Harnessing the power of biosensors for environmental monitoring of pesticides in water

IF 3.9 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Filipa Mendes, Beatriz O. Machado, Bruno B. Castro, Maria João Sousa, Susana R. Chaves
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引用次数: 0

Abstract

The current strong reliance on synthetic chemicals, namely pesticides, is far from environmentally sustainable. These xenobiotics contribute significantly to global change and to the current biodiversity crisis, but have been overlooked when compared to other agents (e.g., climate change). Aquatic ecosystems are particularly vulnerable to pesticides, making monitoring programs essential to preserve ecosystem health, safeguard biodiversity, ensure water quality, and mitigate potential human health risks associated with contaminated water sources. Biosensors show great potential as time/cost-effective and disposable systems for the high-throughput detection (and quantification) of these pollutants. In this mini-review, we provide an overview of biosensors specifically developed for environmental water monitoring, covering different pesticide classes (and active ingredients), and types of biosensors (according to the bio-recognition element) and transducers, as well as the nature of sample matrices analyzed. We highlight the variety of biosensors that have been developed and successfully applied to detection of pesticides in aqueous samples, including enzymatic biosensors, immunosensors, aptasensors, and whole cell–based biosensors. While most biosensors have been designed to detect insecticides, expanding their compound target range could significantly streamline monitoring of environmental contaminants. Despite limitations related to stability, reproducibility, and interference from environmental factors, biosensors represent a promising and sustainable technology for pesticide monitoring in the aquatic environments, offering sensitivity and specificity, as well as portability and real-time results. We propose that biosensors would be most effective as an initial screening step in a tiered assessment, complementing conventional methods.

Pesticides harm aquatic ecosystems and biodiversity, requiring better monitoring

Biosensors offer cost-effective solutions to detect pesticides in water samples

Biosensors complement conventional methods as a sustainable tool for initial screens

利用生物传感器对水中农药进行环境监测
目前对合成化学品(即杀虫剂)的强烈依赖远非环境可持续。这些外源因素对全球变化和当前的生物多样性危机有重大影响,但与其他因素(如气候变化)相比,它们一直被忽视。水生生态系统特别容易受到农药的影响,因此监测项目对于保护生态系统健康、保护生物多样性、确保水质以及减轻与受污染水源相关的潜在人类健康风险至关重要。生物传感器作为高通量检测(和量化)这些污染物的时间/成本效益和一次性系统显示出巨大的潜力。在这篇小型综述中,我们提供了专门为环境水监测开发的生物传感器的概述,涵盖了不同的农药类别(和有效成分),生物传感器的类型(根据生物识别元件)和传感器,以及所分析的样品基质的性质。我们重点介绍了已经开发并成功应用于水样农药检测的各种生物传感器,包括酶生物传感器、免疫传感器、适配体传感器和基于全细胞的生物传感器。虽然大多数生物传感器被设计用来检测杀虫剂,但扩大它们的复合目标范围可以大大简化对环境污染物的监测。尽管存在稳定性、可重复性和环境因素干扰等方面的限制,但生物传感器具有敏感性和特异性、便携性和实时性,是水生环境中农药监测的一种有前途和可持续的技术。我们建议生物传感器作为分层评估的初始筛选步骤是最有效的,以补充传统方法。•农药危害水生生态系统和生物多样性,需要更好的监测•生物传感器为检测水样中的农药提供了具有成本效益的解决方案•生物传感器作为初始筛选的可持续工具补充了传统方法
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来源期刊
Applied Microbiology and Biotechnology
Applied Microbiology and Biotechnology 工程技术-生物工程与应用微生物
CiteScore
10.00
自引率
4.00%
发文量
535
审稿时长
2 months
期刊介绍: Applied Microbiology and Biotechnology focusses on prokaryotic or eukaryotic cells, relevant enzymes and proteins; applied genetics and molecular biotechnology; genomics and proteomics; applied microbial and cell physiology; environmental biotechnology; process and products and more. The journal welcomes full-length papers and mini-reviews of new and emerging products, processes and technologies.
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