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Effect of Electrode Geometry on the Classification Performance of Rapid Evaporative Ionization Mass Spectrometric (REIMS) Bacterial Identification

机译:电极几何形状对快速蒸发电离质谱(REIMS)细菌识别分类性能的影响

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摘要

The recently developed automated, high-throughput monopolar REIMS platform is suited for the identification of clinically important microorganisms. Although already comparable to the previously reported bipolar forceps method, optimization of the geometry of monopolar electrodes, at the heart of the system, holds the most scope for further improvements to be made. For this, sharp tip and round shaped electrodes were optimized to maximize species-level classification accuracy. Following optimization of the distance between the sample contact point and tube inlet with the sharp tip electrodes, the overall cross-validation accuracy improved from 77% to 93% in negative and from 33% to 63% in positive ion detection modes, compared with the original 4 mm distance electrode. As an alternative geometry, round tube shaped electrodes were developed. Geometry optimization of these included hole size, number, and position, which were also required to prevent plate pick-up due to vacuum formation. Additional features, namely a metal “X”-shaped insert and a pin in the middle were included to increase the contact surface with a microbial biomass to maximize aerosol production. Following optimization, cross-validation scores showed improvement in classification accuracy from 77% to 93% in negative and from 33% to 91% in positive ion detection modes. Supervised models were also built, and after the leave 20% out cross-validation, the overall classification accuracy was 98.5% in negative and 99% in positive ion detection modes. This suggests that the new generation of monopolar REIMS electrodes could provide substantially improved species level identification accuracies in both polarity detection modes. Graphical abstract
机译:最近开发的自动化,高通量单极REIMS平台适用于鉴定临床上重要的微生物。尽管已经可以与以前报道的双极钳方法相提并论,但在系统的核心,单极电极几何形状的优化在最大范围内可以进行进一步的改进。为此,对尖锐的尖端和圆形电极进行了优化,以最大限度地提高物种级别的分类精度。与锐利的尖端电极一起优化了样品接触点和试管入口之间的距离之后,总体交叉验证的准确性从负离子检测模式从77%提高到93%,在正离子检测模式下从33%提高到63%。原始的4毫米距离电极。作为替代的几何形状,开发了圆管形电极。这些形状的几何优化包括孔的大小,数量和位置,这对于防止由于真空形成而引起的板拾取也是必需的。其他特征包括金属“ X”形插入件和中间的销钉,以增加与微生物生物质的接触表面,从而最大程度地提高气雾剂的产量。经过优化后,交叉验证得分显示出阴性的分类准确度从77%提高到93%,在阳离子检测模式下从33%提高到91%。还建立了监督模型,在排除20%的交叉验证后,负离子检测模式的总体分类精度为98.5%,正离子检测模式的总体分类精度为99%。这表明新一代的单极REIMS电极可以在两种极性检测模式下显着提高物种水平的识别准确性。 <!-fig ft0-> <!-fig @ position =“ position” anchor“ == f4-> <!-fig mode =” anchred“ f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> <!-caption a7->图形摘要

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