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1.
Nat Ecol Evol ; 7(7): 1002-1011, 2023 07.
Article in English | MEDLINE | ID: mdl-37169879

ABSTRACT

Soils support an immense portion of Earth's biodiversity and maintain multiple ecosystem functions which are essential for human well-being. Environmental thresholds are known to govern global vegetation patterns, but it is still unknown whether they can be used to predict the distribution of soil organisms and functions across global biomes. Using a global field survey of 383 sites across contrasting climatic and vegetation conditions, here we showed that soil biodiversity and functions exhibited pervasive nonlinear patterns worldwide and are mainly governed by water availability (precipitation and potential evapotranspiration). Changes in water availability resulted in drastic shifts in soil biodiversity (bacteria, fungi, protists and invertebrates) and soil functions including plant-microbe interactions, plant productivity, soil biogeochemical cycles and soil carbon sequestration. Our findings highlight that crossing specific water availability thresholds can have critical consequences for the provision of essential ecosystem services needed to sustain our planet.


Subject(s)
Ecosystem , Soil , Animals , Humans , Soil/chemistry , Water , Biodiversity , Invertebrates
2.
Microbiome ; 10(1): 219, 2022 Dec 12.
Article in English | MEDLINE | ID: mdl-36503688

ABSTRACT

BACKGROUND: Little is known about the global distribution and environmental drivers of key microbial functional traits such as antibiotic resistance genes (ARGs). Soils are one of Earth's largest reservoirs of ARGs, which are integral for soil microbial competition, and have potential implications for plant and human health. Yet, their diversity and global patterns remain poorly described. Here, we analyzed 285 ARGs in soils from 1012 sites across all continents and created the first global atlas with the distributions of topsoil ARGs. RESULTS: We show that ARGs peaked in high latitude cold and boreal forests. Climatic seasonality and mobile genetic elements, associated with the transmission of antibiotic resistance, were also key drivers of their global distribution. Dominant ARGs were mainly related to multidrug resistance genes and efflux pump machineries. We further pinpointed the global hotspots of the diversity and proportions of soil ARGs. CONCLUSIONS: Together, our work provides the foundation for a better understanding of the ecology and global distribution of the environmental soil antibiotic resistome. Video Abstract.


Subject(s)
Anti-Bacterial Agents , Soil , Humans , Anti-Bacterial Agents/pharmacology , Ecology , Phenotype
3.
J Ecol ; 110(9): 2074-2087, 2022 Sep.
Article in English | MEDLINE | ID: mdl-36250131

ABSTRACT

Ongoing global warming and alterations in rainfall patterns driven by climate change are known to have large impacts on biogeochemical cycles, particularly on drylands. In addition, the global increase in atmospheric nitrogen (N) deposition can destabilize primary productivity in terrestrial ecosystems, and phosphorus (P) may become the most limiting nutrient in many terrestrial ecosystems. However, the impacts of climate change on soil P pools in drylands remain poorly understood. Furthermore, it is unknown whether biocrusts, a major biotic component of drylands worldwide, modulate such impacts.Here we used two long-term (8-10 years) experiments conducted in Central (Aranjuez) and SE (Sorbas) Spain to test how a ~2.5°C warming, a ~30% rainfall reduction and biocrust cover affected topsoil (0-1 cm) P pools (non-occluded P, organic P, calcium bound P, occluded P and total P).Warming significantly increased most P pools-except occluded P-in Aranjuez, whereas only augmented non-occluded P in Sorbas. The rainfall reduction treatment had no effect on the soil P pools at any experimental site. Biocrusts increased most soil P pools and conferred resistance to simulated warming for major P pools at both sites, and to rainfall reduction for non-occluded and occluded P in Aranjuez. Synthesis. Our findings provide novel insights on the responses of soil P pools to warming and rainfall reduction, and highlight the importance of biocrusts as modulators of these responses in dryland ecosystems. Our results suggest that the observed negative impacts of warming on dryland biocrust communities will decrease their capacity to buffer changes in topsoil P driven by climate change.


