Globally rising soil heterotrophic respiration over recent decades.

Bond-Lamberty, Ben; Bailey, Vanessa L; Chen, Min; Gough, Christopher M; Vargas, Rodrigo · Nature · 2018

basic_science · Level V

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Abstract

Global soils store at least twice as much carbon as Earth's atmosphere<sup>1,2</sup>. The global soil-to-atmosphere (or total soil respiration, R<sub>S</sub>) carbon dioxide (CO<sub>2</sub>) flux is increasing<sup>3,4</sup>, but the degree to which climate change will stimulate carbon losses from soils as a result of heterotrophic respiration (R<sub>H</sub>) remains highly uncertain<sup>5-8</sup>. Here we use an updated global soil respiration database<sup>9</sup> to show that the observed soil surface R<sub>H</sub>:R<sub>S</sub> ratio increased significantly, from 0.54 to 0.63, between 1990 and 2014 (P = 0.009). Three additional lines of evidence provide support for this finding. By analysing two separate global gross primary production datasets<sup>10,11</sup>, we find that the ratios of both R<sub>H</sub> and R<sub>S</sub> to gross primary production have increased over time. Similarly, significant increases in R<sub>H</sub> are observed against the longest available solar-induced chlorophyll fluorescence global dataset, as well as gross primary production computed by an ensemble of global land models. We also show that the ratio of night-time net ecosystem exchange to gross primary production is rising across the FLUXNET2015<sup>12</sup> dataset. All trends are robust to sampling variability in ecosystem type, disturbance, methodology, CO<sub>2</sub> fertilization effects and mean climate. Taken together, our findings provide observational evidence that global R<sub>H</sub> is rising, probably in response to environmental changes, consistent with meta-analyses<sup>13-16</sup> and long-term experiments<sup>17</sup>. This suggests that climate-driven losses of soil carbon are currently occurring across many ecosystems, with a detectable and sustained trend emerging at the global scale.

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