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Extreme Water Vapor Transport during the March 2021 Sydney Floods in the Context of Climate Projections 期刊论文
Geophysical Research Letters, 2021
作者:  Kimberley J. Reid;  Travis A. O’;  Brien;  Andrew D. King;  Todd P. Lane
收藏  |  浏览/下载:8/0  |  提交时间:2021/11/15
Approaching the motional ground state of a 10-kg object 期刊论文
Science, 2021
作者:  Chris Whittle;  Evan D. Hall;  Sheila Dwyer;  Nergis Mavalvala;  Vivishek Sudhir;  R. Abbott;  A. Ananyeva;  C. Austin;  L. Barsotti;  J. Betzwieser;  C. D. Blair;  A. F. Brooks;  D. D. Brown;  A. Buikema;  C. Cahillane;  J. C. Driggers;  A. Effler;  A. Fernandez-Galiana;  P. Fritschel;  V. V. Frolov;  T. Hardwick;  M. Kasprzack;  K. Kawabe;  N. Kijbunchoo;  J. S. Kissel;  G. L. Mansell;  F. Matichard;  L. McCuller;  T. McRae;  A. Mullavey;  A. Pele;  R. M. S. Schofield;  D. Sigg;  M. Tse;  G. Vajente;  D. C. Vander-Hyde;  Hang Yu;  Haocun Yu;  C. Adams;  R. X. Adhikari;  S. Appert;  K. Arai;  J. S. Areeda;  Y. Asali;  S. M. Aston;  A. M. Baer;  M. Ball;  S. W. Ballmer;  S. Banagiri;  D. Barker;  J. Bartlett;  B. K. Berger;  D. Bhattacharjee;  G. Billingsley;  S. Biscans;  R. M. Blair;  N. Bode;  P. Booker;  R. Bork;  A. Bramley;  K. C. Cannon;  X. Chen;  A. A. Ciobanu;  F. Clara;  C. M. Compton;  S. J. Cooper;  K. R. Corley;  S. T. Countryman;  P. B. Covas;  D. C. Coyne;  L. E. H. Datrier;  D. Davis;  C. Di Fronzo;  K. L. Dooley;  P. Dupej;  T. Etzel;  M. Evans;  T. M. Evans;  J. Feicht;  P. Fulda;  M. Fyffe;  J. A. Giaime;  K. D. Giardina;  P. Godwin;  E. Goetz;  S. Gras;  C. Gray;  R. Gray;  A. C. Green;  E. K. Gustafson;  R. Gustafson;  J. Hanks;  J. Hanson;  R. K. Hasskew;  M. C. Heintze;  A. F. Helmling-Cornell;  N. A. Holland;  J. D. Jones;  S. Kandhasamy;  S. Karki;  P. J. King;  Rahul Kumar;  M. Landry;  B. B. Lane;  B. Lantz;  M. Laxen;  Y. K. Lecoeuche;  J. Leviton;  J. Liu;  M. Lormand;  A. P. Lundgren;  R. Macas;  M. MacInnis;  D. M. Macleod;  S. Márka;  Z. Márka;  D. V. Martynov;  K. Mason;  T. J. Massinger;  R. McCarthy;  D. E. McClelland;  S. McCormick;  J. McIver;  G. Mendell;  K. Merfeld;  E. L. Merilh;  F. Meylahn;  T. Mistry;  R. Mittleman;  G. Moreno;  C. M. Mow-Lowry;  S. Mozzon;  T. J. N. Nelson;  P. Nguyen;  L. K. Nuttall;  J. Oberling;  Richard J. Oram;  C. Osthelder;  D. J. Ottaway;  H. Overmier;  J. R. Palamos;  W. Parker;  E. Payne;  R. Penhorwood;  C. J. Perez;  M. Pirello;  H. Radkins;  K. E. Ramirez;  J. W. Richardson;  K. Riles;  N. A. Robertson;  J. G. Rollins;  C. L. Romel;  J. H. Romie;  M. P. Ross;  K. Ryan;  T. Sadecki;  E. J. Sanchez;  L. E. Sanchez;  T. R. Saravanan;  R. L. Savage;  D. Schaetz;  R. Schnabel;  E. Schwartz;  D. Sellers;  T. Shaffer;  B. J. J. Slagmolen;  J. R. Smith;  S. Soni;  B. Sorazu;  A. P. Spencer;  K. A. Strain;  L. Sun;  M. J. Szczepańczyk;  M. Thomas;  P. Thomas;  K. A. Thorne;  K. Toland;  C. I. Torrie;  G. Traylor;  A. L. Urban;  G. Valdes;  P. J. Veitch;  K. Venkateswara;  G. Venugopalan;  A. D. Viets;  T. Vo;  C. Vorvick;  M. Wade;  R. L. Ward;  J. Warner;  B. Weaver;  R. Weiss;  B. Willke;  C. C. Wipf;  L. Xiao;  H. Yamamoto;  L. Zhang;  M. E. Zucker;  J. Zweizig
