Soil nematode abundances drive agroecosystem multifunctionality under short-term elevated CO2 and O3

IF 12 1区 环境科学与生态学 Q1 BIODIVERSITY CONSERVATION
Jianqing Wang, Xiuzhen Shi, Manuel Esteban Lucas-Borja, Qiling Guo, Jiaoyan Mao, Yunyan Tan, Guoyou Zhang
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引用次数: 7

Abstract

The response of soil biotas to climate change has the potential to regulate multiple ecosystem functions. However, it is still challenging to accurately predict how multiple climate change factors will affect multiple ecosystem functions. Here, we assessed the short-term responses of agroecosystem multifunctionality to a factorial combination of elevated CO2 (+200 ppm) and O3 (+40 ppb) and identified the key soil biotas (i.e., bacteria, fungi, protists, and nematodes) concerning the changes in the multiple ecosystem functions for two rice varieties (Japonica, Nanjing 5055 vs. Wuyujing 3). We provided strong evidence that combined treatment rather than individual treatments of short-term elevated CO2 and O3 significantly increased the agroecosystem multifunctionality index by 32.3% in the Wuyujing 3 variety, but not in the Nanjing 5055 variety. Soil biotas exhibited an important role in regulating multifunctionality under short-term elevated CO2 and O3, with soil nematode abundances better explaining the changes in ecosystem multifunctionality than soil biota diversity. Furthermore, the higher trophic groups of nematodes, omnivores-predators served as the principal predictor of agroecosystem multifunctionality. These results provide unprecedented new evidence that short-term elevated CO2 and O3 can potentially affect agroecosystem multifunctionality through soil nematode abundances, especially omnivores-predators. Our study demonstrates that high trophic groups were specifically beneficial for regulating multiple ecosystem functions and highlights the importance of soil nematode communities for the maintenance of agroecosystem functions and health under climate change in the future.

Abstract Image

短期CO2和O3升高下土壤线虫丰度驱动农业生态系统多功能性
土壤生物对气候变化的响应具有调节多种生态系统功能的潜力。然而,准确预测多种气候变化因子对多种生态系统功能的影响仍是一个挑战。在此,我们评估了农业生态系统多功能对CO2 (+200 ppm)和O3 (+40 ppb)升高的因子组合的短期响应,并确定了与两个水稻品种(粳稻、黄稻、黄稻、黄稻和黄稻)多种生态系统功能变化有关的关键土壤生物(即细菌、真菌、原生生物和线虫)。我们提供了强有力的证据表明,短期升高CO2和O3的联合处理比单独处理显著提高了农业生态系统多功能性指数,在武玉粳3号品种中提高了32.3%,而在南京5055品种中没有。短期CO2和O3升高条件下,土壤生物群在多功能性调节中发挥重要作用,土壤线虫丰度比土壤生物群多样性更能解释生态系统多功能性的变化。此外,高营养类群线虫,杂食-捕食者是农业生态系统多功能性的主要预测因子。这些结果提供了前所未有的新证据,表明短期升高的CO2和O3可能通过土壤线虫丰度,特别是杂食性捕食者,影响农业生态系统的多功能性。我们的研究表明,高营养类群对调节多种生态系统功能特别有益,并强调了土壤线虫群落在未来气候变化下维持农业生态系统功能和健康的重要性。
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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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