/凝集素相互作用在自然界内驱动广泛的识别和信号转导过程,并且通常是感染期间粘附/识别的第一个位点,使其成为生物传感器的目标。已开发出糖基化的金纳米颗粒,当与碳水化合物结合蛋白相互作用时,其颜色会从红色变为蓝色,可能会用作生物传感器,但受到其中一些相互作用的固有混杂性的限制。在这里,我们通过在金纳米粒子的表面上显示混合的单层聚糖来模拟细胞表面聚糖的天然异质性。然后将这些用于多重,无标签的生物测定中,以创建“条形码”,该条形码根据凝集素的结合情况对其进行描述。通过使用几种糖的复杂混合物而不是增加数量的不同糖来编码的增加的信息内容使此方法既可扩展又可访问。相对于单通道传感器,这些纳米颗粒在一定范围的凝集素浓度下显示出更高的凝集素识别能力。还发现,仅通过简单的颜色变化就可以提取有关凝集素浓度的一些信息,使该技术更接近于成为现实的生物传感器。

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