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In situ visualization of newly synthesized proteins in environmental microbes using amino acid tagging and click chemistry

机译:使用氨基酸标记和点击化学技术在环境微生物中原位可视化新合成的蛋白质

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Here we describe the application of a new click chemistry method for fluorescent tracking of protein synthesis in individual microorganisms within environmental samples. This technique, termed bioorthogonal non-canonical amino acid tagging (BONCAT), is based on the in vivo incorporation of the non-canonical amino acid L-azidohomoalanine (AHA), a surrogate for L-methionine, followed by fluorescent labelling of AHA-containing cellular proteins by azide-alkyne click chemistry. BONCAT was evaluated with a range of phylogenetically and physiologically diverse archaeal and bacterial pure cultures and enrichments, and used to visualize translationally active cells within complex environmental samples including an oral biofilm, freshwater and anoxic sediment. We also developed combined assays that couple BONCAT with ribosomal RNA (rRNA)-targeted fluorescence in situ hybridization (FISH), enabling a direct link between taxonomic identity and translational activity. Using a methanotrophic enrichment culture incubated under different conditions, we demonstrate the potential of BONCAT-FISH to study microbial physiology in situ. A direct comparison of anabolic activity using BONCAT and stable isotope labelling by nano-scale secondary ion mass spectrometry (~(15)NH_3 assimilation) for individual cells within a sediment-sourced enrichment culture showed concordance between AHA-positive cells and ~(15)N enrichment. BONCAT-FISH offers a fast, inexpensive and straightforward fluorescence microscopy method for studying the in situ activity of environmental microbes on a single-cell level.
机译:在这里,我们描述了一种新型点击化学方法的应用,该方法可用于荧光跟踪环境样品中单个微生物中蛋白质的合成。这项称为生物正交非规范氨基酸标签(BONCAT)的技术是基于在体内掺入非规范氨基酸L-叠氮高丙氨酸(AHA)(一种L-蛋氨酸的替代物),然后通过荧光标记AHA-通过叠氮化物-炔烃点击化学分析含有细胞蛋白。对BONCAT进行了一系列系统和生理上不同的古细菌和纯细菌培养和富集评估,并用于可视化复杂环境样品(包括口腔生物膜,淡水和缺氧沉积物)中的翻译活性细胞。我们还开发了将BONCAT与靶向核糖体RNA(rRNA)的荧光原位杂交(FISH)结合的组合测定法,从而使分类学身份与翻译活性之间具有直接联系。使用在不同条件下孵育的甲烷营养富集培养,我们证明了BONCAT-FISH在原位研究微生物生理学的潜力。使用BONCAT的合成代谢活性与纳米级二次离子质谱(〜(15)NH_3同化)的稳定同位素标记的直接比较,对源自沉淀物的富集培养物中的单个细胞显示出AHA阳性细胞与〜(15)之间的一致性N富集。 BONCAT-FISH提供了一种快速,廉价且简单的荧光显微镜方法,用于在单细胞水平上研究环境微生物的原位活性。

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