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A Meta-analysis of Mycorrhizal Responses to Nitrogen, Phosphorus, and Atmospheric CO in Field Studies

Overview
Journal New Phytol
Specialty Biology
Date 2021 Apr 20
PMID 33873547
Citations 122
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Abstract

•  Numerous field studies have measured mycorrhizal dynamics under additions of nitrogen (N), phosphorus (P), or atmospheric CO to test the hypothesis that plants should invest in mycorrhizal fungi when soil nutrients are limiting. •  Here meta-analyses were used to integrate nutrient responses across independent field-based studies. Responses were compared between ecto- and arbuscular mycorrhizal fungi, and among fertilizer types, methods of measurement, biomes, and lead investigators. Relationships between degree of response and study length, fertilization rates, total amounts of nutrients applied, and numbers of replicates were also tested. •  Across studies, mycorrhizal abundance decreased 15% under N fertilization and 32% under P fertilization. Elevated CO elicited a 47% increase. Nitrogen effects varied significantly among studies, and P effects varied significantly among lead investigators. Most other factors did not affect mycorrhizal responses. •  These results support the plant investment hypothesis, and suggest that global standing stocks of mycorrhizal fungi may increase substantially under elevated CO but decline moderately under P additions. Effects of N deposition may be difficult to predict for individual ecosystems, with a slightly negative influence overall.

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References
1.
Oren R, Ellsworth D, Johnsen K, Phillips N, Ewers B, Maier C . Soil fertility limits carbon sequestration by forest ecosystems in a CO2-enriched atmosphere. Nature. 2001; 411(6836):469-72. DOI: 10.1038/35078064. View

2.
Rogers H, Runion G, Krupa S . Plant responses to atmospheric CO2 enrichment with emphasis on roots and the rhizosphere. Environ Pollut. 1994; 83(1-2):155-89. DOI: 10.1016/0269-7491(94)90034-5. View

3.
Schlesinger W, Lichter J . Limited carbon storage in soil and litter of experimental forest plots under increased atmospheric CO2. Nature. 2001; 411(6836):466-9. DOI: 10.1038/35078060. View