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NCIMB 8003中生物固氮和磷活化的整体观点

Holistic view of biological nitrogen fixation and phosphorus mobilization in NCIMB 8003.

作者信息

Biełło Karolina A, Lucena Carlos, López-Tenllado Francisco J, Hidalgo-Carrillo Jesús, Rodríguez-Caballero Gema, Cabello Purificación, Sáez Lara P, Luque-Almagro Víctor, Roldán María Dolores, Moreno-Vivián Conrado, Olaya-Abril Alfonso

机构信息

Departamento de Bioquímica y Biología Molecular, Edificio Severo Ochoa, Campus de Rabanales, Universidad de Córdoba, Córdoba, Spain.

Departamento de Botánica, Ecología y Fisiología Vegetal, Edificio Celestino Mutis, Campus de Rabanales, Universidad de Córdoba, Córdoba, Spain.

出版信息

Front Microbiol. 2023 Feb 8;14:1129721. doi: 10.3389/fmicb.2023.1129721. eCollection 2023.

Abstract

Nitrogen (N) and phosphorus (P) deficiencies are two of the most agronomic problems that cause significant decrease in crop yield and quality. N and P chemical fertilizers are widely used in current agriculture, causing environmental problems and increasing production costs. Therefore, the development of alternative strategies to reduce the use of chemical fertilizers while maintaining N and P inputs are being investigated. Although dinitrogen is an abundant gas in the atmosphere, it requires biological nitrogen fixation (BNF) to be transformed into ammonium, a nitrogen source assimilable by living organisms. This process is bioenergetically expensive and, therefore, highly regulated. Factors like availability of other essential elements, as phosphorus, strongly influence BNF. However, the molecular mechanisms of these interactions are unclear. In this work, a physiological characterization of BNF and phosphorus mobilization (PM) from an insoluble form (Ca(PO)) in NCIMB 8003 was carried out. These processes were analyzed by quantitative proteomics in order to detect their molecular requirements and interactions. BNF led to a metabolic change beyond the proteins strictly necessary to carry out the process, including the metabolism related to other elements, like phosphorus. Also, changes in cell mobility, heme group synthesis and oxidative stress responses were observed. This study also revealed two phosphatases that seem to have the main role in PM, an exopolyphosphatase and a non-specific alkaline phosphatase PhoX. When both BNF and PM processes take place simultaneously, the synthesis of nitrogenous bases and -methionine were also affected. Thus, although the interdependence is still unknown, possible biotechnological applications of these processes should take into account the indicated factors.

摘要

氮(N)和磷(P)缺乏是导致作物产量和品质显著下降的两个最主要的农学问题。氮和磷化学肥料在当前农业中广泛使用,引发了环境问题并增加了生产成本。因此,正在研究开发替代策略,以在维持氮和磷投入的同时减少化学肥料的使用。尽管二氮是大气中丰富的气体,但它需要生物固氮(BNF)才能转化为铵,铵是生物体可同化的氮源。这个过程在生物能量上成本高昂,因此受到高度调控。其他必需元素(如磷)的可用性等因素强烈影响生物固氮。然而,这些相互作用的分子机制尚不清楚。在这项工作中,对NCIMB 8003中生物固氮和从难溶形式(Ca(PO))中动员磷(PM)进行了生理特性分析。通过定量蛋白质组学分析这些过程,以检测它们的分子需求和相互作用。生物固氮导致了除进行该过程严格必需的蛋白质之外的代谢变化,包括与其他元素(如磷)相关的代谢。此外,还观察到细胞迁移、血红素基团合成和氧化应激反应的变化。这项研究还揭示了两种似乎在磷动员中起主要作用的磷酸酶,一种胞外多磷酸酶和一种非特异性碱性磷酸酶PhoX。当生物固氮和磷动员过程同时发生时,含氮碱基和甲硫氨酸的合成也会受到影响。因此,尽管相互依存关系仍然未知,但这些过程可能的生物技术应用应考虑到所指出的因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/59e3/9945222/4e8227aa35f4/fmicb-14-1129721-g001.jpg

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