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基于CRISPR/Cas的纳米生物传感器利用等离子体纳米材料检测疾病生物标志物

CRISPR/Cas-Based Nanobiosensor Using Plasmonic Nanomaterials to Detect Disease Biomarkers.

作者信息

Choi Jin-Ha, Yoon Jinho, Chen Meizi, Shin Minkyu, Goldston Li Ling, Lee Ki-Bum, Choi Jeong-Woo

机构信息

School of Chemical Engineering, Jeonbuk National University, 567 Baekje-daero, Deokjin-gu, Jeonju-si, Jeollabuk-do 54896 Republic of Korea.

Department of Biomedical-Chemical Engineering, The Catholic University of Korea, 43 Jibong-ro, Wonmi-gu, Bucheon-Si, Gyeonggi-Do 14662 Republic of Korea.

出版信息

Biochip J. 2025;19(2):167-181. doi: 10.1007/s13206-024-00183-x. Epub 2025 Feb 13.

Abstract

The development of clustered regularly interspaced short palindromic repeats (CRISPR) and CRISPR-associated protein (Cas) technology (CRISPR/Cas) as a gene-editing tool has the potential to revolutionize nucleic acid analysis. Recently, CRISPR/Cas systems have demonstrated considerable promise in the development of biosensors for the detection of essential disease biomarkers because they exhibit nonspecific collateral cleavage properties upon target sequence recognition. However, the CRISPR/Cas-based biosensors developed thus far have limitations, such as complicated steps, low sensitivity, low selectivity, and low signal-to-noise ratios. These limitations can be overcome by incorporating the unique characteristics of plasmonic nanomaterials into CRISPR/Cas systems to enhance the signal and improve the sensitivity of these biosensors. From this perspective, current interdisciplinary studies on CRISPR/Cas-based nanobiosensors comprising plasmonic nanomaterials can contribute to the development of highly sensitive CRISPR/Cas-based nanobiosensors. These nanobiosensors can detect attractive disease biomarkers, such as viral nucleic acids, small molecules, and proteins. This review article provides a thorough overview of nanobiosensors that incorporate CRISPR/Cas systems combined with plasmonic nanomaterials to enhance biosensing performance. We believe this review will inspire novel approaches and further innovation in the fields of molecular diagnostics and biomedicine aimed at using CRISPR/Cas systems and plasmonic nanomaterials for more personalized and effective medical treatments.

摘要

成簇规律间隔短回文重复序列(CRISPR)和CRISPR相关蛋白(Cas)技术(CRISPR/Cas)作为一种基因编辑工具的发展,有可能彻底改变核酸分析。最近,CRISPR/Cas系统在用于检测重要疾病生物标志物的生物传感器开发中显示出了巨大的前景,因为它们在识别靶序列时表现出非特异性的附带切割特性。然而,迄今为止开发的基于CRISPR/Cas的生物传感器存在局限性,如步骤复杂、灵敏度低、选择性低和信噪比低。通过将等离子体纳米材料的独特特性纳入CRISPR/Cas系统以增强信号并提高这些生物传感器的灵敏度,可以克服这些局限性。从这个角度来看,目前关于包含等离子体纳米材料的基于CRISPR/Cas的纳米生物传感器的跨学科研究有助于开发高灵敏度的基于CRISPR/Cas的纳米生物传感器。这些纳米生物传感器可以检测有吸引力的疾病生物标志物,如病毒核酸、小分子和蛋白质。这篇综述文章全面概述了结合CRISPR/Cas系统与等离子体纳米材料以增强生物传感性能的纳米生物传感器。我们相信这篇综述将激发分子诊断和生物医学领域的新方法和进一步创新,旨在利用CRISPR/Cas系统和等离子体纳米材料进行更个性化和有效的医学治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff9e/12187901/92a0ff30e595/13206_2024_183_Fig1_HTML.jpg

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