Effects of phosphorus-solubilizing bacteria and biochar application on phosphorus availability and tomato growth under phosphorus stress

IF 4.4 1区 生物学 Q1 BIOLOGY
Kaihong Bai, Wanying Wang, Jingnan Zhang, Pei Yao, Chuanying Cai, Zimei Xie, Laixin Luo, Tingting Li, Zhenlong Wang
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Abstract

Phosphorus-solubilizing bacteria (PSB) are vital in converting insoluble phosphorus into a soluble form that plants can readily absorb and utilize in soil. While previous studies have mainly focused on the extracellular secretion of microorganisms, few have explored the intricate intracellular metabolic processes involved in PSB-mediated phosphorus solubilization. Here, we uncovered that Ca3(PO4)2 could serve as a source of insoluble phosphorus for the PSB, Pseudomonas sp. NK2. High-performance liquid chromatography (HPLC) results indicated higher levels of organic acids released from insoluble phosphorus compared to a soluble phosphorus source (KH2PO4), with acetic acid released exclusively under insoluble phosphorus condition. Moreover, non-target metabolomics was employed to delve into the intracellular metabolic profile. It unveiled that insoluble phosphorus significantly enhanced the tricarboxylic acid cycle, glycolysis, glyoxylic acid metabolism, and other pathways, leading to the production of acetic acid, gluconic acid, oxalic acid, and citric acid for insoluble phosphorus solubilization. In our quest to identify suitable biochar carriers, we assessed seven types of biochar through the conjoint analysis of NBRIP medium culture and application to soil for 30 days, with cotton straw-immobilized NK2 emerging as the most potent phosphorus content provider. Lastly, NK2 after cotton straw immobilization demonstrated the ability to enhance biomass, plant height, and root development of Solanum lycopersicum L. cv. Micro Tom. Pseudomonas sp. NK2 with cotton straw biochar could enhance phosphorus availability and tomato growth. These findings bear significant implications for the practical application of phosphorus-solubilizing bacteria in agricultural production and the promotion of environmentally sustainable farming practices.
磷溶解菌和生物炭的应用对磷供应和磷胁迫下番茄生长的影响
磷溶解细菌(PSB)在将土壤中的不溶性磷转化为植物易于吸收和利用的可溶性磷方面起着至关重要的作用。以往的研究主要集中于微生物的胞外分泌物,而很少有人探索 PSB 介导的磷溶解所涉及的错综复杂的胞内代谢过程。在此,我们发现 Ca3(PO4)2 可作为 PSB(假单胞菌 NK2)的不溶磷来源。高效液相色谱(HPLC)结果表明,与可溶性磷源(KH2PO4)相比,不溶性磷释放的有机酸含量更高,其中乙酸仅在不溶性磷条件下释放。此外,还采用了非目标代谢组学方法来研究细胞内代谢概况。结果表明,不溶性磷显著增强了三羧酸循环、糖酵解、乙醛酸代谢等途径,导致乙酸、葡萄糖酸、草酸和柠檬酸在不溶性磷溶解条件下产生。在寻找合适的生物炭载体的过程中,我们通过对 NBRIP 培养基培养和在土壤中施用 30 天的联合分析,评估了七种生物炭,其中棉花秸秆固定的 NK2 成为最有效的磷含量提供者。最后,棉花秸秆固定化后的 NK2 能够提高番茄属植物 Solanum lycopersicum L. cv. Micro Tom 的生物量、株高和根系发育。棉秆生物炭中的假单胞菌 NK2 能提高磷的可用性和番茄的生长。这些发现对磷溶解细菌在农业生产中的实际应用以及促进环境可持续农业实践具有重要意义。
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来源期刊
BMC Biology
BMC Biology 生物-生物学
CiteScore
7.80
自引率
1.90%
发文量
260
审稿时长
3 months
期刊介绍: BMC Biology is a broad scope journal covering all areas of biology. Our content includes research articles, new methods and tools. BMC Biology also publishes reviews, Q&A, and commentaries.
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