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New Guinea has the world鈥檚 richest island flora 期刊论文
Nature, 2020
作者:  Rodrigo Cá;  mara-Leret;  David G. Frodin;  Frits Adema;  Christiane Anderson;  Marc S. Appelhans;  George Argent;  Susana Arias Guerrero;  Peter Ashton;  William J. Baker;  Anders S. Barfod;  David Barrington;  Renata Borosova;  Gemma L. C. Bramley;  Marie Briggs;  Sven Buerki;  Daniel Cahen;  Martin W. Callmander;  Martin Cheek;  Cheng-Wei Chen;  Barry J. Conn;  Mark J. E. Coode;  Iain Darbyshire;  Sally Dawson;  John Dransfield;  Clare Drinkell;  Brigitta Duyfjes;  Atsushi Ebihara;  Zacky Ezedin;  Long-Fei Fu;  Osia Gideon;  Deden Girmansyah;  Rafaë;  l Govaerts;  Helen Fortune-Hopkins;  Gustavo Hassemer;  Alistair Hay;  Charlie D. Heatubun;  D. J. Nicholas Hind;  Peter Hoch;  Peter Homot;  Peter Hovenkamp;  Mark Hughes;  Matthew Jebb;  Laura Jennings;  Tiberius Jimbo;  Michael Kessler;  Ruth Kiew;  Sandra Knapp;  Penniel Lamei;  Marcus Lehnert;  Gwilym P. Lewis;  Hans Peter Linder;  Stuart Lindsay;  Yee Wen Low;  Eve Lucas;  Jeffrey P. Mancera;  Alexandre K. Monro;  Alison Moore;  David J. Middleton;  Hidetoshi Nagamasu;  Mark F. Newman;  Eimear Nic Lughadha;  Pablo H. A. Melo;  Daniel J. Ohlsen;  Caroline M. Pannell;  Barbara Parris;  Laura Pearce;  Darin S. Penneys;  Leon R. Perrie;  Peter Petoe;  Axel Dalberg Poulsen;  Ghillean T. Prance;  J. Peter Quakenbush;  Niels Raes;  Michele Rodda;  Zachary S. Rogers;  André;  Schuiteman;  Pedro Schwartsburd;  Robert W. Scotland;  Mark P. Simmons;  David A. Simpson;  Peter Stevens;  Michael Sundue;  Weston Testo;  Anna Trias-Blasi;  Ian Turner;  Timothy Utteridge;  Lesley Walsingham;  Bruce L. Webber;  Ran Wei;  George D. Weiblen;  Maximilian Weigend;  Peter Weston;  Willem de Wilde;  Peter Wilkie;  Christine M. Wilmot-Dear;  Hannah P. Wilson;  John R. I. Wood;  Li-Bing Zhang;  Peter C. van Welzen
收藏  |  浏览/下载:33/0  |  提交时间:2020/08/18
Global status and conservation potential of reef sharks 期刊论文
Nature, 2020
作者:  M. Aaron MacNeil;  Demian D. Chapman;  Michelle Heupel;  Colin A. Simpfendorfer;  Michael Heithaus;  Mark Meekan;  Euan Harvey;  Jordan Goetze;  Jeremy Kiszka;  Mark E. Bond;  Leanne M. Currey-Randall;  Conrad W. Speed;  C. Samantha Sherman;  Matthew J. Rees;  Vinay Udyawer;  Kathryn I. Flowers;  Gina Clementi;  Jasmine Valentin-Albanese;  Taylor Gorham;  M. Shiham Adam;  Khadeeja Ali;  Fabiá;  n Pina-Amargó;  s;  Jorge A. Angulo-Valdé;  s;  Jacob Asher;  Laura Garcí;  a Barcia;  Océ;  ane Beaufort;  Cecilie Benjamin;  Anthony T. F. Bernard;  Michael L. Berumen;  Stacy Bierwagen;  Erika Bonnema;  Rosalind M. K. Bown;  Darcey Bradley;  Edd Brooks;  J. Jed Brown;  Dayne Buddo;  Patrick Burke;  Camila Cá;  ceres;  Diego Cardeñ;  osa;  Jeffrey C. Carrier;  Jennifer E. Caselle;  Venkatesh Charloo;  Thomas Claverie;  Eric Clua;  Jesse E. M. Cochran;  Neil Cook;  Jessica Cramp;  Brooke D’;  Alberto;  Martin de Graaf;  Mareike Dornhege;  Andy Estep;  Lanya Fanovich;  Naomi F. Farabough;  Daniel Fernando;  Anna L. Flam;  Camilla Floros;  Virginia Fourqurean;  Ricardo Garla;  Kirk Gastrich;  Lachlan George;  Rory Graham;  Tristan Guttridge;  Royale S. Hardenstine;  Stephen Heck;  Aaron C. Henderson;  Heidi Hertler;  Robert Hueter;  Mohini Johnson;  Stacy Jupiter;  Devanshi Kasana;  Steven T. Kessel;  Benedict Kiilu;  Taratu Kirata;  Baraka Kuguru;  Fabian Kyne;  Tim Langlois;  Elodie J. I. Lé;  ;  e;  Steve Lindfield;  Andrea Luna-Acosta;  Jade Maggs;  B. Mabel Manjaji-Matsumoto;  Andrea Marshall;  Philip Matich;  Erin McCombs;  Dianne McLean;  Llewelyn Meggs;  Stephen Moore;  Sushmita Mukherji;  Ryan Murray;  Muslimin Kaimuddin;  Stephen J. Newman;  Josep Nogué;  s;  Clay Obota;  Owen O’;  Shea;  Kennedy Osuka;  Yannis P. Papastamatiou;  Nishan Perera;  Bradley Peterson;  Alessandro Ponzo;  Andhika Prasetyo;  L. M. Sjamsul Quamar;  Jessica Quinlan;  Alexei Ruiz-Abierno;  Enric Sala;  Melita Samoilys;  Michelle Schä;  rer-Umpierre;  Audrey Schlaff;  Nikola Simpson;  Adam N. H. Smith;  Lauren Sparks;  Akshay Tanna;  Rubé;  n Torres;  Michael J. Travers;  Maurits van Zinnicq Bergmann;  Laurent Vigliola;  Juney Ward;  Alexandra M. Watts;  Colin Wen;  Elizabeth Whitman;  Aaron J. Wirsing;  Aljoscha Wothke;  Esteban Zarza-Gonzâ;  lez;  Joshua E. Cinner
