Molecular-level carbon traits underlie the multidimensional fine root economics space

IF 15.8 1区 生物学 Q1 PLANT SCIENCES Nature Plants Pub Date : 2024-05-13 DOI:10.1038/s41477-024-01700-4
Mengke Wang, Deliang Kong, Xiaohan Mo, Yinghui Wang, Qingpei Yang, Paul Kardol, Oscar J. Valverde-Barrantes, Myrna J. Simpson, Hui Zeng, Peter B. Reich, Joana Bergmann, Nishanth Tharayil, Junjian Wang
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Abstract

Carbon influences the evolution and functioning of plants and their roots. Previous work examining a small number of commonly measured root traits has revealed a global multidimensionality of the resource economics traits in fine roots considering carbon as primary currency but without considering the diversity of carbon-related traits. To address this knowledge gap, we use data from 66 tree species from a tropical forest to illustrate that root economics space co-varies with a novel molecular-level traits space based on nuclear magnetic resonance. Thinner fine roots exhibit higher proportions of carbohydrates and lower diversity of molecular carbon than thicker roots. Mass-denser fine roots have more lignin and aromatic carbon compounds but less bioactive carbon compounds than lighter roots. Thus, the transition from thin to thick fine roots implies a shift in the root carbon economy from ‘do-it-yourself’ soil exploration to collaboration with mycorrhizal fungi, while the shift from light to dense fine roots emphasizes a shift from acquisitive to conservative root strategy. We reveal a previously undocumented role of molecular-level carbon traits that potentially undergird the multidimensional root economics space. This finding offers new molecular insight into the diversity of root form and function, which is fundamental to our understanding of plant evolution, species coexistence and adaptations to heterogeneous environments. Wang and colleagues report a two-dimensional root carbon trait space coupled with the root economics space, offering molecular insights into the great diversity of root form and function.

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分子水平的碳特征是多维细根经济学空间的基础
碳影响植物及其根系的进化和功能。以前研究少量常用根系性状的工作揭示了细根资源经济学性状的全球多维性,将碳视为主要货币,但没有考虑与碳相关性状的多样性。为了填补这一知识空白,我们利用来自热带森林的 66 个树种的数据,说明根系经济学空间与基于核磁共振的新型分子级性状空间共同变化。与较粗的根相比,较细的根表现出较高的碳水化合物比例和较低的分子碳多样性。与较粗的根相比,质量密度较高的细根具有更多的木质素和芳香碳化合物,但生物活性碳化合物较少。因此,细根从细到粗的转变意味着根碳经济从 "自己动手 "探索土壤到与菌根真菌合作的转变,而细根从轻到密的转变则强调了根策略从获取型到保守型的转变。我们揭示了分子水平碳性状以前未记录的作用,它可能是多维根经济学空间的基础。这一发现为我们了解根的形态和功能的多样性提供了新的分子见解,这对我们理解植物进化、物种共存和适应异质环境至关重要。
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来源期刊
Nature Plants
Nature Plants PLANT SCIENCES-
CiteScore
25.30
自引率
2.20%
发文量
196
期刊介绍: Nature Plants is an online-only, monthly journal publishing the best research on plants — from their evolution, development, metabolism and environmental interactions to their societal significance.
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