Soybeans Grown with Carbonaceous Nanomaterials Maintain Nitrogen Stoichiometry by Assimilating Soil Nitrogen to Offset Impaired Dinitrogen Fixation.
basic_science · Level V
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- Record sourced from PubMed, PMID 31825596.
- Also identified by DOI 10.1021/acsnano.9b06970.
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Abstract
Engineered nanomaterials (ENMs) can enter agroecosystems because of their widespread use and disposal. Within soil, ENMs may affect legumes and their dinitrogen (N<sub>2</sub>) fixation, which are critical for food supply and N-cycling. Prior research focusing on end point treatment effects has reported that N<sub>2</sub>-fixing symbioses in an important food legume, soybean, can be impaired by ENMs. Yet, it remains unknown how ENMs can influence the actual amounts of N<sub>2</sub> fixed and what plant total N contents are since plants can also acquire N from the soil. We determined the effects of one already widespread and two rapidly expanding carbonaceous nanomaterials (CNMs: carbon black, multiwalled carbon nanotubes, and graphene; each at three concentrations) on the N economy of soil-grown soybeans. Unlike previous studies, this research focused on processes and interactions within a plant-soil-microbial system. We found that total plant N accumulation was unaffected by CNMs. However, as shown by <sup>15</sup>N isotope analyses, CNMs significantly diminished soybean N<sub>2</sub> fixation (by 31-78%). Plants maintained N stoichiometry by assimilating compensatory N from the soil, accompanied by increased net soil N mineralization. Our findings suggest that CNMs could undermine the role of legume N<sub>2</sub> fixation in supplying N to agroecosystems. Maintaining productivity in leguminous agriculture experiencing such effects would require more fossil-fuel-intensive N fertilizer and increase associated economic and environmental costs. This work highlights the value of a process-based analysis of a plant-soil-microbial system for assessing how ENMs in soil can affect legume N<sub>2</sub> fixation and N-cycling.
Medical subject headings
- Graphite
- Nanostructures
- Nanotubes, Carbon
- Nitrogen
- Soot
- Glycine max