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High Temporal Resolution Satellite Observations of Fire Radiative Power Reveal Link Between Fire Behavior and Aerosol and Gas Emissions 期刊论文
Geophysical Research Letters, 2020
作者:  Elizabeth B. Wiggins;  Amber J. Soja;  Emily Gargulinski;  Hannah S. Halliday;  R. Bradley Pierce;  Christopher C. Schmidt;  John B. Nowak;  Joshua P. DiGangi;  Glenn S. Diskin;  Joseph M. Katich;  Anne E. Perring;  Joshua P. Schwarz;  Bruce E. Anderson;  Gao Chen;  Ewan C. Crosbie;  Carolyn Jordan;  Claire E. Robinson;  Kevin J. Sanchez;  Taylor J. Shingler;  Michael Shook;  Kenneth L. Thornhill;  Edward L. Winstead;  Luke D. Ziemba;  Richard H. Moore
收藏  |  浏览/下载:10/0  |  提交时间:2020/11/30
Seeing through the static: the temporal dimension of plant–animal mutualistic interactions 期刊论文
Ecology Letters, 2020
作者:  Paul J. CaraDonna;  Laura A. Burkle;  Benjamin Schwarz;  Julian Resasco;  Tiffany M. Knight;  Gita Benadi;  Nico Blü;  thgen;  Carsten F. Dormann;  Qiang Fang;  Jochen Frü;  nd;  Benoit Gauzens;  Christopher N. Kaiser‐;  Bunbury;  Rachael Winfree;  Diego P. Vá;  zquez
收藏  |  浏览/下载:11/0  |  提交时间:2020/10/26
Global Measurements of Brown Carbon and Estimated Direct Radiative Effects 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (13)
作者:  Zeng, Linghan;  Zhang, Aoxing;  Wang, Yuhang;  Wagner, Nicholas L.;  Katich, Joseph M.;  Schwarz, Joshua P.;  Schill, Gregory P.;  Brock, Charles;  Froyd, Karl D.;  Murphy, Daniel M.;  Williamson, Christina J.;  Kupc, Agnieszka;  Scheuer, Eric;  Dibb, Jack;  Weber, Rodney J.
收藏  |  浏览/下载:14/0  |  提交时间:2020/06/22
aerosol  light absorption  brown carbon  radiation forcing  black carbon  biomass burning  
Bacterial coexistence driven by motility and spatial competition 期刊论文
NATURE, 2020, 578 (7796) : 588-+
作者:  Micke, P.;  Leopold, T.;  King, S. A.;  Benkler, E.;  Spiess, L. J.;  Schmoeger, L.;  Schwarz, M.;  Crespo Lopez-Urrutia, J. R.;  Schmidt, P. O.
收藏  |  浏览/下载:8/0  |  提交时间:2020/07/03

Elucidating elementary mechanisms that underlie bacterial diversity is central to ecology(1,2) and microbiome research(3). Bacteria are known to coexist by metabolic specialization(4), cooperation(5) and cyclic warfare(6-8). Many species are also motile(9), which is studied in terms of mechanism(10,11), benefit(12,13), strategy(14,15), evolution(16,17) and ecology(18,19). Indeed, bacteria often compete for nutrient patches that become available periodically or by random disturbances(2,20,21). However, the role of bacterial motility in coexistence remains unexplored experimentally. Here we show that-for mixed bacterial populations that colonize nutrient patches-either population outcompetes the other when low in relative abundance. This inversion of the competitive hierarchy is caused by active segregation and spatial exclusion within the patch: a small fast-moving population can outcompete a large fast-growing population by impeding its migration into the patch, while a small fast-growing population can outcompete a large fast-moving population by expelling it from the initial contact area. The resulting spatial segregation is lost for weak growth-migration trade-offs and a lack of virgin space, but is robust to population ratio, density and chemotactic ability, and is observed in both laboratory and wild strains. These findings show that motility differences and their trade-offs with growth are sufficient to promote diversity, and suggest previously undescribed roles for motility in niche formation and collective expulsion-containment strategies beyond individual search and survival.


In mixed bacterial populations that colonize nutrient patches, a growth-migration trade-off can lead to spatial exclusion that provides an advantage to populations that become rare, thereby stabilizing the community.