Mutualism Mediates Legume Response to Microbial Climate Legacies

IF 2.3 2区 生物学 Q2 ECOLOGY
Julia A. Boyle, Bridget Murphy, Fangming Teng, Parsa Babaei Zadeh, Ingo Ensminger, John R. Stinchcombe, Megan E. Frederickson
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Abstract

Climate change is altering both soil microbial communities and the ecological context of plant–microbe interactions. Heat, drought, and their legacies can alter soil microbiomes and potential plant symbionts, but the direct consequences of these microbial changes on plant performance and plant investment in symbiosis remain underexplored. Predicting how soil microbes modulate plant resilience to heat and drought is critical to mitigating the negative effects of climate change on ecosystems and agriculture. In this proof of concept study, we conducted growth chamber experiments to isolate the microbially mediated indirect effects of heat and drought on plant performance and symbiosis. In the first experiment, focused on drought, we found that drought and drought-treated microbes, along with their interaction, significantly decreased the biomass of Medicago lupulina plants compared to well-watered microbiomes and conditions. In a second experiment, we then tested how the addition of a well-known microbial mutualist, Sinorhizobium meliloti, affected heat- and drought-treated microbiomes' impact on M. lupulina. We found that drought-adapted microbiomes negatively impacted legume performance by increasing mortality and reducing branch number, but that adding rhizobia erased differences in plant responses to climate-treated soils. In contrast, heat-adapted microbiomes did not differ significantly from control microbiomes in their effects on a legume. Our results suggest microbial legacy effects, mutualist partners, and their interactions are important in mediating plant responses to drought, with some mutualists equalizing plant responses across microbial legacies.

Abstract Image

共生机制介导豆科植物对微生物气候遗产的响应
气候变化正在改变土壤微生物群落和植物-微生物相互作用的生态环境。高温、干旱及其遗留问题可以改变土壤微生物群和潜在的植物共生体,但这些微生物变化对植物性能和植物在共生中的投资的直接影响仍未得到充分探讨。预测土壤微生物如何调节植物对高温和干旱的适应能力对于减轻气候变化对生态系统和农业的负面影响至关重要。在这项概念验证研究中,我们进行了生长室实验,以分离微生物介导的高温和干旱对植物生产性能和共生的间接影响。在第一个以干旱为重点的实验中,我们发现,与水分充足的微生物群和条件相比,干旱和干旱处理的微生物群及其相互作用显著降低了紫花苜蓿植物的生物量。在第二个实验中,我们测试了添加一种著名的微生物共生菌,Sinorhizobium meliloti,如何影响高温和干旱处理过的微生物组对M. lupina的影响。我们发现适应干旱的微生物组通过增加死亡率和减少分枝数对豆科植物的性能产生负面影响,但添加根瘤菌消除了植物对气候处理土壤的响应差异。相比之下,热适应微生物组对豆科植物的影响与对照微生物组没有显著差异。我们的研究结果表明,微生物遗产效应、互惠互利伙伴及其相互作用在介导植物对干旱的反应中很重要,一些互惠互利平衡了植物对微生物遗产的反应。
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来源期刊
CiteScore
4.40
自引率
3.80%
发文量
1027
审稿时长
3-6 weeks
期刊介绍: Ecology and Evolution is the peer reviewed journal for rapid dissemination of research in all areas of ecology, evolution and conservation science. The journal gives priority to quality research reports, theoretical or empirical, that develop our understanding of organisms and their diversity, interactions between them, and the natural environment. Ecology and Evolution gives prompt and equal consideration to papers reporting theoretical, experimental, applied and descriptive work in terrestrial and aquatic environments. The journal will consider submissions across taxa in areas including but not limited to micro and macro ecological and evolutionary processes, characteristics of and interactions between individuals, populations, communities and the environment, physiological responses to environmental change, population genetics and phylogenetics, relatedness and kin selection, life histories, systematics and taxonomy, conservation genetics, extinction, speciation, adaption, behaviour, biodiversity, species abundance, macroecology, population and ecosystem dynamics, and conservation policy.
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