International Center of Tropical Botany, Florida International University, Miami, FL, 33199, USA.
Department of Biological Sciences, Kent State University, Kent, OH, 44242, USA.
New Phytol. 2017 Sep;215(4):1562-1573. doi: 10.1111/nph.14571. Epub 2017 Apr 25.
Fine-root traits play key roles in ecosystem processes, but the drivers of fine-root trait diversity remain poorly understood. The plant economic spectrum (PES) hypothesis predicts that leaf and root traits evolved in coordination. Mycorrhizal association type, plant growth form and climate may also affect root traits. However, the extent to which these controls are confounded with phylogenetic structuring remains unclear. Here we compiled information about root and leaf traits for > 600 species. Using phylogenetic relatedness, climatic ranges, growth form and mycorrhizal associations, we quantified the importance of these factors in the global distribution of fine-root traits. Phylogenetic structuring accounts for most of the variation for all traits excepting root tissue density, with root diameter and nitrogen concentration showing the strongest phylogenetic signal and specific root length showing intermediate values. Climate was the second most important factor, whereas mycorrhizal type had little effect. Substantial trait coordination occurred between leaves and roots, but the strength varied between growth forms and clades. Our analyses provide evidence that the integration of roots and leaves in the PES requires better accounting of the variation in traits across phylogenetic clades. Inclusion of phylogenetic information provides a powerful framework for predictions of belowground functional traits at global scales.
根系性状在生态系统过程中起着关键作用,但根系性状多样性的驱动因素仍知之甚少。植物经济谱(PES)假说预测,叶片和根系性状是协同进化的。菌根共生类型、植物生长形式和气候也可能影响根系性状。然而,这些控制因素与系统发育结构之间的混淆程度尚不清楚。在这里,我们为 >600 种物种汇总了根系和叶片性状的信息。利用系统发育关系、气候范围、生长形式和菌根共生,我们量化了这些因素在全球细根性状分布中的重要性。除了根组织密度外,系统发育结构解释了所有性状变异的大部分,其中根直径和氮浓度表现出最强的系统发育信号,比根长表现出中等值。气候是第二重要的因素,而菌根类型的影响较小。叶片和根系之间存在大量的性状协调,但在生长形式和进化枝之间存在差异。我们的分析提供了证据,表明在 PES 中整合根系和叶片需要更好地解释跨系统发育枝系的性状变异。包含系统发育信息为全球尺度预测地下功能性状提供了一个强大的框架。