Harnessing Microbes to Weather Native Silicates in Agricultural Soils for Scalable Carbon Dioxide Removal

IF 10.8 1区 环境科学与生态学 Q1 BIODIVERSITY CONSERVATION
Tania Timmermann, Christopher Yip, Yun-Ya Yang, Kimberly A. Wemmer, Anupam Chowdhury, Daniel Dores, Taichi Takayama, Sharon Nademanee, Bjorn A. Traag, Kazem Zamanian, Bernardo González, Daniel O. Breecker, Noah Fierer, Eric W. Slessarev, Gonzalo A. Fuenzalida-Meriz
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Abstract

Anthropogenic carbon emissions contribute significantly to the greenhouse effect, resulting in global warming and climate change. Thus, addressing this critical issue requires innovative and comprehensive solutions. Silicate weathering moderates atmospheric CO2 levels over geological time, but it occurs too slowly to counteract anthropogenic emissions effectively. Here, we show that the microorganism Bacillus subtilis strain MP1 promotes silicate weathering across different experimental setups with various levels of complexity. First, we found that MP1 was able to form a robust biofilm in the presence of feldspar and significantly increased (p < 0.05) silicate dissolution rates, pH, and calcium carbonate formation in culture experiments. Second, in mesocosm experiments, we found that MP1 enhanced the silicate weathering rate in soil by more than six times compared to the untreated control. In addition, soil inorganic carbon increased by 20%, and the concentrations of ions, including calcium, magnesium, and iron, were also elevated under the MP1 treatment. More importantly, when applied as a seed treatment on eight soybean fields, we found that MP1 significantly (p < 0.05) boosted soil inorganic carbon, leading to a gross accrual of 2.02 tonnes of inorganic carbon per hectare annually. Our findings highlight the potential of enhancing native silicate weathering with microorganisms in agricultural fields to increase soil inorganic carbon, contributing to climate change mitigation.

Abstract Image

利用微生物对农业土壤中的天然硅酸盐进行可扩展的二氧化碳去除
人为碳排放是温室效应的重要组成部分,导致全球变暖和气候变化。因此,解决这一关键问题需要创新和全面的解决办法。在地质时期,硅酸盐风化作用减缓了大气中的二氧化碳水平,但它发生得太慢,无法有效地抵消人为排放。在这里,我们展示了微生物枯草芽孢杆菌菌株MP1在不同复杂程度的不同实验设置中促进硅酸盐风化。首先,我们发现MP1能够在长石存在的情况下形成坚固的生物膜,并在培养实验中显著增加(p < 0.05)硅酸盐溶解速率、pH和碳酸钙形成。其次,在中观实验中,我们发现与未经处理的对照相比,MP1使土壤中的硅酸盐风化速率提高了6倍以上。此外,MP1处理土壤无机碳增加了20%,钙、镁、铁等离子浓度也有所提高。更重要的是,当将MP1作为种子处理应用于8个大豆田时,我们发现MP1显著(p < 0.05)提高了土壤无机碳,导致每公顷每年总无机碳增加2.02吨。我们的研究结果强调了利用农业领域的微生物增强天然硅酸盐风化的潜力,以增加土壤无机碳,从而有助于减缓气候变化。
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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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