Gfellner Sebastian V, Colas Cyril, Gabant Guillaume, Groninga Janina, Cadene Martine, Milojevic Tetyana
UPR4301 Centre de Biophysique Moléculaire (CBM), Orléans, France.
Université d'Orléans, Orléans, France.
Front Microbiol. 2025 Jan 8;15:1473270. doi: 10.3389/fmicb.2024.1473270. eCollection 2024.
We investigated the metabolome of the iron- and sulfur-oxidizing, extremely thermoacidophilic archaeon grown on mineral pyrite (FeS). The extraction of organic materials from these microorganisms is a major challenge because of the tight contact and interaction between cells and mineral materials. Therefore, we applied an improved protocol to break the microbial cells and separate their organic constituents from the mineral surface, to extract lipophilic compounds through liquid-liquid extraction, and performed metabolomics analyses using MALDI-TOF MS and UHPLC-UHR-Q/TOF. Using this approach, we identified several molecules involved in central carbon metabolism and in the modified Entner-Doudoroff pathway found in Archaea, sulfur metabolism-related compounds, and molecules involved in the adaptation of to extreme environments, such as metal tolerance and acid resistance. Furthermore, we identified molecules involved in microbial interactions, i.e., cell surface interactions through biofilm formation and cell-cell interactions through quorum sensing, which relies on messenger molecules for microbial communication. Moreover, we successfully extracted and identified different saturated thiophene-bearing quinones using software for advanced compound identification (MetaboScape). These quinones are respiratory chain electron carriers in , with biomarker potential for life detection in extreme environmental conditions.
我们研究了在矿物黄铁矿(FeS)上生长的铁氧化和硫氧化极端嗜热嗜酸古菌的代谢组。由于细胞与矿物材料之间紧密的接触和相互作用,从这些微生物中提取有机物质是一项重大挑战。因此,我们应用了一种改进的方案来破碎微生物细胞,并将其有机成分与矿物表面分离,通过液液萃取提取亲脂性化合物,并使用基质辅助激光解吸电离飞行时间质谱(MALDI-TOF MS)和超高效液相色谱-超高速分辨率四极杆/飞行时间质谱(UHPLC-UHR-Q/TOF)进行代谢组学分析。通过这种方法,我们鉴定了几种参与古菌中心碳代谢和改良的Entner-Doudoroff途径的分子、硫代谢相关化合物以及参与适应极端环境(如金属耐受性和耐酸性)的分子。此外,我们还鉴定了参与微生物相互作用的分子,即通过生物膜形成的细胞表面相互作用和通过群体感应的细胞间相互作用,群体感应依赖信使分子进行微生物通讯。此外,我们使用先进的化合物鉴定软件(MetaboScape)成功提取并鉴定了不同的含饱和噻吩醌。这些醌是该古菌呼吸链电子载体,在极端环境条件下具有作为生命检测生物标志物的潜力。