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可再生细菌毒素生物传感平台。

A Regenerable Biosensing Platform for Bacterial Toxins.

机构信息

Monash Institute of Pharmaceutical Sciences, Monash University, Parkville, Victoria 3052, Australia.

Melbourne Centre for Nanofabrication, Victorian Node of the Australian National Fabrication Facility, Clayton, Victoria 3168, Australia.

出版信息

Biomacromolecules. 2021 Feb 8;22(2):441-453. doi: 10.1021/acs.biomac.0c01318. Epub 2020 Dec 15.

Abstract

Waterborne diarrheal diseases such as travelers' diarrhea and cholera remain a threat to public health in many countries. Rapid diagnosis of an infectious disease is critical in preventing the escalation of a disease outbreak into an epidemic. Many of the diagnostic tools for infectious diseases employed today are time-consuming and require specialized laboratory settings and trained personnel. There is hence a pressing need for fit-for-purpose point-of-care diagnostic tools with emphasis in sensitivity, specificity, portability, and low cost. We report work toward thermally reversible biosensors for detection of the carbohydrate-binding domain of the heat-labile enterotoxin (LTB), a toxin produced by enterotoxigenic strains, which causes travelers' diarrhea. The biosensing platform is a hybrid of two materials, combining the optical properties of porous silicon (pSi) interferometric transducers and a thermoresponsive multivalent glycopolymer, to enable recognition of LTB. Analytical performance of our biosensors allows us to detect, using a label-free format, sub-micromolar concentrations of LTB in solution as low as 0.135 μM. Furthermore, our platform shows a temperature-mediated "catch-and-release" behavior, an exciting feature with potential for selective protein capture, multiple readouts, and regeneration of the sensor over consecutive cycles of use.

摘要

水传播的腹泻病,如旅行者腹泻和霍乱,仍然对许多国家的公共卫生构成威胁。快速诊断传染病对于防止疾病爆发演变为流行至关重要。如今,许多用于传染病的诊断工具都很耗时,需要专门的实验室环境和经过培训的人员。因此,迫切需要适合特定用途的即时诊断工具,重点是灵敏度、特异性、便携性和低成本。我们报告了一种用于检测不耐热肠毒素(LTB)的碳水化合物结合域的热可逆生物传感器的工作,LTB 是一种由肠毒性菌株产生的毒素,会导致旅行者腹泻。该生物传感平台是两种材料的混合体,结合了多孔硅(pSi)干涉传感器的光学特性和热响应性多价糖聚合物,以实现对 LTB 的识别。我们的生物传感器的分析性能允许我们使用无标记格式检测溶液中低至 0.135 μM 的亚毫摩尔浓度的 LTB。此外,我们的平台显示出温度介导的“捕获-释放”行为,这是一种具有选择性蛋白质捕获、多次读数和传感器在连续使用循环中再生潜力的令人兴奋的特性。

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