Suppr超能文献

在厌氧条件下,接触氟化钠会导致大肠杆菌中的三磷酸腺苷(ATP)耗竭以及RNA衰变改变。

Sodium Fluoride Exposure Leads to ATP Depletion and Altered RNA Decay in Escherichia coli under Anaerobic Conditions.

作者信息

Murashko Oleg N, Yeh Kun-Hai, Yu Chen-Hsin Albert, Kaberdin Vladimir R, Lin-Chao Sue

机构信息

Institute of Molecular Biology, Academia Sinica, Taipei, Taiwan.

Department of Immunology, Microbiology and Parasitology, University of the Basque Country UPV/EHU, Leioa, Spain.

出版信息

Microbiol Spectr. 2023 Mar 20;11(2):e0415822. doi: 10.1128/spectrum.04158-22.

Abstract

Although fluoride-containing compounds are widely used to inhibit bacterial growth, the reprogramming of gene expression underlying cellular responses to fluoride, especially under anaerobic conditions, is still poorly understood. Here, we compare the genome-wide transcriptomic profiles of E. coli grown in the absence (control) or presence (20 and 70 mM) of sodium fluoride (NaF) under anaerobic conditions and assess the impact of fluoride-dependent ATP depletion on RNA turnover. Tiling array analysis revealed transcripts displaying altered abundance in response to NaF treatments. Quantile-based K-means clustering uncovered a subset of genes that were highly upregulated and then downregulated in response to increased and subsequently decreased fluoride concentrations, many of which (~40%) contained repetitive extragenic palindromic (REP) sequences. Northern blot analysis of some of these highly upregulated REP-containing transcripts (i.e., , , and ) confirmed their considerably enhanced abundance in response to NaF treatment. An mRNA stability analysis of and transcripts demonstrated that fluoride treatment slows down RNA degradation, thereby enhancing RNA stability and steady-state mRNA levels. Moreover, we demonstrate that turnover of these transcripts depends on RNase E activity and RNA degradosome. Thus, we show that NaF exerts significant effects at the whole-transcriptome level under hypoxic growth (i.e., mimicking the host environment), and fluoride can impact gene expression posttranscriptionally by slowing down ATP-dependent degradation of structured RNAs. Gram-negative Escherichia coli is a rod-shaped facultative anaerobic bacterium commonly found in microaerobic/anaerobic environments, including the dental plaques of warm-blooded organisms. These latter can be treated efficiently with fluoride-rich compounds that act as anticaries agents to prevent tooth decay. Although fluoride inhibits microbial growth by affecting metabolic pathways, the molecular mechanisms underlying its activity under anaerobic conditions remain poorly defined. Here, using genome-wide transcriptomics, we explore the impact of fluoride treatments on E. coli gene expression under anaerobic conditions. We reveal key gene clusters associated with cellular responses to fluoride and define its ATP-dependent stabilizing effects on transcripts containing repetitive extragenic palindromic sequences. We demonstrate the mechanisms controlling the RNA stability of these REP-containing mRNAs. Thus, fluoride can affect gene expression posttranscriptionally by stabilizing structured RNAs.

摘要

尽管含氟化合物被广泛用于抑制细菌生长,但对于细胞对氟化物反应背后的基因表达重编程,尤其是在厌氧条件下,人们仍知之甚少。在此,我们比较了在厌氧条件下于无(对照)或有(20和70 mM)氟化钠(NaF)存在时生长的大肠杆菌的全基因组转录组图谱,并评估了氟化物依赖性ATP消耗对RNA周转的影响。平铺阵列分析揭示了响应NaF处理而丰度发生改变的转录本。基于分位数的K均值聚类发现了一组基因,这些基因在氟化物浓度升高然后降低时先高度上调然后下调,其中许多基因(约40%)含有重复的基因外回文(REP)序列。对其中一些高度上调的含REP转录本(即 、 、 和 )进行Northern印迹分析,证实了它们在响应NaF处理时丰度显著增强。对 和 转录本的mRNA稳定性分析表明,氟化物处理会减缓RNA降解,从而增强RNA稳定性和稳态mRNA水平。此外,我们证明这些转录本的周转取决于RNase E活性和RNA降解体。因此,我们表明NaF在低氧生长(即模拟宿主环境)条件下在全转录组水平上具有显著影响,并且氟化物可通过减缓结构化RNA的ATP依赖性降解在转录后影响基因表达。革兰氏阴性大肠杆菌是一种杆状兼性厌氧菌,常见于微需氧/厌氧环境中,包括温血动物的牙菌斑。后者可用富含氟化物的化合物有效治疗,这些化合物作为防龋剂可预防龋齿。尽管氟化物通过影响代谢途径抑制微生物生长,但其在厌氧条件下活性的分子机制仍不清楚。在此,我们利用全基因组转录组学,探索了氟化物处理对厌氧条件下大肠杆菌基因表达的影响。我们揭示了与细胞对氟化物反应相关的关键基因簇,并确定了其对含有重复基因外回文序列的转录本的ATP依赖性稳定作用。我们展示了控制这些含REP的mRNA的RNA稳定性的机制。因此,氟化物可通过稳定结构化RNA在转录后影响基因表达。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8fdd/10100675/096307890a20/spectrum.04158-22-f001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验