Tanto el calentamiento global en curso como las alteraciones en los patrones de precipitaciones provocados por el cambio climático tienen grandes impactos en los ciclos biogeoquímicos, particularmente en los ecosistemas áridos y semiáridos. Además, el aumento global de la deposición de nitrógeno (N) atmosférico puede desestabilizar la productividad primaria en los ecosistemas terrestres, y el fósforo (P) puede convertirse en el nutriente más limitante en muchos de estos ecosistemas. Sin embargo, los impactos del cambio climático en las reservas de P del suelo en los ecosistemas áridos y semiáridos siguen sin comprenderse totalmente. Además, se desconoce si la costra biológica del suelo, un componente biótico importante de los ecosistemas áridos y semiáridos en todo el mundo, modulan tales impactos.Utilizamos dos experimentos a largo plazo (8­10 años) ubicados en el centro (Aranjuez) y el sureste (Sorbas) de España para probar cómo el calentamiento de ~2,5°C, la reducción de las precipitaciones de ~30 % y la cobertura de costra biológica afectaron los pools de P (P no ocluido, P orgánico, P ligado al calcio, P ocluido y P total) de la capa superior del suelo (0­1 cm).El calentamiento aumentó significativamente la mayoría de los pools de P ­excepto el P ocluido­ en Aranjuez, mientras que solo aumentó el P no ocluido en Sorbas. El tratamiento de reducción de las precipitaciones no tuvo efecto en los pools de P del suelo en ningún sitio experimental. La costra biológica aumentó la mayoría de los depósitos de P del suelo y confirieron resistencia al calentamiento simulado para los principales pools de P en ambos sitios, y a la reducción de las precipitaciones para el P no ocluido y ocluido en Aranjuez. Síntesis. Nuestros hallazgos brindan información novedosa sobre las respuestas de los pools de P del suelo al calentamiento y la reducción de las precipitaciones, y resaltan la importancia de la costra biológica como moduladora de estas respuestas en los ecosistemas áridos y semiáridos. Nuestros resultados sugieren que los impactos negativos observados del calentamiento en las comunidades de costra biológica de los ecosistemas áridos y semiáridos disminuirán su capacidad para amortiguar los cambios en el P del suelo provocados por el cambio climático.

4.
Nat Commun ; 11(1): 4721, 2020 09 18.
Article in English | MEDLINE | ID: mdl-32948775

ABSTRACT

The importance of soil age as an ecosystem driver across biomes remains largely unresolved. By combining a cross-biome global field survey, including data for 32 soil, plant, and microbial properties in 16 soil chronosequences, with a global meta-analysis, we show that soil age is a significant ecosystem driver, but only accounts for a relatively small proportion of the cross-biome variation in multiple ecosystem properties. Parent material, climate, vegetation and topography predict, collectively, 24 times more variation in ecosystem properties than soil age alone. Soil age is an important local-scale ecosystem driver; however, environmental context, rather than soil age, determines the rates and trajectories of ecosystem development in structure and function across biomes. Our work provides insights into the natural history of terrestrial ecosystems. We propose that, regardless of soil age, changes in the environmental context, such as those associated with global climatic and land-use changes, will have important long-term impacts on the structure and function of terrestrial ecosystems across biomes.


Subject(s)
Biota , Ecosystem , Soil/chemistry , Bacteria/classification , Biodiversity , Biomass , Climate , Fungi/classification , Microbiota , Plants/classification , Time Factors
5.
Nat Ecol Evol ; 4(2): 210-220, 2020 02.
Article in English | MEDLINE | ID: mdl-32015427

ABSTRACT

The role of soil biodiversity in regulating multiple ecosystem functions is poorly understood, limiting our ability to predict how soil biodiversity loss might affect human wellbeing and ecosystem sustainability. Here, combining a global observational study with an experimental microcosm study, we provide evidence that soil biodiversity (bacteria, fungi, protists and invertebrates) is significantly and positively associated with multiple ecosystem functions. These functions include nutrient cycling, decomposition, plant production, and reduced potential for pathogenicity and belowground biological warfare. Our findings also reveal the context dependency of such relationships and the importance of the connectedness, biodiversity and nature of the globally distributed dominant phylotypes within the soil network in maintaining multiple functions. Moreover, our results suggest that the positive association between plant diversity and multifunctionality across biomes is indirectly driven by soil biodiversity. Together, our results provide insights into the importance of soil biodiversity for maintaining soil functionality locally and across biomes, as well as providing strong support for the inclusion of soil biodiversity in conservation and management programmes.


