Singh Gopal, Agrawal Himani, Bednarek Paweł
Institute of Bioorganic Chemistry, Polish Academy of Sciences, Noskowskiego 12/14, 61-704 Poznań, Poland.
Institute of Bioorganic Chemistry, Polish Academy of Sciences, Noskowskiego 12/14, 61-704 Poznań, Poland.
Mol Plant. 2023 Jan 2;16(1):122-144. doi: 10.1016/j.molp.2022.12.006. Epub 2022 Dec 10.
Plants are rich repository of a large number of chemical compounds collectively referred to as specialized metabolites. These compounds are of importance for adaptive processes including responses against changing abiotic conditions and interactions with various co-existing organisms. One of the strikingly affirmed functions of these specialized metabolites is their involvement in plants' life-long interactions with complex multi-kingdom microbiomes including both beneficial and harmful microorganisms. Recent developments in genomic and molecular biology tools not only help to generate well-curated information about regulatory and structural components of biosynthetic pathways of plant specialized metabolites but also to create and screen mutant lines defective in their synthesis. In this review, we have comprehensively surveyed the function of these specialized metabolites and discussed recent research findings demonstrating the responses of various microbes on tested mutant lines having defective biosynthesis of particular metabolites. In addition, we attempt to provide key clues about the impact of these metabolites on the assembly of the plant microbiome by summarizing the major findings of recent comparative metagenomic analyses of available mutant lines under customized and natural microbial niches. Subsequently, we delineate benchmark initiatives that aim to engineer or manipulate the biosynthetic pathways to produce specialized metabolites in heterologous systems but also to diversify their immune function. While denoting the function of these metabolites, we also discuss the critical bottlenecks associated with understanding and exploiting their function in improving plant adaptation to the environment.
植物是大量化合物的丰富储存库,这些化合物统称为特殊代谢产物。这些化合物对于适应性过程很重要,包括应对不断变化的非生物条件以及与各种共存生物的相互作用。这些特殊代谢产物最显著的已确认功能之一是它们参与植物与复杂的多界微生物群落的终生相互作用,这些微生物群落包括有益和有害微生物。基因组学和分子生物学工具的最新进展不仅有助于生成有关植物特殊代谢产物生物合成途径的调控和结构成分的精心整理的信息,还有助于创建和筛选其合成有缺陷的突变株系。在这篇综述中,我们全面调查了这些特殊代谢产物的功能,并讨论了最近的研究结果,这些结果表明了各种微生物对特定代谢产物生物合成有缺陷的测试突变株系的反应。此外,我们试图通过总结在定制和自然微生物生态位下对现有突变株系进行的最新比较宏基因组分析的主要发现,提供有关这些代谢产物对植物微生物群落组装影响的关键线索。随后,我们描述了一些基准计划,这些计划旨在改造或操纵生物合成途径,以便在异源系统中产生特殊代谢产物,同时也使其免疫功能多样化。在阐述这些代谢产物的功能时,我们还讨论了在理解和利用它们在改善植物对环境的适应性方面的功能时所面临的关键瓶颈。