Li Tangcheng, Guo Chentao, Zhang Yaqun, Wang Cong, Lin Xin, Lin Senjie
State Key Laboratory of Marine Environmental Science and Xiamen City Key Laboratory of Urban Sea Ecological Conservation and Restoration, Xiamen University, Xiamen, China.
Department of Marine Sciences, University of Connecticut, Groton, CT, United States.
Front Microbiol. 2018 Sep 19;9:2156. doi: 10.3389/fmicb.2018.02156. eCollection 2018.
, a cosmopolitan coccolithophore in the modern ocean, plays an important role in the carbon cycle and local climate feedback as it can form extensive blooms, calcify, and produce dimethylsulfoniopropionate (DMSP) leading to the generation of dimethyl sulfide (DMS) which affects climate when oxidized in the atmosphere. It is known to be able to utilize dissolved organic phosphorus (DOP) by expressing a specific type of alkaline phosphatase (EHAP1) under phosphorus-limited conditions. In this study, we identified a new alkaline phosphatase (EH-PhoA) in this species, which we found belongs to the newly classified PhoA family. The expression of this atypical phosphatase was up-regulated under P-depleted conditions at both the transcriptional and translational levels, suggesting that is able to express this AP to cope with phosphorus limitation. Comparative analysis revealed different transcriptional expression dynamics between and , although both genes exhibited inducible expression under phosphate deficiency. In addition, after AP activity was eliminated by using EDTA to chelate metal ions, we found that AP activity was recovered with the supplement of Ca and Zn, indicative of the adoption of Ca as the cofactor under Zn-P co-limited conditions, likely a result of adaptation to oceanic environments where Zn is often limiting.
是现代海洋中一种分布广泛的颗石藻,在碳循环和局部气候反馈中发挥着重要作用,因为它能形成大面积水华、钙化并产生二甲基巯基丙酸内盐(DMSP),进而导致二甲基硫(DMS)的生成,DMS在大气中氧化时会影响气候。已知在磷限制条件下,它能够通过表达特定类型的碱性磷酸酶(EHAP1)来利用溶解有机磷(DOP)。在本研究中,我们在该物种中鉴定出一种新的碱性磷酸酶(EH-PhoA),发现它属于新分类的PhoA家族。这种非典型磷酸酶的表达在转录和翻译水平上在缺磷条件下均上调,表明能够表达这种碱性磷酸酶以应对磷限制。比较分析揭示了和之间不同的转录表达动态,尽管两个基因在磷酸盐缺乏时均表现出诱导表达。此外,在用EDTA螯合金属离子消除碱性磷酸酶活性后,我们发现补充Ca和Zn可恢复碱性磷酸酶活性,这表明在锌-磷共同限制条件下采用Ca作为辅因子,这可能是适应锌常受限的海洋环境的结果。