Li Yongqi, Zhang Changhao, Zhong Maosheng, Hu Shenao, Cui Yukun, Fang Jiasong, Yu Xi
Shanghai Engineering Research Center of Hadal Science and Technology, College of Oceanography and Ecological Science, Shanghai Ocean University, Shanghai, China.
Laboratory for Marine Biology and Biotechnology, Qingdao Marine Science and Technology Center, Qingdao, China.
Front Microbiol. 2024 Nov 6;15:1474180. doi: 10.3389/fmicb.2024.1474180. eCollection 2024.
The extreme environment shapes fungi in deep-sea sediments with novel metabolic capabilities. The ubiquity of fungi in deep-sea habitats supports their significant roles in these ecosystems. However, there is limited research on the metabolic activities and adaptive mechanisms of filamentous fungi in deep-sea ecosystems. In this study, we investigated the biological activities, including antibacterial, antitumor and nematicidal activity of FDZ8Y1, isolated from sediments of the Mariana Trench. A key feature of FDZ8Y1 was its tolerance to high hydrostatic pressure (HHP), up to 110 MPa. We showed that HHP affected its vegetative growth, development, and production of secondary metabolites, indicating the potential for discovering novel natural products from hadal fungi. Whole-genome sequencing of FDZ8Y1 revealed the metabolic potential of this piezotolerant fungus in carbon (carbohydrate metabolism), nitrogen (assimilatory nitrate reduction and protein degradation) and sulfur cycling processes (assimilatory sulfate reduction). Transcriptomic analysis under elevated HHP showed that FDZ8Y1 may activate several metabolic pathways and stress proteins to cope with HHP, including fatty acid metabolism, the antioxidant defense system, the biosynthetic pathway for secondary metabolites, extracellular enzymes and membrane transporters. This study provides valuable insights into the metabolic potential and adaptation mechanisms of hadal fungi to the challenging conditions of the hadal environment.
极端环境塑造了具有新型代谢能力的深海沉积物中的真菌。真菌在深海栖息地的普遍存在支持了它们在这些生态系统中的重要作用。然而,关于深海生态系统中丝状真菌的代谢活动和适应机制的研究有限。在本研究中,我们调查了从马里亚纳海沟沉积物中分离出的FDZ8Y1的生物活性,包括抗菌、抗肿瘤和杀线虫活性。FDZ8Y1的一个关键特征是其对高达110 MPa的高静水压力(HHP)的耐受性。我们发现HHP影响其营养生长、发育和次级代谢产物的产生,这表明从超深渊真菌中发现新型天然产物具有潜力。FDZ8Y1的全基因组测序揭示了这种耐压真菌在碳(碳水化合物代谢)、氮(同化硝酸盐还原和蛋白质降解)和硫循环过程(同化硫酸盐还原)中的代谢潜力。在升高的HHP条件下的转录组分析表明,FDZ8Y1可能激活几种代谢途径和应激蛋白以应对HHP,包括脂肪酸代谢、抗氧化防御系统、次级代谢产物的生物合成途径、细胞外酶和膜转运蛋白。本研究为超深渊真菌的代谢潜力和对超深渊环境挑战性条件的适应机制提供了有价值的见解。