干旱对植物种内化学多样性的影响支持了适应性分化和趋同进化。

IF 4.2 3区 生物学 Q1 PLANT SCIENCES
Plant Biology Pub Date : 2024-10-25 DOI:10.1111/plb.13731
E Castells, P Sanchez-Martinez
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引用次数: 0

摘要

植物合成了大量的特化化合物,这些化合物介导了植物与周围环境的相互作用。这种化学多样性的某些部分具有功能性,并受到自然选择的影响,但在种内水平上,化学进化的基本因素在很大程度上仍不为人所知。在这里,我们结合化学、环境和遗传数据,研究了干旱对入侵灌木蕨类植物化学型表达的影响。我们研究了吡咯里西啶生物碱(PAs)的变异,这是一类广泛分布于紫草科、菊科和豆科的特殊代谢物,在自然和普通园林条件下,来自于跨越干旱带的原生种群和三个跨洲引种种群。我们使用一种通过控制种群中性遗传结构来划分方差和协方差的方法,研究了化学与干旱之间的关系是否与适应性分化过程相一致。我们发现,在自然条件下和受控条件下,随着干旱程度的增加,类似retrorsine 的化合物会一致地转向类似 Seneciphylline 的化合物,这与生物合成途径是一致的。这种模式与中性遗传结构无关,在原生地沿着环境梯度发生,而在所有非原生地则以趋同的方式发生,这表明对干旱的适应性分化。我们的研究结果表明,S. pterophorus的PAs多样性部分是由干旱形成的。研究非生物因素如何影响化学进化是阐明植物在未来气候情景下的反应及其对其他营养级的连锁反应的关键。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The influence of aridity on plant intraspecific chemical diversity supports adaptive differentiation and convergent evolution.

Plants synthesize a broad array of specialized chemical compounds that mediate their interactions with the surrounding environment. Some of this chemical diversity is functional and subject to natural selection, but the factors underlying chemical evolution at the intraspecific level remain largely unknown. Here, we combined chemical, environmental and genetic data to investigate the effect of aridity on the expression of chemotypes in the invasive shrub Senecio pterophorus. We studied the variation in pyrrolizidine alkaloids (PAs), a group of specialized metabolites widespread across the families Boraginaceae, Asteraceae and Fabaceae, from native populations spanning a cline of aridity and from three cross-continental introductions, under natural and common garden conditions. We examined whether the relationship between chemistry and aridity was compatible with a process of adaptive differentiation using a method that partitions the variance and covariance by controlling for the population neutral genetic structure. We found a consistent shift from retrorsine-like to seneciphylline-like compounds under increasing aridity in both natural and controlled conditions in coherence with the biosynthetic pathways. This pattern was independent of the neutral genetic structure and occurred along the environmental gradient in the native range and in a convergent manner in all nonnative regions, which suggests adaptive differentiation in response to aridity. Our findings show that the diversity of PAs in S. pterophorus has been partially shaped by aridity. Investigating how abiotic factors influence chemical evolution is key to elucidating the plant responses in future climate scenarios and the cascading effects on other trophic levels.

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来源期刊
Plant Biology
Plant Biology 生物-植物科学
CiteScore
8.20
自引率
2.60%
发文量
109
审稿时长
3 months
期刊介绍: Plant Biology is an international journal of broad scope bringing together the different subdisciplines, such as physiology, molecular biology, cell biology, development, genetics, systematics, ecology, evolution, ecophysiology, plant-microbe interactions, and mycology. Plant Biology publishes original problem-oriented full-length research papers, short research papers, and review articles. Discussion of hot topics and provocative opinion articles are published under the heading Acute Views. From a multidisciplinary perspective, Plant Biology will provide a platform for publication, information and debate, encompassing all areas which fall within the scope of plant science.
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