Cooperative Institute for Research in Environmental Sciences, University of Colorado, Boulder, Colorado, USA
Cooperative Institute for Research in Environmental Sciences, University of Colorado, Boulder, Colorado, USA.
mBio. 2020 Jan 21;11(1):e02776-19. doi: 10.1128/mBio.02776-19.
Few studies have comprehensively investigated the temporal variability in soil microbial communities despite widespread recognition that the belowground environment is dynamic. In part, this stems from the challenges associated with the high degree of spatial heterogeneity in soil microbial communities and because the presence of relic DNA (DNA from dead cells or secreted extracellular DNA) may dampen temporal signals. Here, we disentangle the relationships among spatial, temporal, and relic DNA effects on prokaryotic and fungal communities in soils collected from contrasting hillslopes in Colorado, USA. We intensively sampled plots on each hillslope over 6 months to discriminate between temporal variability, intraplot spatial heterogeneity, and relic DNA effects on the soil prokaryotic and fungal communities. We show that the intraplot spatial variability in microbial community composition was strong and independent of relic DNA effects and that these spatial patterns persisted throughout the study. When controlling for intraplot spatial variability, we identified significant temporal variability in both plots over the 6-month study. These microbial communities were more dissimilar over time after relic DNA was removed, suggesting that relic DNA hinders the detection of important temporal dynamics in belowground microbial communities. We identified microbial taxa that exhibited shared temporal responses and show that these responses were often predictable from temporal changes in soil conditions. Our findings highlight approaches that can be used to better characterize temporal shifts in soil microbial communities, information that is critical for predicting the environmental preferences of individual soil microbial taxa and identifying linkages between soil microbial community composition and belowground processes. Nearly all microbial communities are dynamic in time. Understanding how temporal dynamics in microbial community structure affect soil biogeochemistry and fertility are key to being able to predict the responses of the soil microbiome to environmental perturbations. Here, we explain the effects of soil spatial structure and relic DNA on the determination of microbial community fluctuations over time. We found that intensive spatial sampling was required to identify temporal effects in microbial communities because of the high degree of spatial heterogeneity in soil and that DNA from nonliving sources masks important temporal patterns. We identified groups of microbes with shared temporal responses and show that these patterns were predictable from changes in soil characteristics. These results provide insight into the environmental preferences and temporal relationships between individual microbial taxa and highlight the importance of considering relic DNA when trying to detect temporal dynamics in belowground communities.
尽管人们普遍认识到地下环境是动态的,但很少有研究全面调查土壤微生物群落的时间可变性。部分原因是由于土壤微生物群落的空间异质性程度很高,以及由于存在遗迹 DNA(来自死细胞或分泌的细胞外 DNA 的 DNA)可能会抑制时间信号。在这里,我们在美国科罗拉多州具有对比性的山坡上采集的土壤中,分别研究了空间、时间和遗迹 DNA 对原核生物和真菌群落的关系。我们在每个山坡上的样地进行了密集采样,以区分时间可变性、样地内空间异质性和遗迹 DNA 对土壤原核生物和真菌群落的影响。结果表明,微生物群落组成的样地内空间变异性很强,且独立于遗迹 DNA 效应,并且这些空间模式在整个研究过程中都保持不变。在控制样地内空间变异性的情况下,我们发现两个样地在 6 个月的研究中均存在显著的时间可变性。在去除遗迹 DNA 后,微生物群落随时间的变化更为不同,这表明遗迹 DNA 阻碍了地下微生物群落中重要时间动态的检测。我们确定了表现出共享时间响应的微生物分类群,并表明这些响应通常可以从土壤条件的时间变化中预测。我们的研究结果突出了可用于更好地描述土壤微生物群落时间变化的方法,这些信息对于预测单个土壤微生物分类群的环境偏好以及确定土壤微生物群落组成与地下过程之间的联系至关重要。几乎所有的微生物群落都是随时间动态变化的。了解微生物群落结构的时间动态如何影响土壤生物地球化学和肥力是能够预测土壤微生物组对环境干扰的响应的关键。在这里,我们解释了土壤空间结构和遗迹 DNA 对随时间变化的微生物群落波动的确定的影响。我们发现,由于土壤的高度空间异质性,需要进行密集的空间采样才能确定微生物群落的时间效应,并且非生物来源的 DNA 掩盖了重要的时间模式。我们确定了具有共享时间响应的微生物群,并表明这些模式可以从土壤特征的变化中预测。这些结果提供了对单个微生物分类群的环境偏好和时间关系的深入了解,并强调了在试图检测地下群落的时间动态时考虑遗迹 DNA 的重要性。