Whitehead Institute for Biomedical Research, Cambridge, MA, USA.
Department of Biology, Massachusetts Institute of Technology, Cambridge, MA, USA.
Nat Chem Biol. 2021 Oct;17(10):1037-1045. doi: 10.1038/s41589-021-00822-6. Epub 2021 Sep 22.
As sessile organisms, plants evolved elaborate metabolic systems that produce a plethora of specialized metabolites as a means to survive challenging terrestrial environments. Decades of research have revealed the genetic and biochemical basis for a multitude of plant specialized metabolic pathways. Nevertheless, knowledge is still limited concerning the selective advantages provided by individual and collective specialized metabolites to the reproductive success of diverse host plants. Here we review the biological functions conferred by various classes of plant specialized metabolites in the context of the interaction of plants with their surrounding environment. To achieve optimal multifunctionality of diverse specialized metabolic processes, plants use various adaptive mechanisms at subcellular, cellular, tissue, organ and interspecies levels. Understanding these mechanisms and the evolutionary trajectories underlying their occurrence in nature will ultimately enable efficient bioengineering of desirable metabolic traits in chassis organisms.
作为固着生物,植物进化出了精细的代谢系统,产生了大量的特殊代谢物,以此来适应充满挑战的陆地环境。数十年的研究揭示了多种植物特殊代谢途径的遗传和生化基础。尽管如此,对于个体和集体特殊代谢物为不同宿主植物的繁殖成功提供的选择优势,我们的了解仍然有限。在这里,我们回顾了各种植物特殊代谢物在植物与其周围环境相互作用的背景下赋予的生物学功能。为了使各种特殊代谢过程实现最佳多功能性,植物在亚细胞、细胞、组织、器官和种间水平使用各种适应性机制。理解这些机制以及它们在自然界中出现的进化轨迹,最终将使我们能够在底盘生物中有效地进行理想代谢特性的生物工程改造。