Legume Rotations and Conservation Tillage in Synergy: Yield Gains, Carbon Sequestration, and Climate Resilience.

IF 6.9 1区 生物学 Q1 PLANT SCIENCES
Wen-Xuan Liu, Zhuo-Jun Lin, Hong-Xuan Duan, Zhuo Shi, Yash Pal Dang, Xin Zhao, Hai-Lin Zhang
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引用次数: 0

Abstract

Leguminous crop rotation (LC) and conservation tillage (CT) are nature-based solutions to mitigate climate change. Previous studies have shown significant variations in crop productivity and soil organic carbon (SOC) under LC and CT, largely influenced by site-specific conditions. However, the mechanisms driving the interactions between LC and CT to enhance compatibility across diverse environmental conditions remain unclear. This study conducted a meta-analysis combined with machine learning, using a high-resolution global database of 271 site experiments to evaluate the impact of LC, CT, and their interaction on crop yield and SOC, clarify the underlying mechanisms, and assess their global potential. Results indicated synergistic effects of LC and CT led to additional increases of up to 13.4% in yield and 8.6% in SOC. These benefits were more pronounced in warm-humid regions, with low initial soil fertility, fine soil texture, and low nitrogen (N) input. Among key factors influencing these interactive effects, N input and the initial soil carbon to nitrogen (C/N) ratio emerged as the top two determinants for crop yield and SOC changes. Globally, integrating LC and CT in farmlands could potentially increase crop production and SOC stock by 16.9% and 7.6%, respectively. Looking ahead, these practices could enhance crop production by up to 400 Tg (24.6%) and SOC stock by 8.4 Pg (10.0%), helping to address climate change under various future scenarios. These results highlight that optimising N input and the initial soil C/N ratio through LC-CT integration achieves a win-win scenario of increased crop yield and enhanced SOC sequestration, with significant potential under future climate conditions. This study provides a scientific basis for developing targeted farmland management strategies tailored to diverse environmental conditions worldwide.

豆科作物轮作和保护性耕作的协同作用:产量增加、碳封存和气候适应能力。
豆科作物轮作(LC)和保护性耕作(CT)是缓解气候变化的基于自然的解决方案。以往的研究表明,在LC和CT条件下,作物生产力和土壤有机碳(SOC)存在显著差异,这在很大程度上受场地特定条件的影响。然而,驱动LC和CT之间相互作用以增强不同环境条件下的兼容性的机制尚不清楚。本研究采用荟萃分析和机器学习相结合的方法,利用271个试验点的高分辨率全球数据库来评估LC、CT及其相互作用对作物产量和有机碳的影响,阐明其潜在机制,并评估其全球潜力。结果表明,LC和CT的协同效应可使产量增加13.4%,土壤有机碳增加8.6%。这些好处在温湿地区更为明显,这些地区土壤初始肥力低,土壤质地细,氮输入少。在影响这些交互效应的关键因素中,氮输入和土壤初始碳氮比是作物产量和有机碳变化的前两个决定因素。在全球范围内,在农田中整合LC和CT可能会使作物产量和有机碳储量分别增加16.9%和7.6%。展望未来,这些做法可以使作物产量提高400 Tg(24.6%),有机碳储量提高8.4 Pg(10.0%),有助于应对未来各种情景下的气候变化。这些结果表明,通过LC-CT整合优化N输入和初始土壤C/N比可以实现作物增产和有机碳固存的双赢,在未来气候条件下具有巨大的潜力。本研究为制定适合全球不同环境条件的针对性农田管理策略提供了科学依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant, Cell & Environment
Plant, Cell & Environment 生物-植物科学
CiteScore
13.30
自引率
4.10%
发文量
253
审稿时长
1.8 months
期刊介绍: Plant, Cell & Environment is a premier plant science journal, offering valuable insights into plant responses to their environment. Committed to publishing high-quality theoretical and experimental research, the journal covers a broad spectrum of factors, spanning from molecular to community levels. Researchers exploring various aspects of plant biology, physiology, and ecology contribute to the journal's comprehensive understanding of plant-environment interactions.
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