Jia Yufeng, He Changfei, Lahm Madeline, Chen Qi, Powers Leanne, Gonsior Michael, Chen Feng
Institute of Marine and Environmental Technology, University of Maryland Center for Environmental Science, Baltimore, MD, United States.
State Key Laboratory for Marine Environmental Science, Institute of Marine Microbes and Ecospheres, College of Ocean and Earth Sciences, Xiamen University, Xiamen, China.
Front Microbiol. 2024 Apr 3;15:1357822. doi: 10.3389/fmicb.2024.1357822. eCollection 2024.
SAR202 bacteria are abundant in the marine environment and they have been suggested to contribute to the utilization of recalcitrant organic matter (RDOM) within the ocean's biogeochemical cycle. However, this functional role has only been postulated by metagenomic studies. During a one-year microcosm incubation of an open ocean microbial community with lysed and its released DOM, SAR202 became relatively more abundant in the later stage (after day 30) of the incubation. Network analysis illustrated a high degree of negative associations between SAR202 and a unique group of molecular formulae (MFs) in phase 2 (day 30 to 364) of the incubation, which is empirical evidence that SAR202 bacteria are major consumers of the more oxygenated, unsaturated, and higher-molecular-weight MFs. Further investigation of the SAR202-associated MFs suggested that they were potentially secondary products arising from initial heterotrophic activities following the amendment of labile -derived DOM. This pilot study provided a preliminary observation on the correspondence between SAR202 bacteria and more resistant DOM, further supporting the hypothesis that SAR202 bacteria play important roles in the degradation of RDOM and thus the ocean's biogeochemical cycle.
SAR202细菌在海洋环境中大量存在,有人认为它们在海洋生物地球化学循环中有助于难降解有机物质(RDOM)的利用。然而,这一功能作用仅由宏基因组学研究推测得出。在对一个开放海洋微生物群落与裂解物及其释放的溶解有机物质(DOM)进行为期一年的微观培养期间,SAR202在培养后期(30天后)变得相对更为丰富。网络分析表明,在培养的第2阶段(第30天至364天),SAR202与一组独特的分子式(MFs)之间存在高度负相关,这是SAR202细菌是更多氧化、不饱和和高分子量MFs主要消费者的经验证据。对与SAR202相关的MFs的进一步研究表明,它们可能是添加不稳定来源的DOM后最初异养活动产生的次生产物。这项初步研究对SAR202细菌与更具抗性的DOM之间的对应关系进行了初步观察,进一步支持了SAR202细菌在RDOM降解以及海洋生物地球化学循环中发挥重要作用的假设。