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1.
Sci Total Environ ; 859(Pt 2): 160125, 2023 Feb 10.
Article in English | MEDLINE | ID: mdl-36379337

ABSTRACT

Human introductions have resulted in earthworms establishing in the Arctic, species known to cause cascading ecosystem change. However, few quantitative outdoor experiments have been performed that describe how these soil modifying earthworms are reshaping structures in tundra soils. In this study, we used three-dimensional (3-D) X-ray images of soil cores (approximately 10 cm diameter, 20 cm height, N = 48) to assess how earthworms (Aporrectodea sp. and Lumbricus sp.) affect soil structure and macropore networks in an outdoor mesocosm experiment that lasted four summers. Effects were assessed in both shrub-dominated (heath) and herb-dominated (meadow) tundra. Earthworms almost doubled the macroporosity in meadow soils and tripled macroporosity in heath. Interestingly, the fractal dimension of macropores decreased in response to earthworm burrowing in both systems, indicating that the presence of earthworms reduced the geometric complexity in comparison to other pore-generating processes active in the tundra. Observed effects on soil structure occurred along with a dramatically reduced soil moisture content, which was observed the first winter after earthworm introduction in the meadow. Our findings suggest that predictions of future changes in vegetation and soil carbon pools in the Arctic should include major impacts on soil properties that earthworms induce.


Subject(s)
Oligochaeta , Soil , Animals , Humans , Soil/chemistry , Ecosystem , Tundra , Carbon
3.
Nat Commun ; 10(1): 4103, 2019 Sep 05.
Article in English | MEDLINE | ID: mdl-31488829

ABSTRACT

An amendment to this paper has been published and can be accessed via a link at the top of the paper.

4.
Nat Commun ; 10(1): 3121, 2019 07 16.
Article in English | MEDLINE | ID: mdl-31311923

ABSTRACT

Increasing the potential of soil to store carbon (C) is an acknowledged and emphasized strategy for capturing atmospheric CO2. Well-recognized approaches for soil C accretion include reducing soil disturbance, increasing plant biomass inputs, and enhancing plant diversity. Yet experimental evidence often fails to support anticipated C gains, suggesting that our integrated understanding of soil C accretion remains insufficient. Here we use a unique combination of X-ray micro-tomography and micro-scale enzyme mapping to demonstrate for the first time that plant-stimulated soil pore formation appears to be a major, hitherto unrecognized, determinant of whether new C inputs are stored or lost to the atmosphere. Unlike monocultures, diverse plant communities favor the development of 30-150 µm pores. Such pores are the micro-environments associated with higher enzyme activities, and greater abundance of such pores translates into a greater spatial footprint that microorganisms make on the soil and consequently soil C storage capacity.


Subject(s)
Biomass , Carbon Cycle , Microbiota/physiology , Soil Microbiology , Atmosphere/chemistry , Biodiversity , Carbon/metabolism , Carbon Dioxide/metabolism , Plant Roots , Plants , Soil/chemistry
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