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闪存法合成用于微生物代谢监测的氧纳米传感器!

Sensors in a Flash! Oxygen Nanosensors for Microbial Metabolic Monitoring Synthesized by Flash Nanoprecipitation.

机构信息

Chemical and Biological Engineering, Colorado School of Mines, Golden, Colorado 80401, United States.

Chemical and Biological Engineering, Princeton University, Princeton, New Jersey 08544, United States.

出版信息

ACS Sens. 2022 Sep 23;7(9):2606-2614. doi: 10.1021/acssensors.2c00859. Epub 2022 Sep 2.

Abstract

Flash nanoprecipitation (FNP) is an efficient and scalable nanoparticle synthesis method that has not previously been applied to nanosensor fabrication. Current nanosensor fabrication methods have traditionally exhibited poor replicability and consistency resulting in high batch-to-batch variability, highlighting the need for a more tunable and efficient method such as FNP. We used FNP to fabricate nanosensors to sense oxygen based on an oxygen-sensitive dye and a reference dye, as a tool for measuring microbial metabolism. We used fluorescence spectroscopy to optimize nanosensor formulations, calibrate the nanosensors for oxygen concentration determination, and measure oxygen concentrations through oxygen-sensitive dye luminescence. FNP provides an effective platform for making sensors capable of responding to oxygen concentration in gas-bubbled solutions as well as in microbial environments. The environments we tested the sensors in are biofilms and liquid cultures─both settings where oxygen concentration is highly dependent on microbial activity. With FNP now applied to nanosensor fabrication, future nanosensor applications can take advantage of improved product quality through better replicability and consistency while maintaining the original function of the nanosensor.

摘要

闪式纳米沉淀(FNP)是一种高效且可扩展的纳米颗粒合成方法,以前尚未应用于纳米传感器制造。目前的纳米传感器制造方法传统上表现出较差的可重复性和一致性,导致批次间变异性高,这突出表明需要一种更可调谐和高效的方法,如 FNP。我们使用 FNP 制造基于氧敏染料和参比染料的纳米传感器,作为测量微生物代谢的工具。我们使用荧光光谱法优化纳米传感器配方,校准纳米传感器以确定氧浓度,并通过氧敏染料发光测量氧浓度。FNP 为制造能够响应气泡溶液和微生物环境中氧浓度的传感器提供了有效的平台。我们测试传感器的环境是生物膜和液体培养物——这两种环境中的氧浓度都高度依赖于微生物的活动。现在将 FNP 应用于纳米传感器制造,未来的纳米传感器应用可以通过更好的可重复性和一致性来利用提高的产品质量,同时保持纳米传感器的原始功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1348/9513798/3484d0882359/se2c00859_0001.jpg

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