Aerobic adaptation and metabolic dynamics of Propionibacterium freudenreichii DSM 20271: insights from comparative transcriptomics and surfaceome analysis.

IF 5 2区 生物学 Q1 MICROBIOLOGY mSystems Pub Date : 2024-10-22 Epub Date: 2024-09-30 DOI:10.1128/msystems.00615-24
Iida Loivamaa, Annika Sillanpää, Paulina Deptula, Bhawani Chamlagain, Minnamari Edelmann, Petri Auvinen, Tuula A Nyman, Kirsi Savijoki, Vieno Piironen, Pekka Varmanen
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Abstract

Propionibacterium freudenreichii (PFR) DSM 20271T is a bacterium known for its ability to thrive in diverse environments and to produce vitamin B12. Despite its anaerobic preference, recent studies have elucidated its ability to prosper in the presence of oxygen, prompting a deeper exploration of its physiology under aerobic conditions. Here, we investigated the response of DSM 20271T to aerobic growth by employing comparative transcriptomic and surfaceome analyses alongside metabolite profiling. Cultivation under controlled partial pressure of oxygen (pO2) conditions revealed significant increases in biomass formation and altered metabolite production, notably of vitamin B12, pseudovitamin-B12, propionate, and acetate, under aerobic conditions. Transcriptomic analysis identified differential expression of genes involved in lactate metabolism, tricarboxylic acid cycle, and electron transport chain, suggesting metabolic adjustments to aerobic environments. Moreover, surfaceome analysis unveiled growth environment-dependent changes in surface protein abundance, with implications for adaptation to atmospheric conditions. Supplementation experiments with key compounds highlighted the potential for enhancing aerobic growth, emphasizing the importance of iron and α-ketoglutarate availability. Furthermore, in liquid culture, FeSO4 supplementation led to increased heme production and reduced vitamin B12 production, highlighting the impact of oxygen and iron availability on the metabolic pathways. These findings deepen our understanding of PFR's physiological responses to oxygen availability and offer insights for optimizing its growth in industrial applications.

Importance: The study of the response of Propionibacterium freudenreichii to aerobic growth is crucial for understanding how this bacterium adapts to different environments and produces essential compounds like vitamin B12. By investigating its physiological changes under aerobic conditions, we can gain insights into its metabolic adjustments and potential for enhanced growth. These findings not only deepen our understanding of P. freudenreichii's responses to oxygen availability but also offer valuable information for optimizing its growth in industrial applications. This research sheds light on the adaptive mechanisms of this bacterium, providing a foundation for further exploration and potential applications in various fields.

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弗氏丙酸杆菌(Propionibacterium freudenreichii DSM 20271)的有氧适应和代谢动态:比较转录组学和表面组分析的启示。
freudenreichii 丙酸杆菌(PFR)DSM 20271T 是一种以能够在不同环境中生长并产生维生素 B12 而闻名的细菌。尽管它偏好厌氧,但最近的研究阐明了它在有氧条件下的繁殖能力,这促使我们对它在有氧条件下的生理机能进行更深入的探索。在这里,我们采用转录组和表面组的比较分析以及代谢物谱分析,研究了 DSM 20271T 对有氧生长的反应。在受控氧分压(pO2)条件下培养发现,在有氧条件下,生物量的形成显著增加,代谢物的产生也发生了变化,尤其是维生素 B12、假维生素 B12、丙酸盐和乙酸盐。转录组分析发现,参与乳酸代谢、三羧酸循环和电子传递链的基因表达不同,这表明代谢调整适应了有氧环境。此外,表面组分析揭示了表面蛋白质丰度随生长环境而发生的变化,这对适应大气条件具有重要意义。关键化合物的补充实验突出了增强有氧生长的潜力,强调了铁和α-酮戊二酸供应的重要性。此外,在液体培养中,FeSO4 的补充导致血红素生成增加,维生素 B12 生成减少,突出了氧气和铁的可用性对代谢途径的影响。这些发现加深了我们对聚对丙烯酰胺对氧气供应的生理反应的理解,并为优化其在工业应用中的生长提供了启示:研究芽孢杆菌(Propionibacterium freudenreichii)对有氧生长的反应对于了解这种细菌如何适应不同环境并产生维生素 B12 等必需化合物至关重要。通过研究它在有氧条件下的生理变化,我们可以深入了解它的新陈代谢调整和增强生长的潜力。这些发现不仅加深了我们对 P. freudenreichii 对氧气可用性的反应的理解,还为优化其在工业应用中的生长提供了有价值的信息。这项研究揭示了这种细菌的适应机制,为进一步探索和在各个领域的潜在应用奠定了基础。
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来源期刊
mSystems
mSystems Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
10.50
自引率
3.10%
发文量
308
审稿时长
13 weeks
期刊介绍: mSystems™ will publish preeminent work that stems from applying technologies for high-throughput analyses to achieve insights into the metabolic and regulatory systems at the scale of both the single cell and microbial communities. The scope of mSystems™ encompasses all important biological and biochemical findings drawn from analyses of large data sets, as well as new computational approaches for deriving these insights. mSystems™ will welcome submissions from researchers who focus on the microbiome, genomics, metagenomics, transcriptomics, metabolomics, proteomics, glycomics, bioinformatics, and computational microbiology. mSystems™ will provide streamlined decisions, while carrying on ASM''s tradition of rigorous peer review.
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