Hueso-Gil Ángeles, Calles Belén, O'Toole George A, de Lorenzo Víctor
Systems Biology Program, Centro Nacional de Biotecnología-CSIC, Campus de Cantoblanco, Madrid, 28049, Spain.
Department of Microbiology and Immunology, Geisel School of Medicine at Dartmouth, Hanover, NH, 03755, USA.
Microb Biotechnol. 2020 Jan;13(1):263-273. doi: 10.1111/1751-7915.13404. Epub 2019 Apr 7.
The biological regime of Pseudomonas putida (and any other bacterium) under given environmental conditions results from the hierarchical expression of sets of genes that become turned on and off in response to one or more physicochemical signals. In some cases, such signals are clearly defined, but in many others, cells are exposed to a whole variety of ill-defined inputs that occur simultaneously. Transcriptomic analyses of bacteria passed from a reference condition to a complex niche can thus expose both the type of signals that they experience during the transition and the functions involved in adaptation to the new scenario. In this article, we describe a complete protocol for generation of transcriptomes aimed at monitoring the physiological shift of P. putida between two divergent settings using as a simple case study the change between homogeneous, planktonic lifestyle in a liquid medium and growth on the surface of an agar plate. To this end, RNA was collected from P. putidaKT2440 cells at various times after growth in either condition, and the genome-wide transcriptional outputs were analysed. While the role of individual genes needs to be verified on a case-by-case basis, a gross inspection of the resulting profiles suggested cells that are cultured on solid media consistently had a higher translational and metabolic activity, stopped production of flagella and were conspicuously exposed to a strong oxidative stress. The herein described methodology is generally applicable to other circumstances for diagnosing lifestyle determinants of interest.
在特定环境条件下,恶臭假单胞菌(以及任何其他细菌)的生物学机制是由基因集的分层表达所导致的,这些基因集会根据一种或多种物理化学信号开启或关闭。在某些情况下,此类信号是明确界定的,但在许多其他情况下,细胞会同时暴露于各种各样不明确的输入信号中。因此,对从参考条件转移到复杂生态位的细菌进行转录组分析,既能揭示它们在转变过程中所经历的信号类型,也能揭示参与适应新环境的功能。在本文中,我们描述了一个完整的转录组生成方案,旨在监测恶臭假单胞菌在两种不同环境之间的生理转变,我们以液体培养基中均匀的浮游生活方式与琼脂平板表面生长之间的变化作为一个简单的案例研究。为此,在两种条件下生长后的不同时间,从恶臭假单胞菌KT2440细胞中收集RNA,并对全基因组转录输出进行分析。虽然个别基因的作用需要逐案验证,但对所得图谱的粗略检查表明,在固体培养基上培养的细胞始终具有较高的翻译和代谢活性,停止了鞭毛的产生,并且明显受到强烈的氧化应激。本文所述方法通常适用于诊断其他感兴趣的生活方式决定因素的情况。