植物生态学报 ›› 2026, Vol. 50 ›› Issue (预发表): 0-.DOI: 10.17521/cjpe.2025.0198

• •    下一篇

原位增温对亚热带森林土壤有机碳分解激发效应的影响

袁原, 蒋晓君, 杨少博, 王清奎, 田鹏   

  1. 安徽农业大学林学与园林学院林木资源培育安徽省重点实验室, 安徽 230036 中国
    中国科学院沈阳应用生态研究所中国科学院森林生态与管理重点实验室,湖南会同森林生态实验站, 辽宁 110016 中国
  • 收稿日期:2025-06-04 修回日期:2026-04-29 接受日期:2026-04-17 出版日期:2026-07-28 发布日期:2026-08-26
  • 基金资助:
    国家自然科学基金(32471832); 国家重点研发计划项目(2023YFF1304404); 安徽省高校优秀青年科研项目(2024AH030018)

Effect of in-situ warming on the priming effect of soil organic carbon decomposition in a subtropical forest

YUAN Yuan, Jiang Xiaojun, YANG ShaoBo, WANG QingKui, TIAN Peng   

  1. Anhui Provincial Key Laboratory of Forest Resources and Silviculture, Anhui Agricultural University 230036, China
    Key Laboratory of Forest Ecology and Management, Chinese Academy of Sciences, Huitong Forest Ecosystem Research Station, Hunan Alternative versions, Institute of Applied Ecology, Chinese Academy of Sciences 110016, China
  • Received:2025-06-04 Revised:2026-04-29 Accepted:2026-04-17 Online:2026-07-28 Published:2026-08-26
  • Supported by:
    the National Natural Science Foundation of China(32471832); the National Key Research and Development Project(2023YFF1304404); The Provincial Education Department Research Project-Excellent Young Scientists(2024AH030018)

摘要: 激发效应是陆地生态系统中普遍存在的现象, 但在气候变化背景下其对增温的响应仍存在极大不确定性。现有的激发效应研究大多是基于室内培养的方法, 无法真实地评估野外环境温度升高所引起的变化。基于此, 该实验依托位于亚热带森林的原位土壤增温样地, 利用人造仿根装置添加13C标记的葡萄糖溶液以模拟根系活性碳输入, 探究其所诱导的激发效应及土壤净碳平衡对增温的响应。实验共设置4种处理: 1)环境温度+去离子水(CT-CK); 2)环境温度+葡萄糖溶液(CT-Glu); 3)增温+去离子水(W-CK); 4)增温+葡萄糖溶液(W-Glu)。结果显示增温和葡萄糖添加均对CO2通量产生显著影响, 其中葡萄糖添加增大了CO2总通量, 而增温抑制了CO2的通量。在2023年5–10月, CT-Glu处理的葡萄糖累积矿化量为9.51 g CO2-C·kg–1 SOC (SOC, 土壤有机碳), 增温处理抑制了葡萄糖矿化, 降至5.41 g CO2-C·kg–1 SOC。增温处理下, 激发效应也同样受到了显著抑制, CT-Glu处理的累积激发效应为12.31 g CO2-C·kg–1 SOC, 而W-Glu处理的累积激发效应为6.54 g CO2-C·kg–1 SOC。本研究中增温显著增强了土壤中微生物的碳限制, 是导致葡萄糖源累积矿化量和激发效应的降低的主要原因。此外, 增温处理显著提升了土壤的净碳平衡, CT-Glu处理的土壤净碳平衡为–1.81 g CO2-C·kg–1 SOC, 而W-Glu处理的净碳平衡为8.05 g CO2-C·kg–1 SOC。该研究的结果真实量化了原位增温对土壤有机碳分解激发效应的影响, 有利于更好的理解陆地生态系统土壤碳循环过程, 降低地球系统模型在预测碳动态时的不确定性。

关键词: 原位增温, 土壤有机碳, 激发效应, 净碳平衡, 亚热带森林

Abstract: Aims The priming effect (PE) is a common phenomenon in terrestrial ecosystems, but its response to warming remains highly uncertain in the context of climate change. Most existing studies on the PE are based on laboratory incubation methods, which cannot accurately assess the changes induced by temperature increases in natural field environments. Methods In this study, based on an in-situ soil warming experiment located in a subtropical forest, 13C labeled glucose was added using an artificial root imitation device to simulate labile carbon input from root, to explore the responses of PE and the soil net carbon balance to warming. Four treatments were set up in the experiment: 1) ambient temperature + deionized water (CT-CK); 2) ambient temperature + glucose solution (CT-Glu); 3) warming temperature + deionized water (W-CK); 4) warming temperature + glucose solution (W-Glu). Important findings The results showed that both warming and glucose addition had a significant impact on the CO2 flux, with glucose addition increasing the total CO2 flux, while warming inhibited it. From May to October 2023, the cumulative Glu-derived CO2 in the CT-Glu treatment was 9.51 g CO2-C·kg–1 SOC (SOC, soil organic carbon), and this amount was reduced by warming to 5.41 g CO2-C·kg–1 SOC. Similarly, warming significantly suppressed the PE. The cumulative PE of the CT-Glu treatment was 12.31 g CO2-C·kg–1 SOC, while that of the W-Glu treatment was 6.54 g CO2-C·kg–1 SOC. In this study, warming significantly intensified microbial carbon limitation in the soil, which was the primary reason for the reduction in cumulative Glu-derived CO2 and the priming effect. In addition, warming significantly increased the soil net carbon balance. Specifically, the soil net carbon balance of the CT-Glu treatment was –1.81 g CO2-C·kg–1 SOC, while that of the W-Glu treatment was 8.05 g CO2-C·kg–1 SOC. Our findings quantified the impact of in-situ warming on the PE of SOC decomposition, which is beneficial for better understanding soil carbon cycling processes in terrestrial ecosystems and for reducing uncertainties in Earth system models that predict carbon dynamics.

Key words: in-situ warming, soil organic carbon, priming effect, Net carbon balance, subtropical forest