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Hormesis and a Chemical Raison D'ětre for Secondary Plant Metabolites

机译:植物次生代谢物的兴奋作用和化学毒性

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In plants, accumulation in specific compartments and huge structural diversity of secondary metabolites is one trait that is not understood yet. By exploring the diverse abiotic and biotic interactions of plants above- and belowground, we provide examples that are characterized by nonlinear effects of the secondary metabolites. We propose that redox chemistry, specifically the reduction of reactive oxygen species (ROS) and, in their absence, reduction of molecular oxygen by the identical secondary metabolite, is an important component of the hormetic effects caused by these compounds. This is illustrated for selected phenols, terpenoids, and alkaloids. The redox reactions are modulated by the variable availability of transition metals that serve as donors of electrons in a Fenton reaction mode. Low levels of ROS stimulate growth, cell differentiation, and stress resistance; high levels induce programmed cell death. We propose that provision of molecules that can participate in this redox chemistry is the raison d'ětre for secondary metabolites. In this context, the presence or absence of functional groups in the molecule is more essential than the whole structure. Accordingly, there exist no constraints that limit structural diversity. Redox chemistry is ubiquitous, from the atmosphere to the soil.
机译:在植物中,特定隔室中的积累和次生代谢产物的巨大结构多样性是目前尚不了解的一个特征。通过探索地上和地下植物的各种非生物和生物相互作用,我们提供了以次生代谢物的非线性效应为特征的示例。我们提出氧化还原化学,特别是活性氧(ROS)的还原,以及在它们不存在的情况下,通过相同的次级代谢产物还原分子氧,是这些化合物引起的激素效应的重要组成部分。所选的酚,萜类和生物碱对此进行了说明。氧化还原反应通过在Fenton反应模式中充当电子供体的过渡金属的可变可用性进行调节。少量的ROS刺激生长,细胞分化和抗逆性;高水平诱导程序性细胞死亡。我们建议提供可以参与这种氧化还原化学作用的分子是次生代谢产物的存在理由。在这种情况下,分子中官能团的存在或缺失比整个结构更为重要。因此,不存在限制结构多样性的约束。从大气到土壤,氧化还原化学无处不在。

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