Light/ultrasound enhance peroxidase activity of BaTiO3/graphdiyne/Au nanozyme for colorimetric detection of E. coli O157:H7

IF 3.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL Sensors and Actuators B: Chemical Pub Date : 2025-05-01 Epub Date: 2025-02-02 DOI:10.1016/j.snb.2025.137378
Di Zhang , Haoxin Li , Kai Wang , Yujian Sun , Chenguang Wang , Yingying Wang , Qiang Bai , Tianzhi Yu , Zhugen Yang , Ning Sui , Lina Wang
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Abstract

In the past two decades, nanozymes have garnered increasing interest, however, their catalytic activity and efficacy still lag significantly behind that of natural enzymes, posing limitations on their utility in bioanalytical applications. In this study, we introduced a novel BaTiO3/graphdiyne/Au (BGA) nanozyme that leverages surface plasmon resonance and piezoelectric effects to concurrently respond to light and ultrasound (US) stimulation, resulting in a 3.8-fold enhancement in peroxidase-like activity. Theoretical and experimental findings suggest that US stimulation induces lattice distortion in BaTiO3, leading to the reversible conversion of CC bonds to CC bonds in graphdiyne. Consequently, the liberated electrons recombine with the hot holes produced by Au nanoparticles upon light excitation, thereby efficiently inhibiting the recombination of hot electron-hole pairs and substantially augmenting peroxidase-like activity. The BGA nanozyme was further configured as a detection platform for E. coli O157:H7. The sensor exhibited a broad linear range (1–107 CFU mL−1) and a low limit of detection of 7 CFU mL−1. Moreover, the sensor exhibited exceptional applicability in the analysis of various real samples such as milk and lemon juice. This study presents a novel research framework for constructing high-activity nanozyme sensors responsive to external fields, offering significant potential in biological analysis, environmental surveillance, and food safety applications.
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光/超声增强BaTiO3/石墨炔/金纳米酶比色法检测大肠杆菌O157:H7过氧化物酶活性
在过去的二十年里,纳米酶引起了人们越来越多的兴趣,然而,它们的催化活性和功效仍然明显落后于天然酶,这限制了它们在生物分析中的应用。在这项研究中,我们引入了一种新的BaTiO3/石墨炔/金(BGA)纳米酶,该酶利用表面等离子体共振和压电效应同时响应光和超声(US)刺激,导致过氧化物酶样活性增强3.8倍。理论和实验结果表明,US刺激引起BaTiO3的晶格畸变,导致石墨炔中CC键可逆转化为C=C键。因此,在光激发下,释放的电子与金纳米粒子产生的热空穴重新结合,从而有效地抑制了热电子-空穴对的重新结合,并大大增强了过氧化物酶样活性。进一步将BGA纳米酶配置为大肠杆菌O157:H7的检测平台。该传感器具有较宽的线性范围(1 ~ 107 CFU mL-1)和较低的检测限(7 CFU mL-1)。此外,该传感器在牛奶和柠檬汁等各种实际样品的分析中表现出优异的适用性。本研究提出了一种新的研究框架,用于构建对外部电场敏感的高活性纳米酶传感器,在生物分析、环境监测和食品安全等方面具有重要的应用潜力。
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来源期刊
Sensors and Actuators B: Chemical
Sensors and Actuators B: Chemical 工程技术-电化学
CiteScore
14.60
自引率
11.90%
发文量
1776
审稿时长
3.2 months
期刊介绍: Sensors & Actuators, B: Chemical is an international journal focused on the research and development of chemical transducers. It covers chemical sensors and biosensors, chemical actuators, and analytical microsystems. The journal is interdisciplinary, aiming to publish original works showcasing substantial advancements beyond the current state of the art in these fields, with practical applicability to solving meaningful analytical problems. Review articles are accepted by invitation from an Editor of the journal.
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