收藏  |  浏览/下载:16/0  |  提交时间:2021/06/24
Designed proteins assemble antibodies into modular nanocages 期刊论文
Science, 2021
作者:  Robby Divine;  Ha V. Dang;  George Ueda;  Jorge A. Fallas;  Ivan Vulovic;  William Sheffler;  Shally Saini;  Yan Ting Zhao;  Infencia Xavier Raj;  Peter A. Morawski;  Madeleine F. Jennewein;  Leah J. Homad;  Yu-Hsin Wan;  Marti R. Tooley;  Franziska Seeger;  Ali Etemadi;  Mitchell L. Fahning;  James Lazarovits;  Alex Roederer;  Alexandra C. Walls;  Lance Stewart;  Mohammadali Mazloomi;  Neil P. King;  Daniel J. Campbell;  Andrew T. McGuire;  Leonidas Stamatatos;  Hannele Ruohola-Baker;  Julie Mathieu;  David Veesler;  David Baker
收藏  |  浏览/下载:14/0  |  提交时间:2021/04/06
Uphold the nuclear weapons test moratorium 期刊论文
Science, 2020
作者:  Jonathan King;  Martin Chalfie;  Noam Chomsky;  Joseph Cirincione;  Sean Decatur;  Melissa Franklin;  Joseph Gerson;  David P. Goldenberg;  Gary Goldstein;  William Hartung;  Ira Helfand;  Daniel Holz;  Peter C. Kahn;  Sheldon Krimsky;  Edward Loechler;  Val Moghadam;  Stuart A. Newman;  David Ozonoff;  Prasannan Parthasarathi;  William Phillips;  H. David Politzer;  Robert P. Redwine;  Richard J. Roberts;  Alan Robock;  Catherine Ann Royer;  Suzanne Scarlata;  Elaine Scarry;  George F. Smoot;  Robert Socolow;  Susan Solomon;  Andrew Strominger;  Eric J. Sundberg;  Mriganka Sur;  Max Tegmark;  John F. Tierney;  Cornelia van der Ziel;  Michael VanElzakker;  Frank N. von Hippel;  Lawrence Wittner;  Henry H. Wortis
收藏  |  浏览/下载:11/0  |  提交时间:2020/07/21
Stratospheric gravity-waves over the mountainous island of South Georgia: testing a high-resolution dynamical model with 3-D satellite observations and radiosondes 期刊论文
Atmospheric Chemistry and Physics, 2020
作者:  Neil P. Hindley, Corwin J. Wright, Alan M. Gadian, Lars Hoffmann, John K. Hughes, David R. Jackson, John C. King, Nicholas J. Mitchell, Tracy Moffat-Griffin, Andrew C. Moss, Simon B. Vosper, and Andrew N. Ross
收藏  |  浏览/下载:8/0  |  提交时间:2020/06/16
Controlling interdependent meso-nanosecond dynamics and defect generation in metal 3D printing 期刊论文
Science, 2020
作者:  Saad A. Khairallah;  Aiden A. Martin;  Jonathan R. I. Lee;  Gabe Guss;  Nicholas P. Calta;  Joshua A. Hammons;  Michael H. Nielsen;  Kevin Chaput;  Edwin Schwalbach;  Megna N. Shah;  Michael G. Chapman;  Trevor M. Willey;  Alexander M. Rubenchik;  Andrew T. Anderson;  Y. Morris Wang;  Manyalibo J. Matthews;  Wayne E. King
收藏  |  浏览/下载:11/0  |  提交时间:2020/05/13
Spectroscopic confirmation of a mature galaxy cluster at a redshift of 2 期刊论文
NATURE, 2020, 577 (7788) : 39-+
作者:  Willis, J. P.;  Canning, R. E. A.;  Noordeh, E. S.;  Allen, S. W.;  King, A. L.;  Mantz, A.;  Morris, R. G.;  Stanford, S. A.;  Brammer, G.
