泥炭
碳循环
碳纤维
矿化(土壤科学)
土壤碳
溶解有机碳
环境化学
环境科学
稳定同位素探测
碳同位素
土壤水分
化学
生态系统
土壤科学
生态学
总有机碳
生物
材料科学
细菌
微生物
古生物学
复合数
复合材料
作者
Sumudu Rajakaruna,Ghiwa Makke,Nathalia Graf Grachet,Christian Ayala-Ortiz,John A. Bouranis,David Hoyt,Jason Toyoda,Elizabeth Denis,James Moran,Tianze Song,Xiaoxu Sun,Elizabeth Eder,Allison R. Wong,Rosalie Chu,Heino Heyman,Max Kolton,Jeffrey P. Chanton,Rachel Wilson,Joel E. Kostka,Malak Tfaily
标识
DOI:10.1038/s43247-024-01954-y
摘要
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.
科研通智能强力驱动
Strongly Powered by AbleSci AI