The Trend of Nonenzymatic Nucleic Acid Amplification: Strategies and Diagnostic Application

Junyou Li, Ting Li, Zheng Zou and Hung-Wing Li*, 
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引用次数: 0

Abstract

Nonenzymatic nucleic acid amplification reactions, especially nonenzymatic DNA amplification reactions (NDARs), are thermodynamically driven processes that operate without enzymes, relying on toehold-mediated strand displacement (TMSD) and branch migration. With their sensitive and efficient signal amplification capabilities, NDARs have become essential tools for biomarker detection and intracellular imaging. They encompass four primary amplification methods: catalytic hairpin assembly (CHA), hybridization chain reaction (HCR), DNAzyme-based amplification, and entropy-driven circuits (EDC). Based on amplification mechanisms, NDARs can be categorized into three types: stimuli-responsive NDARs, which employ single amplification strategies triggered by specific stimuli like pH, light, or biomolecules; cascade NDARs, which integrate two or more amplification reactions for stepwise signal enhancement; and autocatalytic NDARs, which achieve exponential amplification through self-sustained cycling. These advanced designs progressively improve amplification efficiency, enhance sensitivity, and minimize background noise, enabling precise detection of proteins, viruses, and nucleic acids as well as applications in cancer cell imaging and therapy. Compared with classical NDARs, these approaches significantly reduce signal leakage, offering broader applicability in diagnostics, imaging, and therapeutic contexts. This review summarizes recent advancements, addresses existing challenges, and explores future directions, providing insights into the development and applications of NDARs.

非酶核酸扩增的趋势:策略和诊断应用
非酶促核酸扩增反应,尤其是非酶促DNA扩增反应(NDARs)是一种热力学驱动的过程,不需要酶的作用,依赖于支点介导的链位移(TMSD)和分支迁移。由于其灵敏而高效的信号放大能力,ndar已成为生物标志物检测和细胞内成像的重要工具。它们包括四种主要的扩增方法:催化发夹组装(CHA),杂交链反应(HCR),基于dnazyme的扩增和熵驱动电路(EDC)。根据扩增机制,ndar可分为三种类型:刺激响应型ndar,采用由特定刺激(如pH、光或生物分子)触发的单一扩增策略;级联ndar,它集成了两个或多个放大反应,以逐步增强信号;自催化ndar,通过自我持续循环实现指数级放大。这些先进的设计逐步提高了扩增效率,提高了灵敏度,并最大限度地减少了背景噪声,使蛋白质,病毒和核酸的精确检测以及在癌细胞成像和治疗中的应用成为可能。与传统的ndar相比,这些方法显著减少了信号泄漏,在诊断、成像和治疗方面具有更广泛的适用性。本文综述了近年来的研究进展,解决了现有的挑战,并探讨了未来的发展方向,为ndar的发展和应用提供了见解。
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来源期刊
Precision Chemistry
Precision Chemistry 精密化学技术-
CiteScore
0.80
自引率
0.00%
发文量
0
期刊介绍: Chemical research focused on precision enables more controllable predictable and accurate outcomes which in turn drive innovation in measurement science sustainable materials information materials personalized medicines energy environmental science and countless other fields requiring chemical insights.Precision Chemistry provides a unique and highly focused publishing venue for fundamental applied and interdisciplinary research aiming to achieve precision calculation design synthesis manipulation measurement and manufacturing. It is committed to bringing together researchers from across the chemical sciences and the related scientific areas to showcase original research and critical reviews of exceptional quality significance and interest to the broad chemistry and scientific community.
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