Impacts of Spartina alterniflora invasion on soil carbon components of particulate and mineral-associated organic matter and soil organic matter mineralization in estuarine wetlands

IF 5 2区 农林科学 Q1 SOIL SCIENCE Applied Soil Ecology Pub Date : 2025-02-01 Epub Date: 2024-12-30 DOI:10.1016/j.apsoil.2024.105857
Lin Wang , Yuan Li , Jie Hei , Weiqi Wang , Jordi Sardans , Zhihao Zhang , Fanjiang Zeng , Maoquan Ge , Yiyang Liao , Yunying Fang , Tony Vancov , Jiawei Gan , Zhaoliang Song , Weidong Zhang , Josep Peñuelas
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Abstract

Estuarine wetlands are critical global carbon sinks, significantly influencing the climate through carbon cycling. The invasive plant Spartina alterniflora has earned attention for its effects on these processes in wetland ecosystems. This study examines the impact of S. alterniflora on soil carbon dynamics in the Minjiang River estuarine wetland, Fujian Province, by comparing soil organic carbon (SOC) components in particulate organic matter (POM) and mineral-associated organic matter (MAOM) between S. alterniflora and native Cyperus malaccensis stands. We also investigated soil carbon dioxide (CO2) emissions and organic carbon mineralization to assess how plant invasion alters carbon cycling in wetland soils. The invasion of S. alterniflora increased dissolved organic carbon (DOC), microbial biomass carbon (MBC), and labile organic carbon (LOC) in MAOM while reducing these carbon components in POM. LOC and MBC contents in MAOM were 15 % and 32 % higher, respectively, in S. alterniflora wetlands compared to C. malaccensis wetlands. This suggests that S. alterniflora shifts the composition and stability of SOC, making MAOM a more significant carbon pool. The invasion also led to higher CO2 emissions and greater temperature sensitivity. Additionally, S. alterniflora soils exhibited a negative priming effect upon glucose addition, likely due to the strong association between active organic carbon and minerals in MAOM, which protects organic matter from decomposition. These results highlight the intricate impacts of plant invasion on soil carbon cycling and offer insights for predicting carbon dynamics in estuarine wetlands.

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互花米草入侵对河口湿地土壤颗粒与矿物有机质碳组分及土壤有机质矿化的影响
河口湿地是全球重要的碳汇,通过碳循环对气候产生重要影响。入侵植物互花米草对湿地生态系统这些过程的影响引起了人们的关注。通过对闽江河口湿地互花草与马来塞柏(Cyperus malaccensis)林分土壤有机碳(SOC)组分的颗粒有机质(POM)和矿物伴生有机质(MAOM)进行比较,探讨互花草对土壤碳动态的影响。我们还研究了土壤二氧化碳(CO2)排放和有机碳矿化,以评估植物入侵如何改变湿地土壤的碳循环。互花草的入侵增加了MAOM中的溶解有机碳(DOC)、微生物生物量碳(MBC)和活性有机碳(LOC),降低了POM中的这些碳组分。互花草湿地MAOM中LOC和MBC含量分别比马六甲草湿地高15%和32%。这表明互花草改变了土壤有机碳的组成和稳定性,使MAOM成为一个更重要的碳库。入侵还导致了更高的二氧化碳排放量和更高的温度敏感性。此外,互花草土壤对葡萄糖添加表现出负启动效应,这可能是由于MAOM中活性有机碳和矿物质之间的强烈关联,从而保护有机物免于分解。这些结果强调了植物入侵对土壤碳循环的复杂影响,并为预测河口湿地的碳动态提供了见解。
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来源期刊
Applied Soil Ecology
Applied Soil Ecology 农林科学-土壤科学
CiteScore
9.70
自引率
4.20%
发文量
363
审稿时长
5.3 months
期刊介绍: Applied Soil Ecology addresses the role of soil organisms and their interactions in relation to: sustainability and productivity, nutrient cycling and other soil processes, the maintenance of soil functions, the impact of human activities on soil ecosystems and bio(techno)logical control of soil-inhabiting pests, diseases and weeds.
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