Subject(s)
Ecosystem , Soil , Biodiversity , Fungi , Humans , Soil Microbiology
6.
Mol Ecol ; 29(4): 752-761, 2020 02.
Article in English | MEDLINE | ID: mdl-31697860

ABSTRACT

Unlike plants and vertebrates, the ecological preferences, and potential vulnerabilities of soil invertebrates to environmental change, remain poorly understood in terrestrial ecosystems globally. We conducted a cross-biome survey including 83 locations across six continents to advance our understanding of the ecological preferences and vulnerabilities of the diversity of dominant and functionally important soil invertebrate taxa, including nematodes, arachnids and rotifers. The diversity of invertebrates was analyzed through amplicon sequencing. Vegetation and climate drove the diversity and dominant taxa of soil invertebrates. Our results suggest that declines in forest cover and plant diversity, and reductions in plant production associated with increases in aridity, can result in reductions of the diversity of soil invertebrates in a drier and more managed world. We further developed global atlases of the diversity of these important soil invertebrates, which were cross-validated using an independent database. Our study advances the current knowledge of the ecological preferences and vulnerabilities of the diversity and presence of functionally important soil invertebrates in soils from across the globe. This information is fundamental for improving and prioritizing conservation efforts of soil genetic resources and management policies.


Subject(s)
Arachnida/genetics , Invertebrates/genetics , Nematoda/genetics , Rotifera/genetics , Animals , Ecosystem , Forests , Soil
7.
Nat Commun ; 10(1): 3481, 2019 08 02.
Article in English | MEDLINE | ID: mdl-31375717

ABSTRACT

Identifying the global drivers of soil priming is essential to understanding C cycling in terrestrial ecosystems. We conducted a survey of soils across 86 globally-distributed locations, spanning a wide range of climates, biotic communities, and soil conditions, and evaluated the apparent soil priming effect using 13C-glucose labeling. Here we show that the magnitude of the positive apparent priming effect (increase in CO2 release through accelerated microbial biomass turnover) was negatively associated with SOC content and microbial respiration rates. Our statistical modeling suggests that apparent priming effects tend to be negative in more mesic sites associated with higher SOC contents. In contrast, a single-input of labile C causes positive apparent priming effects in more arid locations with low SOC contents. Our results provide solid evidence that SOC content plays a critical role in regulating apparent priming effects, with important implications for the improvement of C cycling models under global change scenarios.

8.
Proc Natl Acad Sci U S A ; 116(14): 6891-6896, 2019 04 02.
Article in English | MEDLINE | ID: mdl-30877251

ABSTRACT

Belowground organisms play critical roles in maintaining multiple ecosystem processes, including plant productivity, decomposition, and nutrient cycling. Despite their importance, however, we have a limited understanding of how and why belowground biodiversity (bacteria, fungi, protists, and invertebrates) may change as soils develop over centuries to millennia (pedogenesis). Moreover, it is unclear whether belowground biodiversity changes during pedogenesis are similar to the patterns observed for aboveground plant diversity. Here we evaluated the roles of resource availability, nutrient stoichiometry, and soil abiotic factors in driving belowground biodiversity across 16 soil chronosequences (from centuries to millennia) spanning a wide range of globally distributed ecosystem types. Changes in belowground biodiversity during pedogenesis followed two main patterns. In lower-productivity ecosystems (i.e., drier and colder), increases in belowground biodiversity tracked increases in plant cover. In more productive ecosystems (i.e., wetter and warmer), increased acidification during pedogenesis was associated with declines in belowground biodiversity. Changes in the diversity of bacteria, fungi, protists, and invertebrates with pedogenesis were strongly and positively correlated worldwide, highlighting that belowground biodiversity shares similar ecological drivers as soils and ecosystems develop. In general, temporal changes in aboveground plant diversity and belowground biodiversity were not correlated, challenging the common perception that belowground biodiversity should follow similar patterns to those of plant diversity during ecosystem development. Taken together, our findings provide evidence that ecological patterns in belowground biodiversity are predictable across major globally distributed ecosystem types and suggest that shifts in plant cover and soil acidification during ecosystem development are associated with changes in belowground biodiversity over centuries to millennia.


Subject(s)
Biodiversity , Models, Biological
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