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更多样化的根瘤菌群落可以导致更高的共生固氮速率,即使在富氮土壤中也是如此。

More diverse rhizobial communities can lead to higher symbiotic nitrogen fixation rates, even in nitrogen-rich soils.

机构信息

Organismic and Evolutionary Biology Department, Harvard University, 26 Oxford Street, Cambridge, MA 02138, USA.

The Arnold Arboretum of Harvard University, 1300 Centre Street Roslindale, Boston, MA 02131, USA.

出版信息

Proc Biol Sci. 2024 Aug;291(2027):20240765. doi: 10.1098/rspb.2024.0765. Epub 2024 Jul 24.

Abstract

Symbiotic nitrogen (N) fixation (SNF) by legumes and their rhizobial partners is one of the most important sources of bioavailable N to terrestrial ecosystems. While most work on the regulation of SNF has focussed on abiotic drivers such as light, water and soil nutrients, the diversity of rhizobia with which individual legume partners may play an important but under-recognized role in regulating N inputs from SNF. By experimentally manipulating the diversity of rhizobia available to legumes, we demonstrate that rhizobial diversity can increase average SNF rates by more than 90%, and that high rhizobial diversity can induce increased SNF even under conditions of high soil N fertilization. However, the effects of rhizobial diversity, the conditions under which diversity effects were the strongest, and the likely mechanisms driving these diversity effects differed between the two legume species we assessed. These results provide evidence that biodiversity-ecosystem function relationships can occur at the scales of an individual plant and that the effects of rhizobial diversity may be as important as long-established abiotic factors, such as N availability, in driving terrestrial N inputs via SNF.

摘要

共生固氮(SNF)是豆科植物与其根瘤菌伙伴将大气中的氮转化为植物可利用氮的重要过程之一,是陆地生态系统中生物可利用氮的最重要来源之一。虽然大多数关于 SNF 调控的研究都集中在非生物驱动因素上,如光照、水和土壤养分,但个别豆科植物的根瘤菌多样性可能在调节 SNF 中氮素输入方面起着重要但尚未被充分认识的作用。通过实验操纵豆科植物可获得的根瘤菌多样性,我们证明根瘤菌多样性可以使平均 SNF 速率提高 90%以上,并且在高土壤氮施肥条件下,高根瘤菌多样性也可以诱导 SNF 增加。然而,根瘤菌多样性的影响、多样性效应最强的条件以及驱动这些多样性效应的可能机制在我们评估的两种豆科植物之间存在差异。这些结果提供了证据,表明生物多样性-生态系统功能关系可以在单个植物的尺度上发生,并且根瘤菌多样性的影响可能与氮可用性等长期确立的非生物因素一样重要,通过 SNF 驱动陆地氮素输入。

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