School of Engineering and Physical Science, Heriot-Watt University, Edinburgh, EH14 4AS, UK.
Fakulti Sains dan Sekitaran Marin, Universiti Malaysia Terengganu, 21030, Kuala, Terengganu, Malaysia.
Sci Rep. 2023 Mar 27;13(1):5013. doi: 10.1038/s41598-023-31784-5.
Hydrocarbon-degrading bacteria, which can be found living with eukaryotic phytoplankton, play a pivotal role in the fate of oil spillage to the marine environment. Considering the susceptibility of calcium carbonate-bearing phytoplankton under future ocean acidification conditions and their oil-degrading communities to oil exposure under such conditions, we investigated the response of non-axenic E. huxleyi to crude oil under ambient versus elevated CO concentrations. Under elevated CO conditions, exposure to crude oil resulted in the immediate decline of E. huxleyi, with concomitant shifts in the relative abundance of Alphaproteobacteria and Gammaproteobacteria. Survival of E. huxleyi under ambient conditions following oil enrichment was likely facilitated by enrichment of oil-degraders Methylobacterium and Sphingomonas, while the increase in relative abundance of Marinobacter and unclassified Gammaproteobacteria may have increased competitive pressure with E. huxleyi for micronutrient acquisition. Biodegradation of the oil was not affected by elevated CO despite a shift in relative abundance of known and putative hydrocarbon degraders. While ocean acidification does not appear to affect microbial degradation of crude oil, elevated mortality responses of E. huxleyi and shifts in the bacterial community illustrates the complexity of microalgal-bacterial interactions and highlights the need to factor these into future ecosystem recovery projections.
能与真核浮游植物共生的烃类降解细菌在溢油进入海洋环境的命运中起着关键作用。考虑到在未来海洋酸化条件下碳酸钙浮游植物的易感性及其在这种条件下对石油暴露的降解群落,我们研究了非无菌埃氏海链藻对环境与升高的 CO 浓度下的原油的反应。在升高的 CO 条件下,暴露于原油会立即导致埃氏海链藻的减少,同时伴随着 α 变形菌门和 γ 变形菌门的相对丰度的变化。在富油条件下,埃氏海链藻在环境条件下的存活可能是由于油降解菌甲基杆菌和鞘氨醇单胞菌的富集,而 Marinobacter 和未分类的 γ 变形菌门的相对丰度的增加可能增加了与埃氏海链藻竞争获取微量元素的竞争压力。尽管已知和推测的烃类降解菌的相对丰度发生了变化,但升高的 CO 并没有影响到石油的生物降解。虽然海洋酸化似乎不会影响原油的微生物降解,但埃氏海链藻的高死亡率反应和细菌群落的变化说明了微藻-细菌相互作用的复杂性,并强调需要将这些因素纳入未来生态系统恢复预测中。