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Prediction of Broad-Spectrum Pathogen Attachment to Coating Materials for Biomedical Devices

机译:对生物医学装置涂料的广谱病原体附着的预测

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摘要

Bacterial infections in healthcare settings are a frequent accompaniment to both routine procedures such as catheterization and surgical site interventions. Their impact is becoming even more marked as the numbers of medical devices that are used to manage chronic health conditions and improve quality of life increases. The resistance of pathogens to multiple antibiotics is also increasing, adding an additional layer of complexity to the problems of employing safe and effective medical procedures. One approach to reducing the rate of infections associated with implanted and indwelling medical devices is the use of polymers that resist the formation of bacterial biofilms. To significantly accelerate the discovery of such materials, we show how state of the art machine learning methods can generate quantitative predictions for the attachment of multiple pathogens to a large library of polymers in a single model for the first time. Such models facilitate design of polymers with very low pathogen attachment across different bacterial species that will be candidate materials for implantable or indwelling medical devices such as urinary catheters, cochlear implants, and pacemakers.
机译:医疗保健环境中的细菌感染是对诸如导尿和外科手术场所的常规程序的常伴伴奏。它们的影响变得更加标记为用于管理慢性健康状况的医疗设备的数量,提高生活质量增加。病原体对多种抗生素的抗性也在增加,增加了额外的复杂性与采用安全有效的医疗程序的问题。降低与植入和留置医疗装置相关的感染率的一种方法是使用抗蚀细菌生物膜形成的聚合物。为了显着加速这些材料的发现,我们展示了最先进的机器学习方法如何在首次产生用于将多种病原体附着到一个模型中的大型聚合物库的定量预测。这种模型促进了具有非常低的病原体附着的聚合物的设计,这些含有非常低的细菌物种,其将是用于植入或留置医疗装置的候选材料,例如尿导管,耳蜗植入物和起搏器。

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