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Mutualist and pathogen traits interact to affect plant community structure in a spatially explicit model 期刊论文
NATURE COMMUNICATIONS, 2020, 11 (1)
作者:  Schroeder, John W.;  Dobson, Andrew;  Mangan, Scott A.;  Petticord, Daniel F.;  Herre, Edward Allen
收藏  |  浏览/下载:9/0  |  提交时间:2020/05/13
Disease hotspots or hot species? Infection dynamics in multi-host metacommunities controlled by species identity, not source location 期刊论文
ECOLOGY LETTERS, 2020, 23 (8) : 1201-1211
作者:  Wilber, Mark Q.;  Johnson, Pieter T. J.;  Briggs, Cheryl J.
收藏  |  浏览/下载:12/0  |  提交时间:2020/05/13
Batrachochytrium dendrobatidis  chytrid fungus  endemic  hotspots  maintenance species  metacommunity  metapopulaton  Pseudacris regilla  reservoir species  source-sink dynamics  
RGF1 controls root meristem size through ROS signalling 期刊论文
NATURE, 2020, 577 (7788) : 85-+
作者:  Yamada, Masashi;  Han, Xinwei;  Benfey, Philip N.
收藏  |  浏览/下载:11/0  |  提交时间:2020/07/03

The stem cell niche and the size of the root meristem in plants are maintained by intercellular interactions and signalling networks involving a peptide hormone, root meristem growth factor 1 (RGF1)(1). Understanding how RGF1 regulates the development of the root meristem is essential for understanding stem cell function. Although five receptors for RGF1 have been identified(2-4), the downstream signalling mechanism remains unknown. Here we report a series of signalling events that follow RGF1 activity. We find that the RGF1-receptor pathway controls the distribution of reactive oxygen species (ROS) along the developmental zones of the Arabidopsis root. We identify a previously uncharacterized transcription factor, RGF1-INDUCIBLE TRANSCRIPTION FACTOR 1 (RITF1), that has a central role in mediating RGF1 signalling. Manipulating RITF1 expression leads to the redistribution of ROS along the root developmental zones. Changes in ROS distribution in turn enhance the stability of the PLETHORA2 protein, a master regulator of root stem cells. Our results thus clearly depict a signalling cascade that is initiated by RGF1, linking this peptide to mechanisms that regulate ROS.


  
Lineage dynamics of the endosymbiotic cell type in the soft coralXenia 期刊论文
NATURE, 2020
作者:  Lewnard, Joseph A.;  Lo, Nathan C.;  Arinaminpathy, Nimalan;  Frost, Isabel;  Laxminarayan, Ramanan
收藏  |  浏览/下载:14/0  |  提交时间:2020/07/03

Many corals harbour symbiotic dinoflagellate algae. The algae live inside coral cells in a specialized membrane compartment known as the symbiosome, which shares the photosynthetically fixed carbon with coral host cells while host cells provide inorganic carbon to the algae for photosynthesis(1). This endosymbiosis-which is critical for the maintenance of coral reef ecosystems-is increasingly threatened by environmental stressors that lead to coral bleaching (that is, the disruption of endosymbiosis), which in turn leads to coral death and the degradation of marine ecosystems(2). The molecular pathways that orchestrate the recognition, uptake and maintenance of algae in coral cells remain poorly understood. Here we report the chromosome-level genome assembly of aXeniaspecies of fast-growing soft coral(3), and use this species as a model to investigate coral-alga endosymbiosis. Single-cell RNA sequencing identified 16 cell clusters, including gastrodermal cells and cnidocytes, inXeniasp. We identified the endosymbiotic cell type, which expresses a distinct set of genes that are implicated in the recognition, phagocytosis and/or endocytosis, and maintenance of algae, as well as in the immune modulation of host coral cells. By couplingXeniasp. regeneration and single-cell RNA sequencing, we observed a dynamic lineage progression of the endosymbiotic cells. The conserved genes associated with endosymbiosis that are reported here may help to reveal common principles by which different corals take up or lose their endosymbionts.


  
Intuitive and broadly applicable definitions of niche and fitness differences 期刊论文
ECOLOGY LETTERS, 2020, 23 (7) : 1117-1128
作者:  Spaak, Jurg W.;  De Laender, Frederik
收藏  |  浏览/下载:6/0  |  提交时间:2020/05/13
Coexistence  competition  fitness differences  multispecies  mutualism  niche differences  
Winter in water: differential responses and the maintenance of biodiversity 期刊论文
ECOLOGY LETTERS, 2020, 23 (6) : 922-938
作者:  McMeans, Bailey C.;  McCann, Kevin S.;  Guzzo, Matthew M.;  Bartley, Timothy J.;  Bieg, Carling;  Blanchfield, Paul J.;  Fernandes, Timothy;  Giacomini, Henrique C.;  Middel, Trevor;  Rennie, Michael D.;  Ridgway, Mark S.;  Shuter, Brian J.
收藏  |  浏览/下载:10/0  |  提交时间:2020/05/13
Behaviour  biotic interactions  coexistence  environmental variation  fish  freshwater  ice-cover  lake  physiology  season  
Seed size predicts global effects of small mammal seed predation on plant recruitment 期刊论文
ECOLOGY LETTERS, 2020, 23 (6) : 1024-1033
作者:  Dylewski, Lukasz;  Ortega, Yvette K.;  Bogdziewicz, Michal;  Pearson, Dean E.
收藏  |  浏览/下载:11/0  |  提交时间:2020/05/13
Biotic resistance  community assembly theory  enemy release  functional traits  invasive plant  life-history trade-off  meta-analysis  plant recruitment  seed predation  seed size  
Diversity and coexistence are influenced by time-dependent species interactions in a predator-prey system 期刊论文
ECOLOGY LETTERS, 2020, 23 (6) : 983-993
作者:  Karakoc, Canan;  Clark, Adam Thomas;  Chatzinotas, Antonis
收藏  |  浏览/下载:11/0  |  提交时间:2020/05/13
Causality  diversity  EDMhelper  empirical dynamic modelling  predator-prey interactions  stability  
Reciprocity and behavioral heterogeneity govern the stability of social networks 期刊论文
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (6) : 2993-2999
作者:  Dakin, Roslyn;  Ryder, T. Brandt
收藏  |  浏览/下载:14/0  |  提交时间:2020/05/13
social networks  dynamic networks  behavioral ecology  cooperation  personality  
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.