Priming Effects on Soil Organic Matter Mineralization by Carbon Substrates: A Global Meta‐Analysis

IF 12.5 1区 环境科学与生态学 Q1 BIODIVERSITY CONSERVATION
Hongxin Dong, Yingyi Fu, Shanshan Dai, Peng He, Yu Luo, Margaret A. Oliver, William R. Horwath, Lu‐Jun Li
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Abstract

Priming effects (PE) on soil organic matter (SOM) mineralization depend strongly on the type of carbon substrates added. It is crucial to understand the PE induced by various carbon substrates for predicting SOM dynamics and soil‐atmosphere carbon feedback. We conducted a meta‐analysis of 8015 observations from 283 articles to evaluate how carbon substrates (plant residues, root exudates, biochar, and degradable microplastics) regulate the mineralization of SOM through PE. Results demonstrated that all these types of carbon substrates increased SOM mineralization, which induced a positive PE. Plant residues induced the highest average PE, followed by root exudates, biochar, and degradable microplastics. Compared to soils without carbon substrate inputs, the rate of SOM mineralization increased by 113% in soil with cellulose‐rich non‐woody residues, whereas it increased by only 25% in soil with lignin‐rich woody residues. The mineralization of SOM increased by organic acids (151%) was greatest in root exudates, followed by monosaccharides (60%) and polysaccharides (12%). The strong mineralization induced by organic acids was probably related to the release of more mineral nutrients by reducing soil pH. The PE on SOM mineralization by woody biochar with high aromatic carbon content (48%) was greater than that of non‐woody biochar with high alkyl carbon content (43%). Microplastics with rapidly degradable polyhydroxyalkanoates induced more SOM mineralization (258%) than polybutylene succinate (61%) and polybutylene adipate‐co‐terephthalate (21%). The SOM priming was positively correlated with soil clay and incubation moisture, and negatively correlated with soil organic carbon, total nitrogen, soil C:N ratio, dissolved organic carbon, microbial biomass carbon, carbon input rate, incubation temperature, and soil depth. These results show that the positive PE is ubiquitous in soil ecosystems; its magnitude is linked intrinsically to the physicochemical characteristics and source of exogenous carbon substrate.
碳基质对土壤有机质矿化的启动效应:一项全球Meta分析
土壤有机质矿化的启动效应与添加碳基质的类型密切相关。了解不同碳基质诱导的PE对于预测土壤有机质动态和土壤-大气碳反馈至关重要。我们对283篇文章中的8015个观察结果进行了荟萃分析,以评估碳基质(植物残留物、根分泌物、生物炭和可降解微塑料)如何通过PE调节SOM的矿化。结果表明,所有类型的碳基质都增加了SOM矿化,导致PE阳性。植物残留物的平均PE最高,其次是根系分泌物、生物炭和可降解微塑料。与没有碳基质输入的土壤相比,富含纤维素的非木质残渣土壤的SOM矿化率增加了113%,而富含木质素的木质残渣土壤的SOM矿化率仅增加了25%。有机酸对根分泌物中SOM矿化的促进作用最大(151%),其次是单糖(60%)和多糖(12%)。有机酸诱导的强矿化可能与降低土壤ph释放更多矿质养分有关。芳烃碳含量高(48%)的木质生物炭对SOM矿化的PE大于烷基碳含量高(43%)的非木质生物炭。含有可快速降解聚羟基烷酸酯的微塑料诱导的SOM矿化(258%)高于丁二酸聚丁烯(61%)和己二酸聚丁烯-对苯二甲酸酯(21%)。土壤有机质与土壤黏度、培养含水量呈正相关,与土壤有机碳、全氮、土壤C:N比、溶解有机碳、微生物量碳、碳输入速率、培养温度、土壤深度呈负相关。结果表明,正PE在土壤生态系统中普遍存在;其大小与外源碳底物的物理化学特性和来源有着内在的联系。
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来源期刊
Global Change Biology
Global Change Biology 环境科学-环境科学
CiteScore
21.50
自引率
5.20%
发文量
497
审稿时长
3.3 months
期刊介绍: Global Change Biology is an environmental change journal committed to shaping the future and addressing the world's most pressing challenges, including sustainability, climate change, environmental protection, food and water safety, and global health. Dedicated to fostering a profound understanding of the impacts of global change on biological systems and offering innovative solutions, the journal publishes a diverse range of content, including primary research articles, technical advances, research reviews, reports, opinions, perspectives, commentaries, and letters. Starting with the 2024 volume, Global Change Biology will transition to an online-only format, enhancing accessibility and contributing to the evolution of scholarly communication.
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