基于 CRISPR/Cas12a 和金铂纳米颗粒修饰的自增强纳米水凝胶电化学发光生物传感器,用于高灵敏度检测假马勒伯克霍尔德氏菌

IF 13.2 1区 工程技术 Q1 ENGINEERING, CHEMICAL
Yuexin Wang , Bo Shen , Nini Luo , Cai Li , Haiping Wu , Yanshuang Wang , Shen Tian , Xuemiao Li , Rui Liu , Xinmin Li , Junman Chen , Wei Cheng , Shijia Ding , Rui Chen , Meifang Xiao , Qianfeng Xia
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引用次数: 0

摘要

简单、快速、准确地检测出高致死率的类鼻疽对早期临床诊断和提高治愈率至关重要。目前,现有的临床检测方法由于耗时长、灵敏度低、检出率低等问题无法满足临床诊断的需要。本文报告了一种新型自增强多孔水凝胶材料(Au@PEI-ABEI@Pt)用于超灵敏ECL检测假丝酵母菌的策略。由PEI-ABEI多孔水凝胶、金纳米颗粒(AuNP)和铂纳米颗粒(PtNP)组成的新型多孔水凝胶材料具有较大的比表面积和多孔结构,不仅能固定更多的ABEI以实现自增强ECL信号放大,还能促进离子扩散和催化材料的高效利用,实现快速电子传递和零距离催化,显著提高ECL传感器的初始信号。此外,最吸引人的一点是,具有良好生物相容性的Au@PEI-ABEI@Pt水凝胶可以在不影响CRISPR/Cas12a的灵敏度、特异性和剪切活性的前提下,实现CRISPR/Cas12a在固相载体中的广泛应用。Au@PEI-ABEI@Pt与ECL系统和CRISPR/Cas12a信号放大策略耦合后,可在复杂样品中实现假丝酵母菌的超灵敏ECL检测,LOD为5 CFU mL-1,具有较高的特异性和稳定性,能有效地对假丝酵母菌和其他革兰氏阴性菌进行分类。这项研究表明,所开发的多孔水凝胶材料不仅可以作为一种出色的 ECL 信号报告器,显著提高 ECL 生物传感器的检测灵敏度,还为 CRISPR/Cas 系统在固相载体中的广泛应用提供了一种新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Self-enhanced nanohydrogel electrochemiluminescence biosensor based on CRISPR/Cas12a and gold platinum nanoparticles modification for high-sensitivity detection of Burkholderia pseudomallei

Self-enhanced nanohydrogel electrochemiluminescence biosensor based on CRISPR/Cas12a and gold platinum nanoparticles modification for high-sensitivity detection of Burkholderia pseudomallei

The simple, rapid, and accurate detection of highly lethal melioidosis is crucial for early clinical diagnosis and improving cure rates. Currently, due to time consumption, low sensitivity and detection rate the existing clinical detection methods cannot satisfy the needs of clinical diagnosis. Herein, a novel self-enhanced porous hydrogel material (Au@PEI-ABEI@Pt) for ultrasensitive ECL strategy of detection B. pseudomallei was report. The novel porous hydrogel material composed of PEI-ABEI porous hydrogel, gold nanoparticles (AuNP) and platinum nanoparticles (PtNP) have large specific surface area and porous structure, which not only fix more ABEI to realize self-enhanced ECL signal amplification, but also facilitate ion diffusion and efficient utilization of catalytic materials, realizing rapid electron transfer and zero-distance catalysis, significantly improving the initial signal of ECL sensor. Moreover, the most attractive aspect is that Au@PEI-ABEI@Pt hydrogels with good biocompatibility can achieve widespread application of CRISPR/Cas12a in solid-phase carriers without affecting the sensitivity, specificity and shearing activity of CRISPR/Cas12a. After coupling with the ECL system and CRISPR/Cas12a signal amplification strategy, the Au@PEI-ABEI@Pt can achieve an ultrasensitive ECL assay of B. pseudomallei with the LOD of 5 CFU mL−1 in complex samples, with high specificity and stability to effectively classify B. pseudomallei and other Gram-negative bacteria. This study shows that the developed porous hydrogel materials not only serve as an excellent ECL signal reporter to significantly improve the detection sensitivity of ECL biosensors, but also provide a new approach for the wide application of CRISPR/Cas systems in solid-phase carriers.

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来源期刊
Chemical Engineering Journal
Chemical Engineering Journal 工程技术-工程:化工
CiteScore
21.70
自引率
9.30%
发文量
6781
审稿时长
2.4 months
期刊介绍: The Chemical Engineering Journal is an international research journal that invites contributions of original and novel fundamental research. It aims to provide an international platform for presenting original fundamental research, interpretative reviews, and discussions on new developments in chemical engineering. The journal welcomes papers that describe novel theory and its practical application, as well as those that demonstrate the transfer of techniques from other disciplines. It also welcomes reports on carefully conducted experimental work that is soundly interpreted. The main focus of the journal is on original and rigorous research results that have broad significance. The Catalysis section within the Chemical Engineering Journal focuses specifically on Experimental and Theoretical studies in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. These studies have industrial impact on various sectors such as chemicals, energy, materials, foods, healthcare, and environmental protection.
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