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(此处原文不完整,缺少具体所指生物,推测完整句子可能类似“The endosymbiont of [具体生物名称] is specialized for nitrogen fixation within a photosynthetic eukaryote.”)[具体生物名称]的内共生体专门用于在光合真核生物体内进行固氮作用。

The endosymbiont of is specialized for nitrogen fixation within a photosynthetic eukaryote.

作者信息

Moulin Solène L Y, Frail Sarah, Doenier Jon, Braukmann Thomas, Yeh Ellen

机构信息

Department of Pathology, Stanford School of Medicine, Stanford, California, USA.

Department of Biochemistry, Stanford School of Medicine, Stanford, California, USA.

出版信息

bioRxiv. 2023 Apr 4:2023.03.08.531752. doi: 10.1101/2023.03.08.531752.

Abstract

spp. diatoms contain obligate, nitrogen-fixing endosymbionts, or "diazoplasts", derived from cyanobacteria. These algae are a rare example of photosynthetic eukaryotes that have successfully coupled oxygenic photosynthesis with oxygen-sensitive nitrogenase activity. Here, we report a newly-isolated species, , as a model to investigate endosymbiotic acquisition of nitrogen fixation. To detect the metabolic changes associated with endosymbiotic specialization, we compared nitrogen fixation, associated carbon and nitrogen metabolism, and their regulatory pathways in the diazoplast with its close, free-living cyanobacterial relative, . Unlike , we show that nitrogenase activity in the diazoplast is concurrent with, and even dependent on, host photosynthesis and no longer associated with cyanobacterial glycogen storage suggesting carbohydrates are imported from the host diatom. Carbohydrate catabolism in the diazoplast indicates that the oxidative pentose pathway and oxidative phosphorylation, in concert, generates reducing equivalents and ATP and consumes oxygen to support nitrogenase activity. In contrast to expanded nitrogenase activity, the diazoplast has diminished ability to utilize alternative nitrogen sources. Upon ammonium repletion, negative feedback regulation of nitrogen fixation was conserved, however ammonia assimilation showed paradoxical responses in the diazoplast compared with . The altered nitrogen regulation likely favors nitrogen transfer to the host. Our results suggest that the diazoplast is specialized for endosymbiotic nitrogen fixation. Altogether, we establish a new model for studying endosymbiosis, perform the first functional characterization of this diazotroph endosymbiosis, and identify metabolic adaptations for endosymbiotic acquisition of a critical biological function.

摘要

某些硅藻含有源自蓝细菌的专性固氮内共生体,即“固氮质体”。这些藻类是光合真核生物中罕见的例子,它们成功地将有氧光合作用与对氧敏感的固氮酶活性结合在一起。在这里,我们报告了一个新分离的物种,作为研究固氮内共生获得的模型。为了检测与内共生特化相关的代谢变化,我们比较了固氮质体与其近缘的自由生活蓝细菌在固氮、相关的碳和氮代谢及其调控途径方面的差异。与自由生活的蓝细菌不同,我们发现固氮质体中的固氮酶活性与宿主光合作用同时发生,甚至依赖于宿主光合作用,并且不再与蓝细菌糖原储存相关,这表明碳水化合物是从宿主硅藻中导入的。固氮质体中的碳水化合物分解代谢表明,氧化戊糖途径和氧化磷酸化共同产生还原当量和ATP,并消耗氧气以支持固氮酶活性。与扩大的固氮酶活性相反,固氮质体利用替代氮源的能力有所下降。在铵充足时,固氮的负反馈调节得以保留,然而与自由生活的蓝细菌相比,固氮质体中的氨同化表现出矛盾的反应。改变的氮调节可能有利于氮向宿主的转移。我们的结果表明,固氮质体专门用于内共生固氮。总之,我们建立了一个研究内共生的新模型,对这种固氮内共生进行了首次功能表征,并确定了内共生获得关键生物学功能的代谢适应性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68b5/10103950/5589ad9a6dcb/nihpp-2023.03.08.531752v2-f0001.jpg

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