{"title":"第二代有机纳米酶用于农业除草剂的有效检测","authors":"Dong Hoon Lee, Mohammed Kamruzzaman","doi":"10.1002/adsu.202401029","DOIUrl":null,"url":null,"abstract":"<p>Inorganic nanozyme-based biosensors are extensively used for detecting toxic molecules, offering an alternative to fragile enzyme-based sensors and conventional analytic tools. However, inorganic materials can pose environmental risks due to toxicity and low sustainability properties, which may lead to pollution after intended use. To address these limitations, sustainable organic nanozyme-based sensing platforms are essential for overcoming sustainable issues and effectively detecting toxic agrichemicals. In this study, a second-generation, sustainable organic compound-based nanozyme (EU nanozyme) is introduced, which exhibits peroxidase-like catalytic activity. The nanozyme is synthesized using a modified, self-assembled fabrication procedure that produced a homogenous, spherical nanozyme within 2 h and incorporated a partially mimicked cofactor of the natural peroxidase. This EU nanozyme exhibits decent kinetic profiles (<i>Km</i> = 0.006 m<span>m</span>, H<sub>2</sub>O<sub>2</sub>), along with degradability and biocompatibility, making it suitable for direct implementation in agricultural environments and highlighting its sustainability. The EU nanozyme-based colorimetric sensing platform effectively detects toxic herbicides (e.g., Atrazine), with decent analytic sensitivity with a Limit of Detection (LOD) of 0.231 pg mL<sup>−1</sup>, strong analytic selectivity among more than six relative agrichemicals/and other pesticides, and specificity in corn samples with a LOD of 0.394 µgmL<sup>−1</sup>, within a short detection time of up to 3 min. 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However, inorganic materials can pose environmental risks due to toxicity and low sustainability properties, which may lead to pollution after intended use. To address these limitations, sustainable organic nanozyme-based sensing platforms are essential for overcoming sustainable issues and effectively detecting toxic agrichemicals. In this study, a second-generation, sustainable organic compound-based nanozyme (EU nanozyme) is introduced, which exhibits peroxidase-like catalytic activity. The nanozyme is synthesized using a modified, self-assembled fabrication procedure that produced a homogenous, spherical nanozyme within 2 h and incorporated a partially mimicked cofactor of the natural peroxidase. This EU nanozyme exhibits decent kinetic profiles (<i>Km</i> = 0.006 m<span>m</span>, H<sub>2</sub>O<sub>2</sub>), along with degradability and biocompatibility, making it suitable for direct implementation in agricultural environments and highlighting its sustainability. The EU nanozyme-based colorimetric sensing platform effectively detects toxic herbicides (e.g., Atrazine), with decent analytic sensitivity with a Limit of Detection (LOD) of 0.231 pg mL<sup>−1</sup>, strong analytic selectivity among more than six relative agrichemicals/and other pesticides, and specificity in corn samples with a LOD of 0.394 µgmL<sup>−1</sup>, within a short detection time of up to 3 min. 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引用次数: 0
摘要
无机纳米酶生物传感器广泛用于检测有毒分子,为脆弱的酶传感器和传统的分析工具提供了一种替代方案。然而,无机材料由于其毒性和低可持续性,可能会造成环境风险,在预期使用后可能导致污染。为了解决这些限制,可持续的基于有机纳米酶的传感平台对于克服可持续问题和有效检测有毒农用化学品至关重要。在本研究中,介绍了第二代,可持续的有机化合物基纳米酶(EU纳米酶),它具有过氧化物酶的催化活性。纳米酶是用一种改进的自组装制造工艺合成的,该工艺在2小时内产生了均匀的球形纳米酶,并加入了部分模拟天然过氧化物酶的辅因子。该欧盟纳米酶表现出良好的动力学特征(Km = 0.006 mm, H2O2),以及可降解性和生物相容性,使其适合直接在农业环境中实施,并突出其可持续性。基于EU纳米酶的比色传感平台可有效检测有毒除草剂(如阿特拉嗪),具有良好的分析灵敏度,检测限(LOD)为0.231 pg mL−1,在超过六种相关农用化学品/和其他农药中具有较强的分析选择性,在短检测时间内,LOD为0.394µgmL−1的玉米样品中具有特异性,检测时间长达3分钟。设想该平台可能在提高农业安全方面提供有希望的进展。
Second-Generation Organic Nanozyme for Effective Detection of Agricultural Herbicides
Inorganic nanozyme-based biosensors are extensively used for detecting toxic molecules, offering an alternative to fragile enzyme-based sensors and conventional analytic tools. However, inorganic materials can pose environmental risks due to toxicity and low sustainability properties, which may lead to pollution after intended use. To address these limitations, sustainable organic nanozyme-based sensing platforms are essential for overcoming sustainable issues and effectively detecting toxic agrichemicals. In this study, a second-generation, sustainable organic compound-based nanozyme (EU nanozyme) is introduced, which exhibits peroxidase-like catalytic activity. The nanozyme is synthesized using a modified, self-assembled fabrication procedure that produced a homogenous, spherical nanozyme within 2 h and incorporated a partially mimicked cofactor of the natural peroxidase. This EU nanozyme exhibits decent kinetic profiles (Km = 0.006 mm, H2O2), along with degradability and biocompatibility, making it suitable for direct implementation in agricultural environments and highlighting its sustainability. The EU nanozyme-based colorimetric sensing platform effectively detects toxic herbicides (e.g., Atrazine), with decent analytic sensitivity with a Limit of Detection (LOD) of 0.231 pg mL−1, strong analytic selectivity among more than six relative agrichemicals/and other pesticides, and specificity in corn samples with a LOD of 0.394 µgmL−1, within a short detection time of up to 3 min. It is envisioned that this platform may offer promising advancements in enhancing agricultural safety.
期刊介绍:
Advanced Sustainable Systems, a part of the esteemed Advanced portfolio, serves as an interdisciplinary sustainability science journal. It focuses on impactful research in the advancement of sustainable, efficient, and less wasteful systems and technologies. Aligned with the UN's Sustainable Development Goals, the journal bridges knowledge gaps between fundamental research, implementation, and policy-making. Covering diverse topics such as climate change, food sustainability, environmental science, renewable energy, water, urban development, and socio-economic challenges, it contributes to the understanding and promotion of sustainable systems.