Department of Biochemistry, University of Johannesburg, Auckland Park, Johannesburg, 2006, South Africa.
School of Molecular and Cell Biology, University of the Witwatersrand, WITS, Private Bag 3, Johannesburg, 2050, South Africa.
Sci Rep. 2022 Jun 21;12(1):10450. doi: 10.1038/s41598-022-14570-7.
Microbial-based biostimulants are emerging as effective strategies to improve agricultural productivity; however, the modes of action of such formulations are still largely unknown. Thus, herein we report elucidated metabolic reconfigurations in maize (Zea mays) leaves associated with growth promotion and drought stress tolerance induced by a microbial-based biostimulant, a Bacillus consortium. Morphophysiological measurements revealed that the biostimulant induced a significant increase in biomass and enzymatic regulators of oxidative stress. Furthermore, the targeted metabolomics approach revealed differential quantitative profiles in amino acid-, phytohormone-, flavonoid- and phenolic acid levels in plants treated with the biostimulant under well-watered, mild, and severe drought stress conditions. These metabolic alterations were complemented with gene expression and global DNA methylation profiles. Thus, the postulated framework, describing biostimulant-induced metabolic events in maize plants, provides actionable knowledge necessary for industries and farmers to confidently and innovatively explore, design and fully implement microbial-based formulations and strategies into agronomic practices for sustainable agriculture and food production.
基于微生物的生物刺激素作为提高农业生产力的有效策略正在兴起;然而,这些配方的作用模式在很大程度上仍然未知。因此,本文报道了一种基于微生物的生物刺激剂(芽孢杆菌联合体)诱导玉米(Zea mays)叶片代谢重排的情况,这种生物刺激剂能促进生长和提高耐旱性。形态生理学测量表明,生物刺激剂诱导生物量显著增加和氧化应激的酶调节剂。此外,在充分浇水、轻度和重度干旱胁迫条件下,用生物刺激剂处理的植物中,目标代谢组学方法揭示了氨基酸、植物激素、类黄酮和酚酸水平的差异定量图谱。这些代谢变化与基因表达和全基因组 DNA 甲基化图谱相补充。因此,该假设框架描述了玉米植物中生物刺激素诱导的代谢事件,为工业界和农民提供了必要的可操作知识,使他们能够有信心和创新性地探索、设计和全面实施基于微生物的配方和策略,以实现可持续农业和粮食生产。