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荧光恢复允许实施荧光报告基因平台,适用于检测和定量缺氧环境中的水平基因转移。

Fluorescence Recovery Allows the Implementation of a Fluorescence Reporter Gene Platform Applicable for the Detection and Quantification of Horizontal Gene Transfer in Anoxic Environments.

机构信息

Section of Microbiology, University of Copenhagen, Copenhagen, Denmark.

Section of Microbiology, University of Copenhagen, Copenhagen, Denmark

出版信息

Appl Environ Microbiol. 2018 Mar 1;84(6). doi: 10.1128/AEM.02507-17. Print 2018 Mar 15.

Abstract

The study of horizontal gene transfer (HGT) in microbial communities has been revolutionized by significant advances in cultivation-independent methods based on fluorescence reporter gene technologies. Recently, the combination of these novel approaches with flow cytometry has presented itself as one of the most powerful tools to study the spread of mobile genetic elements (MGEs) in the environment. However, the use of fluorescent markers, like green fluorescent protein (GFP) and mCherry, is limited by environmental constraints, such as oxygen availability and pH levels, that affect the correct maturation of their fluorophores. Few studies have characterized the effects of such environmental conditions in a systematic way, and the sheer amount of distinct protein variants requires each system to be examined in an individual fashion. The lack of efficient and reliable markers to monitor HGT in anaerobic environments, coupled to the abundance of ecologically and clinically relevant oxygen-deprived niches in which bacteria thrive, calls for the urgent development of suitable tools that permit its study. In an attempt to devise a process that allows the implementation of the mentioned dual-labeling system to anoxic milieus, the aerobic fluorescence recovery of mCherry and GFPmut3, as well as the effect of pH on their fluorescence intensities, was studied. The findings present a solution to an intrinsic problem that has long hampered the utilization of this system, highlight its pH limitations, and provide experimental tools that will help broaden its horizon of application to other fields. Many anaerobic environments, like the gastrointestinal tract, anaerobic digesters, and the interiors of dense biofilms, have been shown to be hotspots for horizontal gene transfer (HGT). Despite the increasing wealth of reports warning about the alarming spread of antibiotic resistance determinants, to date, HGT studies mainly rely on cultivation-based methods. Unfortunately, the relevance of these studies is often questionable, as only a minor fraction of bacteria can be cultivated. A recently developed approach to monitoring the fate of plasmids in microbial communities is based on a fluorescence dual-labeling system and allows the bypassing of cultivation. However, the fluorescent proteins on which it is founded are constrained by pH levels and by their strict dependence on oxygen for the maturation of their fluorophores. This study focused on the development and validation of an appropriate aerobic fluorescence recovery (AFR) method for this platform, as this embodies the missing technical link impeding its implementation in anoxic environments.

摘要

基于荧光报告基因技术的培养独立性方法的显著进步,彻底改变了微生物群落中水平基因转移 (HGT) 的研究。最近,这些新方法与流式细胞术的结合,成为研究环境中移动遗传元件 (MGE) 传播的最有力工具之一。然而,绿色荧光蛋白 (GFP) 和 mCherry 等荧光标记物的使用受到氧可用性和 pH 值等环境限制的影响,这些限制会影响荧光团的正确成熟。很少有研究以系统的方式描述这些环境条件的影响,而且大量不同的蛋白质变体需要以单独的方式检查每个系统。缺乏有效的、可靠的标记物来监测厌氧环境中的 HGT,加上细菌在其中茁壮成长的富含生态和临床相关缺氧小生境的数量众多,这就需要迫切开发合适的工具来进行研究。为了设计一种允许将上述双标记系统应用于缺氧环境的方法,研究了 mCherry 和 GFPmut3 的需氧荧光恢复以及 pH 对其荧光强度的影响。研究结果提供了一种解决方案,可以解决长期以来阻碍该系统应用的一个固有问题,突出了其 pH 限制,并提供了实验工具,这将有助于拓宽其在其他领域的应用范围。许多厌氧环境,如胃肠道、厌氧消化器和密集生物膜的内部,已被证明是水平基因转移 (HGT) 的热点。尽管越来越多的报告警告称抗生素耐药决定因素的惊人传播,但迄今为止,HGT 研究主要依赖于基于培养的方法。不幸的是,这些研究的相关性往往值得怀疑,因为只有一小部分细菌可以培养。最近开发的一种监测微生物群落中质粒命运的方法基于荧光双重标记系统,可以绕过培养。然而,它所基于的荧光蛋白受到 pH 值和其对荧光团成熟的严格氧依赖性的限制。本研究专注于开发和验证该平台的适当需氧荧光恢复 (AFR) 方法,因为这体现了阻碍其在缺氧环境中实施的缺失技术环节。

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