Adding labile carbon to peatland soils triggers deep carbon breakdown

IF 8.1 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES Communications Earth & Environment Pub Date : 2024-12-27 DOI:10.1038/s43247-024-01954-y
Sumudu Rajakaruna, Ghiwa Makke, Nathalia Graf Grachet, Christian Ayala-Ortiz, John Bouranis, David W. Hoyt, Jason Toyoda, Elizabeth H. Denis, James J. Moran, Tianze Song, Xiaoxu Sun, Elizabeth K. Eder, Allison R. Wong, Rosalie Chu, Heino Heyman, Max Kolton, Jeffrey P. Chanton, Rachel M. Wilson, Joel Kostka, Malak M. Tfaily
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Abstract

Peatlands store vast amounts of carbon, with deep peat carbon remaining stable due to limited thermodynamic energy and transport. However, climate change-induced increases in labile carbon inputs could destabilize these stores. Here, we combined DNA stable isotope probing with stable isotope-assisted metabolomics employing a multi-platform approach to investigate microbial dynamics driving deep peat carbon degradation upon labile carbon (e.g., glucose) amendment. Our findings highlight the vulnerability of deep peat carbon, as glucose addition triggers the breakdown of older organic matter. By uniquely integrating these techniques, we identified active glucose metabolizers to specific microbial populations and mapped carbon flow through microbial networks, elucidating their role in priming recalcitrant carbon mineralization. This multi-omics approach offers crucial insights into how changing resources reshape the peatland microbiome, enhancing our understanding of deep carbon processing, and refining model parameterization to predict microbial responses and carbon cycle feedbacks under global change pressures. Glucose addition to peatland soils promotes decomposition of older buried carbon through enhanced microbial activity, according to DNA analysis and isotope labelling of peatland soil.

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向泥炭地土壤中添加活性碳会引发深层碳分解
泥炭地储存了大量的碳,由于有限的热力学能量和运输,深层泥炭碳保持稳定。然而,气候变化引起的不稳定碳输入的增加可能会破坏这些储存。在这里,我们将DNA稳定同位素探测与稳定同位素辅助代谢组学相结合,采用多平台方法研究微生物动力学驱动深层泥炭碳在不稳定碳(如葡萄糖)修正时降解。我们的研究结果强调了深层泥炭碳的脆弱性,因为葡萄糖的添加会触发旧有机物的分解。通过独特地整合这些技术,我们确定了特定微生物种群的活性葡萄糖代谢物,并绘制了微生物网络中的碳流,阐明了它们在启动顽固碳矿化中的作用。这种多组学方法为了解资源变化如何重塑泥炭地微生物群提供了重要见解,增强了我们对深度碳加工的理解,并改进了模型参数化,以预测全球变化压力下的微生物反应和碳循环反馈。根据泥炭地土壤的DNA分析和同位素标记,在泥炭地土壤中添加葡萄糖可以通过增强微生物活性来促进较老的埋藏碳的分解。
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来源期刊
Communications Earth & Environment
Communications Earth & Environment Earth and Planetary Sciences-General Earth and Planetary Sciences
CiteScore
8.60
自引率
2.50%
发文量
269
审稿时长
26 weeks
期刊介绍: Communications Earth & Environment is an open access journal from Nature Portfolio publishing high-quality research, reviews and commentary in all areas of the Earth, environmental and planetary sciences. Research papers published by the journal represent significant advances that bring new insight to a specialized area in Earth science, planetary science or environmental science. Communications Earth & Environment has a 2-year impact factor of 7.9 (2022 Journal Citation Reports®). Articles published in the journal in 2022 were downloaded 1,412,858 times. Median time from submission to the first editorial decision is 8 days.
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