Department of Biochemistry, Research Centre for Plant Metabolomics, University of Johannesburg, Auckland Park 2006, South Africa.
Int J Mol Sci. 2018 Jun 13;19(6):1759. doi: 10.3390/ijms19061759.
A new era of plant biochemistry at the systems level is emerging, providing detailed descriptions of biochemical phenomena at the cellular and organismal level. This new era is marked by the advent of metabolomics—the qualitative and quantitative investigation of the entire metabolome (in a dynamic equilibrium) of a biological system. This field has developed as an indispensable methodological approach to study cellular biochemistry at a global level. For protection and survival in a constantly-changing environment, plants rely on a complex and multi-layered innate immune system. This involves surveillance of ‘self’ and ‘non-self,’ molecule-based systemic signalling and metabolic adaptations involving primary and secondary metabolites as well as epigenetic modulation mechanisms. Establishment of a pre-conditioned or primed state can sensitise or enhance aspects of innate immunity for faster and stronger responses. Comprehensive elucidation of the molecular and biochemical processes associated with the phenotypic defence state is vital for a better understanding of the molecular mechanisms that define the metabolism of plant⁻pathogen interactions. Such insights are essential for translational research and applications. Thus, this review highlights the prospects of metabolomics and addresses current challenges that hinder the realisation of the full potential of the field. Such limitations include partial coverage of the metabolome and maximising the value of metabolomics data (extraction of information and interpretation). Furthermore, the review points out key features that characterise both the plant innate immune system and enhancement of the latter, thus underlining insights from metabolomic studies in plant priming. Future perspectives in this inspiring area are included, with the aim of stimulating further studies leading to a better understanding of plant immunity at the metabolome level.
植物生物化学的新纪元正在出现,为细胞和生物整体水平的生化现象提供了详细的描述。这个新纪元的标志是代谢组学的出现——对生物系统中整个代谢组(处于动态平衡中)的定性和定量研究。这个领域已经发展成为研究细胞生物化学整体水平的不可或缺的方法学方法。为了在不断变化的环境中保护和生存,植物依赖于复杂的、多层次的先天免疫系统。这包括对“自我”和“非自我”的监控、基于分子的系统信号以及涉及初级和次级代谢物以及表观遗传调节机制的代谢适应。建立预先调节或预先激活的状态可以使先天免疫的某些方面变得敏感或增强,从而更快、更强地做出反应。全面阐明与表型防御状态相关的分子和生化过程,对于更好地理解定义植物-病原体相互作用代谢的分子机制至关重要。这些见解对于转化研究和应用至关重要。因此,本文综述了代谢组学的前景,并讨论了当前阻碍该领域充分发挥潜力的挑战。这些限制包括代谢组的部分覆盖和最大限度地利用代谢组学数据(信息提取和解释)。此外,该综述还指出了先天免疫系统和增强后者的关键特征,从而强调了代谢组学研究在植物启动中的见解。本文还包括在这个令人鼓舞的领域的未来展望,旨在激发进一步的研究,以更好地理解代谢组水平的植物免疫。