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用于土壤和水中重金属检测的微生物生物传感器中的遗传电路。

Genetic circuits in microbial biosensors for heavy metal detection in soil and water.

作者信息

Mathur Shivangi, Singh Deeksha, Ranjan Rajiv

机构信息

Department of Botany, Faculty of Science, Dayalbagh Educational Institute, Dayalbagh, Agra, 282005, India.

Department of Botany, Faculty of Science, Dayalbagh Educational Institute, Dayalbagh, Agra, 282005, India.

出版信息

Biochem Biophys Res Commun. 2023 Apr 16;652:131-137. doi: 10.1016/j.bbrc.2023.02.031. Epub 2023 Feb 17.

Abstract

With the rapid population growth, the world is witnessing an ever-increasing demand for energy and natural resources. Consequently, soil, air, and water are polluted with diverse pollutants, including heavy metals (HM). The detection of heavy metals is necessary to remediate them, which is achieved with biosensors. Initially, these HM were detected using atomic absorption spectroscopy (AAS), emission spectroscopy, mass spectrometry, gas chromatography etc., but these were costly and time consuming which further paved a way for microbe-based biosensors. The development of genetic circuits for microbe-based biosensors has become more popular in recent years for heavy metal detection. In this review, we have especially discussed the various types of genetic circuits such as toggle switches, logic gates, and amplification modules used in these biosensors as they are used to enhance sensitivity and specificity. Genetic circuits also allow for rapid and multiple analyte detection at the same time. The use of microbial biosensors for the detection of HM in the soil as well as the water is also described below. Although with a higher success rate than classical biosensors, these microbial biosensors still have some drawbacks like bioavailability and size of the analyte which are needed to be addressed.

摘要

随着人口的快速增长,世界对能源和自然资源的需求不断增加。因此,土壤、空气和水受到了包括重金属(HM)在内的各种污染物的污染。检测重金属对于修复它们至关重要,这可以通过生物传感器来实现。最初,这些重金属是使用原子吸收光谱法(AAS)、发射光谱法、质谱法、气相色谱法等进行检测的,但这些方法成本高且耗时,这进一步为基于微生物的生物传感器铺平了道路。近年来,用于基于微生物的生物传感器的遗传电路的开发在重金属检测方面变得更加流行。在这篇综述中,我们特别讨论了这些生物传感器中使用的各种类型的遗传电路,如拨动开关、逻辑门和放大模块,因为它们用于提高灵敏度和特异性。遗传电路还允许同时快速和多重分析物检测。下面还描述了使用微生物生物传感器检测土壤和水中的重金属。尽管这些微生物生物传感器的成功率比传统生物传感器更高,但它们仍然存在一些缺点,如分析物的生物利用度和大小,这些都需要解决。

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