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采用稀释与延迟(DnD)药敏试验对隐藏的抗生素耐药性进行高分辨率检测。

High-Resolution Detection of Hidden Antibiotic Resistance with the Dilution-and-Delay (DnD) Susceptibility Assay.

作者信息

Ma Muqing, Kim Minsu

出版信息

bioRxiv. 2025 Aug 11:2025.08.11.669743. doi: 10.1101/2025.08.11.669743.

Abstract

UNLABELLED

Rising rates of antibiotic treatment failure highlight the complexity of resistance mechanisms. While conventional, genetically encoded resistance is well established, recent studies have uncovered widespread non-canonical mechanisms driven by phenotypically insensitive subpopulations hiding in seemingly susceptible populations, such as heteroresistance, persistence or adaptive resistance. These variants are not only clinically significant but also act as evolutionary precursors to fully resistant populations, rendering infections increasingly difficult to control. Yet standard antibiotic susceptibility tests lack the resolution and dynamic range needed to detect this wide spectrum of resistance mechanisms and their evolutionary progression, often misguiding clinical decisions, obscuring mechanisms of failure, and underestimating the true epidemiology of antibiotic resistance. To address these limitations, we introduce the Dilution-and-Delay (DnD) assay-a practical, high-resolution approach that implements two basic principles of bacterial growth in the antibiotic susceptibility testing format. Using well-defined synthetic communities and strains, we demonstrate that the DnD assay quantifies viable cells over more than eight orders of magnitude and detects rare antibiotic-insensitive cells at frequencies as low as 1 in 100 million. It additionally reports the standardized MIC as a secondary output, thereby capturing the average antibiotic response of the majority population and heterogeneity of minority subpopulations within a single assay. We scaled this approach for high-throughput application, classifying ∼120 previously uncharacterized clinical isolates of , , and -across five antibiotics. This robust, quantitative, and scalable platform opens the door to next-generation antibiotic susceptibility testing, with broad utility in basic research, clinical diagnostics, and epidemiological surveillance. This improved testing will guide evidence-based clinical decisions and prevent the rapid evolution of antibiotic resistance, thereby counteracting the rising rate of treatment failure.

SIGNIFICANCE

Antibiotic treatment failure due to inappropriate prescription remains a critical threat to global health. It also accelerates the evolution of resistance, making infection increasingly difficult to control. A key underlying issue is that current antibiotic susceptibility testing lacks the resolution and dynamic range needed to detect a wide range of resistance mechanisms and their evolutionary progression, leading to misinformed clinical decisions. While population analysis profiling (PAP) offers sufficient accuracy, it is too labor-intensive for routine use. Single-cell approaches are technically demanding and resource-intensive. Here, we present a susceptibility testing strategy that preserves the operational efficiency and compatibility of conventional workflows, while dramatically extending their resolution and dynamic range. Our approach is scalable, quantitative, and well-suited for high-throughput applications in both research and clinical settings-closing a critical diagnostic gap in the fight against antibiotic treatment failure.

摘要

未标注

抗生素治疗失败率的上升凸显了耐药机制的复杂性。虽然传统的基因编码耐药性已得到充分证实,但最近的研究发现了广泛存在的非经典机制,这些机制由隐藏在看似敏感群体中的表型不敏感亚群驱动,如异质性耐药、持留菌或适应性耐药。这些变体不仅具有临床意义,还作为完全耐药群体的进化前体,使感染越来越难以控制。然而,标准的抗生素敏感性测试缺乏检测这种广泛耐药机制及其进化进程所需的分辨率和动态范围,常常误导临床决策,掩盖失败机制,并低估抗生素耐药性的真实流行病学情况。为解决这些局限性,我们引入了稀释与延迟(DnD)测定法——一种实用的高分辨率方法,它在抗生素敏感性测试形式中应用了细菌生长的两个基本原理。使用定义明确的合成群落和菌株,我们证明DnD测定法可在超过八个数量级上对活细胞进行定量,并能检测到频率低至一亿分之一的罕见抗生素不敏感细胞。它还将标准化的最低抑菌浓度作为次要输出报告,从而在一次测定中捕捉大多数群体的平均抗生素反应和少数亚群体的异质性。我们将这种方法扩展用于高通量应用,对来自、、和的约120株先前未鉴定的临床分离株进行了五种抗生素的分类。这个强大、定量且可扩展的平台为下一代抗生素敏感性测试打开了大门,在基础研究、临床诊断和流行病学监测中具有广泛用途。这种改进的测试将指导基于证据的临床决策,并防止抗生素耐药性的快速演变,从而应对治疗失败率的上升。

意义

因处方不当导致的抗生素治疗失败仍然是对全球健康构成的重大威胁。它还加速了耐药性的演变,使感染越来越难以控制。一个关键的根本问题是,当前的抗生素敏感性测试缺乏检测广泛耐药机制及其进化进程所需的分辨率和动态范围,导致临床决策失误。虽然群体分析谱(PAP)提供了足够的准确性,但对于常规使用来说过于耗费人力。单细胞方法技术要求高且资源密集。在这里,我们提出了一种敏感性测试策略,该策略保留了传统工作流程的操作效率和兼容性,同时显著扩展了它们的分辨率和动态范围。我们的方法具有可扩展性、定量性,非常适合在研究和临床环境中的高通量应用——弥合了在对抗抗生素治疗失败斗争中的关键诊断差距。

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