An evaluation on contribution of organo–metal complexes to enhanced soil CO2 release during drying–rewetting cycles using buried humic horizon soils

Abstract Under global warming, precipitation is becoming less frequent but with more intense events, with little change in total precipitation amounts. These shifts have raised concerns about drying–rewetting cycles (DWCs) and their impact on soil organic matter decomposition and carbon dioxide (CO 2 ) release. Microbially derived carbon (C), such as intracellular compounds released by cell lysis and osmolyte turnover, has been considered a primary C source of DWC-induced CO 2 release. However, C released from organo–metal complexes disrupted by rapid rewetting has emerged as a significant contributor. To evaluate this contribution, we conducted incubation experiments with a single DWC. Here, we used two buried humic layer soils characterized by abundant organo–metal complexes but low microbial biomass, with two surface soils for comparison. In both buried and surface soils, the DWC consistently led to higher CO 2 release rates during incubation compared to the control. The magnitude of the increase in CO 2 release from buried humic layers exceeded the measured decreases in microbial biomass C, which represented ≤ 40% of the increase, while the amount of pyrophosphate-extractable organic C associated with organo–metal complexes was at least 90-fold greater than the DWC-induced increase. A re-analysis including data from this study and our previous study showed that the relative CO 2 release increase at DWC from control was significantly correlated with the amounts of pyrophosphate-extractable aluminum in the soils. We also observed a shift in bacterial communities in the buried soils toward a nutrient acquisition strategy adapted for rapid growth after rewetting, which may have contributed to the enhanced CO 2 release. In the present study, we suggest that organo–metal complexes, traditionally considered a stable C pool, can substantially contribute to DWC-induced CO 2 release from buried humic horizons.

Authors

Institutions

Publication Details

Journal
Progress in Earth and Planetary Science
Published
2026-09-04
DOI
https://doi.org/10.1186/s40645-026-00843-6
Primary Topic
Soil Carbon and Nitrogen Dynamics
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

An evaluation on contribution of organo–metal complexes to enhanced soil CO2 release during drying–rewetting cycles using buried humic horizon soils

Hirofumi Kajino, Rieko Urakawa, Mariko Atarashi-Andoh, Masataka Nakayama et al.
Progress in Earth and Planetary Science
Soil Carbon and Nitrogen Dynamics
article

An evaluation on contribution of organo–metal complexes to enhanced soil CO2 release during drying–rewetting cycles using buried humic horizon soils

Hirofumi Kajino, Rieko Urakawa, Mariko Atarashi-Andoh, Masataka Nakayama, Kazuki Suzuki, Kouki Hikosaka, Jun Koarashi, Hirohiko Nagano, Hiroyuki Sase, Syuntaro Hiradate, Yukiko Abe, Yuri Suzuki
article en

Abstract

Abstract Under global warming, precipitation is becoming less frequent but with more intense events, with little change in total precipitation amounts. These shifts have raised concerns about drying–rewetting cycles (DWCs) and their impact on soil organic matter decomposition and carbon dioxide (CO 2 ) release. Microbially derived carbon (C), such as intracellular compounds released by cell lysis and osmolyte turnover, has been considered a primary C source of DWC-induced CO 2 release. However, C released from organo–metal complexes disrupted by rapid rewetting has emerged as a significant contributor. To evaluate this contribution, we conducted incubation experiments with a single DWC. Here, we used two buried humic layer soils characterized by abundant organo–metal complexes but low microbial biomass, with two surface soils for comparison. In both buried and surface soils, the DWC consistently led to higher CO 2 release rates during incubation compared to the control. The magnitude of the increase in CO 2 release from buried humic layers exceeded the measured decreases in microbial biomass C, which represented ≤ 40% of the increase, while the amount of pyrophosphate-extractable organic C associated with organo–metal complexes was at least 90-fold greater than the DWC-induced increase. A re-analysis including data from this study and our previous study showed that the relative CO 2 release increase at DWC from control was significantly correlated with the amounts of pyrophosphate-extractable aluminum in the soils. We also observed a shift in bacterial communities in the buried soils toward a nutrient acquisition strategy adapted for rapid growth after rewetting, which may have contributed to the enhanced CO 2 release. In the present study, we suggest that organo–metal complexes, traditionally considered a stable C pool, can substantially contribute to DWC-induced CO 2 release from buried humic horizons.

Progress in Earth and Planetary ScienceVol. 13(1)
Japan Atomic Energy Agency (JP), Kyushu University (JP), Okayama University (JP), Tohoku University (JP), Niigata Institute of Technology (JP), Forestry and Forest Products Research Institute (JP), Asia Center for Air Pollution Research (JP), Niigata University (JP)
Japan Society for the Promotion of Science
Life in Land
Openalex Percentile: Top 13%
Soil Carbon and Nitrogen Dynamics
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.