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利用具有对氨基苯甲酸生物合成能力的工程大肠杆菌增强对硝酸盐和亚硝酸盐的水质评估。

Enhanced assessment of water quality for both nitrate and nitrite using engineered E. coli with para-aminobenzoic acid biosynthesis.

作者信息

Wang Tsun-To, Yuan Chia-Ching, Lu Yung-Kang, Chang Chia-Wen, Kulandaivel Sivasankar, Yeh Yi-Chun

机构信息

Department of Chemistry, National Taiwan Normal University, Taipei, 11677, Taiwan.

Department of Chemistry, National Taiwan Normal University, Taipei, 11677, Taiwan.

出版信息

Anal Chim Acta. 2025 Feb 8;1338:343580. doi: 10.1016/j.aca.2024.343580. Epub 2024 Dec 25.

Abstract

BACKGROUND

Monitoring nitrate and nitrite levels in water is vital for protecting human health, aquatic ecosystems, and regulatory compliance. However, traditional detection methods often involve environmentally harmful chemicals. This study introduces a sustainable alternative by leveraging metabolically engineered E. coli to biosynthesize para-aminobenzoic acid (PABA) via the shikimate pathway, replacing conventional sulfonamides in the Griess reaction. This approach significantly reduces environmental impact while maintaining high analytical performance.

RESULTS

This study introduces a sustainable approach for simultaneously detecting nitrate and nitrite in water using a combination of E. coli strains DH5α and BL21. Metabolically engineered E. coli BL21 produces PABA via the shikimate pathway, replacing synthetic chemicals in the modified Griess reaction. The modified Griess reaction, utilizing PABA, achieved a high sensitivity detection limit of 0.57 μM with excellent selectivity for nitrite over other ions. Recognizing the importance of portability for on-site, real-time water quality assessment, we developed a paper-based detection system utilizing lyophilized cell supernatant. To enhance portability, we developed a paper-based method for detecting nitrite using lyophilized cell supernatant. This approach confirmed successful nitrite detection through a clear colorimetric response, enabling immediate and quantitative analysis of nitrate and nitrite. Validation with real-world water samples yielded a recovery rate of 90-100 %, comparable to the Griess Reagent, confirming the effectiveness and reliability of the proposed sensors for environmental monitoring. By integrating the capabilities of two E. coli strains, this dual-detection system uniquely allows simultaneous quantification of nitrate and nitrite in a single sample, significantly advancing the field of water quality monitoring.

SIGNIFICANCE AND NOVELTY

This study demonstrates a sustainable, high-sensitivity solution for water quality monitoring by combining microbial metabolic engineering with a portable, paper-based detection platform. The approach meets EPA standards, minimizes environmental impact, and provides a practical tool for field-testing, underscoring the potential of engineered microbes for eco-friendly and effective environmental monitoring.

摘要

背景

监测水中硝酸盐和亚硝酸盐水平对于保护人类健康、水生生态系统以及确保法规合规至关重要。然而,传统检测方法通常涉及对环境有害的化学物质。本研究通过利用代谢工程改造的大肠杆菌,经由莽草酸途径生物合成对氨基苯甲酸(PABA),在格里斯反应中替代传统的磺胺类药物,引入了一种可持续的替代方法。这种方法在保持高分析性能的同时,显著降低了环境影响。

结果

本研究引入了一种可持续方法,使用大肠杆菌菌株DH5α和BL21的组合同时检测水中的硝酸盐和亚硝酸盐。代谢工程改造的大肠杆菌BL21通过莽草酸途径产生PABA,在改良的格里斯反应中替代合成化学物质。利用PABA的改良格里斯反应实现了0.57 μM的高灵敏度检测限,对亚硝酸盐具有优于其他离子的出色选择性。认识到便携性对于现场实时水质评估的重要性,我们开发了一种利用冻干细胞上清液的纸质检测系统。为提高便携性,我们开发了一种使用冻干细胞上清液检测亚硝酸盐的纸质方法。这种方法通过清晰的比色反应确认了亚硝酸盐的成功检测,能够对硝酸盐和亚硝酸盐进行即时定量分析。用实际水样进行验证得到了90 - 100%的回收率,与格里斯试剂相当,证实了所提出的传感器用于环境监测的有效性和可靠性。通过整合两种大肠杆菌菌株的能力,这种双检测系统独特地允许在单个样品中同时定量硝酸盐和亚硝酸盐,显著推动了水质监测领域的发展。

意义与新颖性

本研究通过将微生物代谢工程与便携式纸质检测平台相结合,展示了一种用于水质监测的可持续、高灵敏度解决方案。该方法符合美国环境保护局(EPA)标准,最大限度地减少了环境影响,并为现场测试提供了实用工具,突出了工程微生物在环保和有效环境监测方面的潜力。

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