收藏  |  浏览/下载:12/0  |  提交时间:2020/07/03

Galaxy clusters are the most massive virialized structures in the Universe and are formed through the gravitational accretion of matter over cosmic time(1). The discovery(2) of an evolved galaxy cluster at redshift z = 2, corresponding to a look-back time of 10.4 billion years, provides an opportunity to study its properties. The galaxy cluster XLSSC 122 was originally detected as a faint, extended X-ray source in the XMM Large Scale Structure survey and was revealed to be coincident with a compact over-density of galaxies(2) with photometric redshifts of 1.9 +/- 0.2. Subsequent observations3 at millimetre wavelengths detected a Sunyaev-Zel'  dovich decrement along the line of sight to XLSSC 122, thus confirming the existence of hot intracluster gas, while deep imaging spectroscopy from the European Space Agency'  s X-ray Multi-Mirror Mission (XMM-Newton) revealed(4) an extended, X-ray-bright gaseous atmosphere with a virial temperature of 60 million Kelvin, enriched with metals to the same extent as are local clusters. Here we report optical spectroscopic observations of XLSSC 122 and identify 37 member galaxies at a mean redshift of 1.98, corresponding to a look-back time of 10.4 billion years. We use photometry to determine a mean, dust-free stellar age of 2.98 billion years, indicating that star formation commenced in these galaxies at a mean redshift of 12, when the Universe was only 370 million years old. The full range of inferred formation redshifts, including the effects of dust, covers the interval from 7 to 13. These observations confirm that XLSSC 122 is a remarkably mature galaxy cluster with both evolved stellar populations in the member galaxies and a hot, metal-rich gas composing the intracluster medium.


  
The seismicity of Mars 期刊论文
NATURE GEOSCIENCE, 2020, 13 (3) : 205-+
作者:  Giardini, D.;  Lognonne, P.;  Banerdt, W. B.;  Pike, W. T.;  Christensen, U.;  Ceylan, S.;  Clinton, J. F.;  van Driel, M.;  Staehler, S. C.;  Boese, M.;  Garcia, R. F.;  Khan, A.;  Panning, M.;  Perrin, C.;  Banfield, D.;  Beucler, E.;  Charalambous, C.;  Euchner, F.;  Horleston, A.;  Jacob, A.;  Kawamura, T.;  Kedar, S.;  Mainsant, G.;  Scholz, J. -R.;  Smrekar, S. E.;  Spiga, A.;  Agard, C.;  Antonangeli, D.;  Barkaoui, S.;  Barrett, E.;  Combes, P.;  Conejero, V.;  Daubar, I.;  Drilleau, M.;  Ferrier, C.;  Gabsi, T.;  Gudkova, T.;  Hurst, K.;  Karakostas, F.;  King, S.;  Knapmeyer, M.;  Knapmeyer-Endrun, B.;  Llorca-Cejudo, R.;  Lucas, A.;  Luno, L.;  Margerin, L.;  McClean, J. B.;  Mimoun, D.;  Murdoch, N.;  Nimmo, F.;  Nonon, M.;  Pardo, C.;  Rivoldini, A.;  Manfredi, J. A. Rodriguez;  Samuel, H.;  Schimmel, M.;  Stott, A. E.;  Stutzmann, E.;  Teanby, N.;  Warren, T.;  Weber, R. C.;  Wieczorek, M.;  Yana, C.
收藏  |  浏览/下载:11/0  |  提交时间:2020/05/13
Impacts of current and future large dams on the geographic range connectivity of freshwater fish worldwide 期刊论文
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (7) : 3648-3655
作者:  Barbarossa, Valerio;  Schmitt, Rafael J. P.;  Huijbregts, Mark A. J.;  Zarfl, Christiane;  King, Henry;  Schipper, Aafke M.
收藏  |  浏览/下载:15/0  |  提交时间:2020/05/13
habitat fragmentation  hydropower  river management  migratory fish  biodiversity  
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.