Stimulation of soil respiration by elevated CO<sub>2</sub> is enhanced under nitrogen limitation in a decade-long grassland study.

Gao, Qun; Wang, Gangsheng; Xue, Kai; Yang, Yunfeng; Xie, Jianping; Yu, Hao; Bai, Shijie; Liu, Feifei et al. · Proc Natl Acad Sci U S A · 2020

basic_science · Level V

Where this comes from

Abstract

Whether and how CO<sub>2</sub> and nitrogen (N) availability interact to influence carbon (C) cycling processes such as soil respiration remains a question of considerable uncertainty in projecting future C-climate feedbacks, which are strongly influenced by multiple global change drivers, including elevated atmospheric CO<sub>2</sub> concentrations (eCO<sub>2</sub>) and increased N deposition. However, because decades of research on the responses of ecosystems to eCO<sub>2</sub> and N enrichment have been done largely independently, their interactive effects on soil respiratory CO<sub>2</sub> efflux remain unresolved. Here, we show that in a multifactor free-air CO<sub>2</sub> enrichment experiment, BioCON (Biodiversity, CO<sub>2</sub>, and N deposition) in Minnesota, the positive response of soil respiration to eCO<sub>2</sub> gradually strengthened at ambient (low) N supply but not enriched (high) N supply for the 12-y experimental period from 1998 to 2009. In contrast to earlier years, eCO<sub>2</sub> stimulated soil respiration twice as much at low than at high N supply from 2006 to 2009. In parallel, microbial C degradation genes were significantly boosted by eCO<sub>2</sub> at low but not high N supply. Incorporating those functional genes into a coupled C-N ecosystem model reduced model parameter uncertainty and improved the projections of the effects of different CO<sub>2</sub> and N levels on soil respiration. If our observed results generalize to other ecosystems, they imply widely positive effects of eCO<sub>2</sub> on soil respiration even in infertile systems.

Medical subject headings