State Key Laboratory of Marine Environmental Science, Xiamen University, Xiamen, Fujian, PR China.
The Freddy and Nadine Herrmann Institute of Earth Sciences, Hebrew University of Jerusalem, Jerusalem, Israel.
Nat Commun. 2022 Nov 8;13(1):6730. doi: 10.1038/s41467-022-34586-x.
Growth of the prominent nitrogen-fixing cyanobacterium Trichodesmium is often limited by phosphorus availability in the ocean. How nitrogen fixation by phosphorus-limited Trichodesmium may respond to ocean acidification remains poorly understood. Here, we use phosphate-limited chemostat experiments to show that acidification enhanced phosphorus demands and decreased phosphorus-specific nitrogen fixation rates in Trichodesmium. The increased phosphorus requirements were attributed primarily to elevated cellular polyphosphate contents, likely for maintaining cytosolic pH homeostasis in response to acidification. Alongside the accumulation of polyphosphate, decreased NADP(H):NAD(H) ratios and impaired chlorophyll synthesis and energy production were observed under acidified conditions. Consequently, the negative effects of acidification were amplified compared to those demonstrated previously under phosphorus sufficiency. Estimating the potential implications of this finding, using outputs from the Community Earth System Model, predicts that acidification and dissolved inorganic and organic phosphorus stress could synergistically cause an appreciable decrease in global Trichodesmium nitrogen fixation by 2100.
在海洋中,固氮蓝藻束毛藻的生长通常受到磷可用性的限制。磷限制的束毛藻的固氮作用如何响应海洋酸化仍知之甚少。在这里,我们使用磷酸盐限制的恒化器实验表明,酸化增强了束毛藻的磷需求,并降低了磷特异性固氮速率。这种对磷的更高需求主要归因于细胞内多磷酸盐含量的增加,可能是为了响应酸化维持细胞质 pH 平衡。除了多磷酸盐的积累之外,在酸化条件下还观察到 NADP(H):NAD(H) 比值降低,叶绿素合成和能量产生受损。因此,与以前在磷充足条件下所证明的相比,酸化的负面影响被放大了。使用地球系统模式的输出结果来估计这一发现的潜在影响,预计到 2100 年,酸化以及溶解无机和有机磷的胁迫可能会协同作用,导致全球束毛藻固氮量显著减少。