category
bioRxiv
date
Mar 25, 2026
slug
status
Published
summary
创新性揭示碱性磷酸酶(AP)在微生物碳获取中的作用,发现AP不仅是磷循环关键酶,还可能作为碳应激响应机制参与有机碳利用,颠覆传统认知;通过实验验证海洋细菌Ruegeria pomeroyi利用不同有机磷化合物的异养生长能力,阐明AP活性与碳源利用效率的动态关系。
tags
核酸蛋白工具酶
type
Post

📄 原文题目

Alkaline phosphatase activity supports heterotrophic carbon acquisition in a coastal time series site and a representative marine bacterium

🔗 原文链接

💡 AI 核心解读

创新性揭示碱性磷酸酶(AP)在微生物碳获取中的作用,发现AP不仅是磷循环关键酶,还可能作为碳应激响应机制参与有机碳利用,颠覆传统认知;通过实验验证海洋细菌Ruegeria pomeroyi利用不同有机磷化合物的异养生长能力,阐明AP活性与碳源利用效率的动态关系。

📝 英文原版摘要

Phosphorus is a vital nutrient required for the functioning of living organisms. In aquatic environments, dissolved inorganic phosphate is considered its most bioavailable form. However, phosphate can be scarce, which has the potential to limit microbial metabolism and ecosystem functioning. To overcome phosphate scarcity, microbes produce alkaline phosphatase (AP) to access dissolved organic phosphorus (DOP). Here, we conducted a year-long study of alkaline phosphatase activity (APA) at the Ellen Browning Scripps Memorial Pier, a nutrient-rich coastal site. APA was observed throughout the year despite phosphate-replete conditions, suggesting that the role of APs in microbial nutrition is not completely understood. We tested the hypothesis that APA may promote acquisition of organic carbon liberated from DOP hydrolysis by growing the heterotrophic marine bacterium Ruegeria pomeroyi on three DOP compounds as sole carbon sources and assessing APA. Controlling for carbon concentration, all DOP sources supported growth, but at lower levels than glucose, with the highest growth observed on glucose-6-phosphate (G6P), followed by adenosine monophosphate (AMP) and adenosine triphosphate (ATP). Moreover, cell-specific APA was significantly enhanced in carbon-deplete conditions and during growth on G6P, relative to cultures grown on replete glucose or nucleotides. These findings suggest alkaline phosphatases (APs) are part of a generic carbon stress response and likely play a role in acquiring certain forms of organic carbon by R. pomeroyi, with implications for other taxa. Overall, this study helps advance the current state of knowledge regarding microbial phosphorus cycling and carbon utilization in aquatic environments.
大西洋海气界面的纬度多样性梯度与选择性微生物交换跨膜结构域组成反映SNARE蛋白的亚细胞定位
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