硫酸盐
呼吸
优势(遗传学)
生态系统
环境科学
生物
化学
生态学
生物化学
植物
基因
有机化学
作者
Melody R. Lindsay,Timothy D’Angelo,Jacob Munson-McGee,Alireza Saidi‐Mehrabad,Molly Devlin,Julia M. McGonigle,Elizabeth W. Goodell,Melissa Herring,Laura C. Lubelczyk,Corianna J. Mascena,Julia M. Brown,Greg Gavelis,Jiarui Liu,David J. Yousavich,Scott D. Hamilton-Brehm,Brian P. Hedlund,Susan Q. Lang,Tina Treude,Nicole Poulton,Ramûnas Stepanauskas,Duane P. Moser,David Emerson,Beth N. Orcutt
标识
DOI:10.1073/pnas.2309636121
摘要
Rates of microbial processes are fundamental to understanding the significance of microbial impacts on environmental chemical cycling. However, it is often difficult to quantify rates or to link processes to specific taxa or individual cells, especially in environments where there are few cultured representatives with known physiology. Here, we describe the use of the redox-enzyme-sensitive molecular probe RedoxSensor™ Green to measure rates of anaerobic electron transfer physiology (i.e., sulfate reduction and methanogenesis) in individual cells and link those measurements to genomic sequencing of the same single cells. We used this method to investigate microbial activity in hot, anoxic, low-biomass (~10
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