Biogeochemical theory emphasizes nitrogen (N) limitation and the many factors that can restrict N accumulation in temperate forests, yet lacks a working model of conditions that can promote naturally high N accumulation. We used a dynamic simulation model of ecosystem N and δ(15)N to evaluate which combination of N input and loss pathways could produce a range of high ecosystem N contents characteristic of forests in the Oregon Coast Range. Total ecosystem N at nine study sites ranged from 8,788 to 22,667 kg ha(-1) and carbon (C) ranged from 188 to 460 Mg ha(-1), with highest values near the coast. Ecosystem δ(15)N displayed a curvilinear relationship with ecosystem N content, and largely reflected mineral soil, which accounted for 96-98% of total ecosystem N. Model simulations of ecosystem N balances parameterized with field rates of N leaching required long-term average N inputs that exceed atmospheric deposition and asymbiotic and epiphytic N(2)-fixation, and that were consistent with cycles of post-fire N(2)-fixation by early-successional red alder. Soil water δ(15)NO(3)(-) patterns suggested a shift in relative N losses from denitrification to nitrate leaching as N accumulated, and simulations identified nitrate leaching as the primary N loss pathway that constrains maximum N accumulation. Whereas current theory emphasizes constraints on biological N(2)-fixation and disturbance-mediated N losses as factors that limit N accumulation in temperate forests, our results suggest that wildfire can foster substantial long-term N accumulation in ecosystems that are colonized by symbiotic N(2)-fixing vegetation.
Biogeochemical theory emphasizes nitrogen (N) limitation and the many factors that can restrict N accumulation in temperate forests, yet lacks a working model of conditions that can promote naturally high N accumulation. We used a dynamic simulation model of ecosystem N and δ(15)N to evaluate which combination of N input and loss pathways could produce a range of high ecosystem N contents characteristic of forests in the Oregon Coast Range. Total ecosystem N at nine study sites ranged from 8,788 to 22,667 kg ha(-1) and n class="Chemical">carbon (C) ranged from 188 to 460 Mg ha(-1), with highest values near the coast. Ecosystem δ(15)N displayed a curvilinear relationship with ecosystem N content, and largely reflected mineral soil, which accounted for 96-98% of total ecosystem N. Model simulations of ecosystem N balances parameterized with field rates of N leaching required long-term average N inputs that exceed atmospheric deposition and asymbiotic and epiphytic N(2)-fixation, and that were consistent with cycles of post-fire N(2)-fixation by early-successional red alder. Soil water δ(15)NO(3)(-) patterns suggested a shift in relative N losses from denitrification to nitrate leaching as N accumulated, and simulations identified nitrate leaching as the primary N loss pathway that constrains maximum N accumulation. Whereas current theory emphasizes constraints on biological N(2)-fixation and disturbance-mediated N losses as factors that limit N accumulation in temperate forests, our results suggest that wildfire can foster substantial long-term N accumulation in ecosystems that are colonized by symbiotic N(2)-fixing vegetation.
Authors: Duncan N L Menge; W Troy Baisden; Sarah J Richardson; Duane A Peltzer; Margaret M Barbour Journal: New Phytol Date: 2011-01-27 Impact factor: 10.151
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Authors: Peter M Vitousek; Duncan N L Menge; Sasha C Reed; Cory C Cleveland Journal: Philos Trans R Soc Lond B Biol Sci Date: 2013-05-27 Impact factor: 6.237
Authors: Joseph M Craine; Andrew J Elmore; Lixin Wang; Laurent Augusto; W Troy Baisden; E N J Brookshire; Michael D Cramer; Niles J Hasselquist; Erik A Hobbie; Ansgar Kahmen; Keisuke Koba; J Marty Kranabetter; Michelle C Mack; Erika Marin-Spiotta; Jordan R Mayor; Kendra K McLauchlan; Anders Michelsen; Gabriela B Nardoto; Rafael S Oliveira; Steven S Perakis; Pablo L Peri; Carlos A Quesada; Andreas Richter; Louis A Schipper; Bryan A Stevenson; Benjamin L Turner; Ricardo A G Viani; Wolfgang Wanek; Bernd Zeller Journal: Sci Rep Date: 2015-02-06 Impact factor: 4.379