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Institución detectada Período Navegá Descargá Solicitá
No detectada desde mar. 1997 / hasta dic. 2023 Science Journals

Información

Tipo de recurso:

revistas

ISSN impreso

0036-8075

ISSN electrónico

1095-9203

Editor responsable

American Association for the Advancement of Science (AAAS)

País de edición

Estados Unidos

Fecha de publicación

Cobertura temática

Tabla de contenidos

Warming trend

Palabras clave: Multidisciplinary.

Pp. 729b-0

Westward flow

Palabras clave: Multidisciplinary.

Pp. 729c-0

Clusters within water

Palabras clave: Multidisciplinary.

Pp. 729d-0

Tagged for ready recovery

Palabras clave: Multidisciplinary.

Pp. 729e-0

Recharging volcanoes

Palabras clave: Multidisciplinary.

Pp. 729f-0

Joining the resistance

Palabras clave: Multidisciplinary.

Pp. 729g-0

Visual searching

Palabras clave: Multidisciplinary.

Pp. 729h-0

Neuron protection

Palabras clave: Multidisciplinary.

Pp. 729i-0

NASA's New Science Vision

Eric J. Chaisson

Palabras clave: Multidisciplinary.

Pp. 735-735

Atmospheric Nitrogen Deposition

Bruce A. Hungate; Thomas E. Jordan; Robert B. Jackson; Bert G. Drake

<jats:p> David A. Wedin and David Tilman (Reports, 6 Dec., <jats:related-article xmlns:xlink="http://www.w3.org/1999/xlink" page="1720" related-article-type="in-this-issue" vol="275" xlink:type="simple">p 1720</jats:related-article> ) show that increased nitrogen inputs to terrestrial ecosystems might cause smaller increases in the capacity of those ecosystems to store carbon than expected. Their findings are important because nitrogen inputs have increased dramatically over the past decades through fertilizer production, cultivation of nitrogen-fixing legumes, and production of oxides of nitrogen associated with fossil-fuel burning ( <jats:xref ref-type="bibr">1</jats:xref> ). However, the simultaneous increase in atmospheric carbon dioxide (CO <jats:sub>2</jats:sub> ) concentrations caused by burning fossil fuels is likely to at least partially counteract the processes that limited carbon storage in Wedin and Tilman's experiment. CO <jats:sub>2</jats:sub> enrichment generally increases the amount of carbon fixed by plants per unit of nitrogen taken up from the soil, particularly in carbon-3 (C <jats:sup>3</jats:sup> ) species ( <jats:xref ref-type="bibr">2</jats:xref> ) such as those that invaded their nitrogen-enriched plots. Compared with the C <jats:sup>4</jats:sup> species that thrived before nitrogen was added, the invading C <jats:sup>3</jats:sup> species have relatively lower C-to-N ratios, limiting the amount of carbon stored in response to nitrogen input. However, with elevated CO <jats:sub>2</jats:sub> tending to increase the C-to-N ratio of these C <jats:sup>3</jats:sup> plants, N and CO <jats:sub>2</jats:sub> enrichment in concert would likely cause greater C storage than observed by Wedin and Tilman. </jats:p> <jats:p> Rising atmospheric CO <jats:sub>2</jats:sub> may also increase N inputs to terrestrial ecosystems, amplifying the direct human impact on the N cycle. CO <jats:sub>2</jats:sub> enrichment often increases the growth of plants housing N-fixing bacteria in their roots, and this stimulation is relatively larger than non-N-fixing plants ( <jats:xref ref-type="bibr">3</jats:xref> ). Thus, in addition to the direct anthropogenic stimulation of N inputs to terrestrial ecosystems through agriculture and fossil-fuel burning ( <jats:xref ref-type="bibr">1</jats:xref> ), humans may indirectly increase N inputs to terrestrial ecosystms by increasing atmospheric CO2 concentrations. The interaction between CO2 and N enrichment, as well as shifts in plant species, will likely influence future C storage by the terrestrial biosphere </jats:p>

Palabras clave: Multidisciplinary.

Pp. 737-741