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镧对细胞的响应具有底物特异性,并揭示了铜绿假单胞菌 KT2440 甘油代谢的新途径。

The Cellular Response to Lanthanum Is Substrate Specific and Reveals a Novel Route for Glycerol Metabolism in Pseudomonas putida KT2440.

机构信息

University of Stuttgart, Institute of Biochemistry and Technical Biochemistry, Department of Technical Biochemistry, Stuttgart, Germany.

Université de Lorraine, CNRS, LIEC, Nancy, France.

出版信息

mBio. 2020 Apr 28;11(2):e00516-20. doi: 10.1128/mBio.00516-20.

Abstract

Ever since the discovery of the first rare earth element (REE)-dependent enzyme, the physiological role of lanthanides has become an emerging field of research due to the environmental implications and biotechnological opportunities. In KT2440, the two pyrroloquinoline quinone-dependent alcohol dehydrogenases (PQQ-ADHs) PedE and PedH are inversely regulated in response to REE availability. This transcriptional switch is orchestrated by a complex regulatory network that includes the PedR2/PedS2 two-component system and is important for efficient growth on several alcoholic volatiles. To study whether cellular responses beyond the REE switch exist, the differential proteomic responses that occur during growth on various model carbon sources were analyzed. Apart from the Ca-dependent enzyme PedE, the differential abundances of most identified proteins were conditional. During growth on glycerol-and concomitant with the proteomic changes-lanthanum (La) availability affected different growth parameters, including the onset of logarithmic growth and final optical densities. Studies with mutant strains revealed a novel metabolic route for glycerol utilization, initiated by PedE and/or PedH activity. Upon oxidation to glycerate via glyceraldehyde, phosphorylation by the glycerate kinase GarK most likely yields glycerate-2-phosphate, which is eventually channeled into the central metabolism of the cell. This new route functions in parallel with the main degradation pathway encoded by the operon and provides a growth advantage to the cells by allowing an earlier onset of growth with glycerol as the sole source of carbon and energy. The biological role of REEs has long been underestimated, and research has mainly focused on methanotrophic and methylotrophic bacteria. We have recently demonstrated that , a plant growth-promoting bacterium that thrives in the rhizosphere of various food crops, possesses a REE-dependent alcohol dehydrogenase (PedH), but knowledge about REE-specific effects on physiological traits in nonmethylotrophic bacteria is still scarce. This study demonstrates that the cellular response of to lanthanum (La) is mostly substrate specific and that La availability highly affects the growth of cells on glycerol. Further, a novel route for glycerol metabolism is identified, which is initiated by PedE and/or PedH activity and provides a growth advantage to this biotechnologically relevant organism by allowing a faster onset of growth. Overall, these findings demonstrate that lanthanides can affect physiological traits in nonmethylotrophic bacteria and might influence their competitiveness in various environmental niches.

摘要

自从发现第一个依赖稀土元素(REE)的酶以来,由于环境影响和生物技术机会,镧系元素的生理作用已成为一个新兴的研究领域。在 KT2440 中,两种吡咯并喹啉醌依赖性醇脱氢酶(PQQ-ADHs)PedE 和 PedH 会根据 REE 的可用性进行相反的调节。这种转录开关是由一个复杂的调控网络协调的,该网络包括 PedR2/PedS2 双组分系统,对于在几种酒精挥发物上的有效生长很重要。为了研究除 REE 开关之外是否存在细胞反应,分析了在各种模型碳源上生长时发生的差异蛋白质组学反应。除了 Ca 依赖性酶 PedE 外,大多数鉴定出的蛋白质的差异丰度都是有条件的。在以甘油为碳源的生长过程中——与蛋白质组变化同时发生——镧(La)的可用性会影响不同的生长参数,包括对数生长期的开始和最终的光密度。通过突变株的研究揭示了甘油利用的一种新的代谢途径,该途径由 PedE 和/或 PedH 活性启动。通过甘油醛氧化为甘油酸,甘油酸激酶 GarK 的磷酸化很可能产生甘油酸-2-磷酸,最终进入细胞的中心代谢途径。这条新途径与 操纵子编码的主要降解途径平行运行,并通过允许细胞以甘油为唯一碳源和能源更早地开始生长,为细胞提供生长优势。REE 的生物学作用长期以来被低估了,研究主要集中在甲烷营养菌和甲基营养菌上。我们最近证明,作为一种在各种粮食作物根际中茁壮成长的植物促生菌,拥有一种依赖 REE 的醇脱氢酶(PedH),但关于 REE 对非甲基营养菌生理特性的特定影响的知识仍然很少。这项研究表明, 对镧(La)的细胞反应主要是底物特异性的,La 的可用性极大地影响了细胞在甘油上的生长。此外,确定了甘油代谢的一种新途径,该途径由 PedE 和/或 PedH 活性启动,并通过允许更快地开始生长,为这种具有生物技术相关性的生物提供了生长优势。总的来说,这些发现表明,镧系元素可以影响非甲基营养菌的生理特性,并可能影响它们在各种环境小生境中的竞争力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7862/7188995/df011e6cca61/mBio.00516-20-f0001.jpg

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