木本植物粗根分解模式:气候、根质量、菌根关联和系统发育的影响

IF 8.3 1区 生物学 Q1 PLANT SCIENCES New Phytologist Pub Date : 2024-12-25 DOI:10.1111/nph.20365
Long Ling, Allison L. Gill, Craig R. See, Timothy J. Fahey, Whendee L. Silver, Hans Lambers, Yiyang Ding, Tao Sun
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引用次数: 0

摘要

粗根是全球重要的地下碳库,但相对于其他植物生物量成分,控制粗根分解速率的因素仍然知之甚少。本文编制了最全面的粗根分解数据集,包括来自60个木本物种的148个观测数据,并将粗根分解速率与植物性状、系统发育和气候联系起来,以解决粗根分解的显性控制问题。分解速率随年平均温度、根系氮、磷浓度的增加而增加。外生菌根的粗根分解比丛枝菌根伴生种慢,被子植物的粗根分解比裸子植物快。粗根分解速率和钙浓度表现出强烈的系统发育信号。我们的研究结果表明,菌根关联和系统发育类群等分类特征,以及根质量和气候,共同作为粗根分解率的最佳预测因子。我们的研究结果提出了粗根分解的主导控制范式,菌根关联和系统发育在粗根分解中起着关键作用,需要在地球系统模型中明确考虑它们,并最终提高预测碳循环-气候反馈的信心。
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Patterns in coarse root decomposition of woody plants: effects of climate, root quality, mycorrhizal associations and phylogeny

  • Coarse roots represent a globally important belowground carbon pool, but the factors controlling coarse root decomposition rates remain poorly understood relative to other plant biomass components. We compiled the most comprehensive dataset of coarse root decomposition data including 148 observations from 60 woody species, and linked coarse root decomposition rates to plant traits, phylogeny and climate to address questions of the dominant controls on coarse root decomposition.
  • We found that decomposition rates increased with mean annual temperature, root nitrogen and phosphorus concentrations. Coarse root decomposition was slower for ectomycorrhizal than arbuscular mycorrhizal associated species, and angiosperm species decomposed faster than gymnosperms. Coarse root decomposition rates and calcium concentrations showed a strong phylogenetic signal.
  • Our findings suggest that categorical traits like mycorrhizal association and phylogenetic group, in conjunction with root quality and climate, collectively serve as the optimal predictors of coarse root decomposition rates.
  • Our findings propose a paradigm of the dominant controls on coarse decomposition, with mycorrhizal association and phylogeny acting as critical roles on coarse root decomposition, necessitating their explicit consideration in Earth-system models and ultimately improving confidence in projected carbon cycle–climate feedbacks.
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来源期刊
New Phytologist
New Phytologist 生物-植物科学
自引率
5.30%
发文量
728
期刊介绍: New Phytologist is an international electronic journal published 24 times a year. It is owned by the New Phytologist Foundation, a non-profit-making charitable organization dedicated to promoting plant science. The journal publishes excellent, novel, rigorous, and timely research and scholarship in plant science and its applications. The articles cover topics in five sections: Physiology & Development, Environment, Interaction, Evolution, and Transformative Plant Biotechnology. These sections encompass intracellular processes, global environmental change, and encourage cross-disciplinary approaches. The journal recognizes the use of techniques from molecular and cell biology, functional genomics, modeling, and system-based approaches in plant science. Abstracting and Indexing Information for New Phytologist includes Academic Search, AgBiotech News & Information, Agroforestry Abstracts, Biochemistry & Biophysics Citation Index, Botanical Pesticides, CAB Abstracts®, Environment Index, Global Health, and Plant Breeding Abstracts, and others.
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