收藏  |  浏览/下载:17/0  |  提交时间:2020/08/09
Femtosecond-to-millisecond structural changes in a light-driven sodium pump 期刊论文
NATURE, 2020, 583 (7815) : 314-+
作者:  Moore, Luiza;  Leongamornlert, Daniel;  Coorens, Tim H. H.;  Sanders, Mathijs A.;  Ellis, Peter;  Dentro, Stefan C.;  Dawson, Kevin J.;  Butler, Tim;  Rahbari, Raheleh;  Mitchell, Thomas J.;  Maura, Francesco;  Nangalia, Jyoti;  Tarpey, Patrick S.;  Brunner, Simon F.;  Lee-Six, Henry;  Hooks, Yvette;  Moody, Sarah;  Mahbubani, Krishnaa T.;  Jimenez-Linan, Mercedes;  Brosens, Jan J.;  Iacobuzio-Donahue, Christine A.;  Martincorena, Inigo;  Saeb-Parsy, Kourosh;  Campbell, Peter J.;  Stratton, Michael R.
收藏  |  浏览/下载:17/0  |  提交时间:2020/07/03

Light-driven sodium pumps actively transport small cations across cellular membranes(1). These pumps are used by microorganisms to convert light into membrane potential and have become useful optogenetic tools with applications in neuroscience. Although the resting state structures of the prototypical sodium pump Krokinobacter eikastus rhodopsin 2 (KR2) have been solved(2,3), it is unclear how structural alterations overtime allow sodium to be translocated against a concentration gradient. Here, using the Swiss X-ray Free Electron Laser(4), we have collected serial crystallographic data at ten pump-probe delays from femtoseconds to milliseconds. High-resolution structural snapshots throughout the KR2 photocycle show how retinal isomerization is completed on the femtosecond timescale and changes the local structure of the binding pocket in the early nanoseconds. Subsequent rearrangements and deprotonation of the retinal Schiff base open an electrostatic gate in microseconds. Structural and spectroscopic data, in combination with quantum chemical calculations, indicate that a sodium ion bind stransiently close to the retinal within one millisecond. In the last structural intermediate, at 20 milliseconds after activation, we identified a potential second sodium-binding site close to the extracellular exit. These results provide direct molecular insight into the dynamics of active cation transport across biological membranes.


  
Missing OH reactivity in the global marine boundary layer 期刊论文
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2020, 20 (6) : 4013-4029
作者:  Thames, Alexander B.;  Brune, William H.;  Miller, David O.;  Allen, Hannah M.;  Apel, Eric C.;  Blake, Donald R.;  Bui, T. Paul;  Commane, Roisin;  Crounse, John D.;  Daube, Bruce C.;  Diskin, Glenn S.;  DiGangi, Joshua P.;  Elkins, JamesW.;  Hall, Samuel R.;  Hanisco, Thomas F.;  Hannun, Reem A.;  Hintsa, Eric;  Hornbrook, Rebecca S.;  Kim, Michelle J.;  McKain, Kathryn;  Moore, Fred L.;  Nicely, Julie M.;  Peischl, Jeffrey;  Ryerson, Thomas B.;  St Clair, Jason M.;  Sweeney, Colm;  Teng, Alex;  Thompson, Chelsea R.;  Ullmann, Kirk;  Wennberg, Paul O.;  Wolfe, Glenn M.
收藏  |  浏览/下载:14/0  |  提交时间:2020/07/02
Asynchronous carbon sink saturation in African and Amazonian tropical forests 期刊论文
NATURE, 2020, 579 (7797) : 80-+
作者:  Wannes Hubau;  Simon L. Lewis;  Oliver L. Phillips;  Kofi Affum-Baffoe;  Hans Beeckman;  Aida Cuní;  -Sanchez;  Armandu K. Daniels;  Corneille E. N. Ewango;  Sophie Fauset;  Jacques M. Mukinzi;  Douglas Sheil;  Bonaventure Sonké;  Martin J. P. Sullivan;  Terry C. H. Sunderland;  Hermann Taedoumg;  Sean C. Thomas;  Lee J. T. White;  Katharine A. Abernethy;  Stephen Adu-Bredu;  Christian A. Amani;  Timothy R. Baker;  Lindsay F. Banin;  Fidè;  le Baya;  Serge K. Begne;  Amy C. Bennett;  Fabrice Benedet;  Robert Bitariho;  Yannick E. Bocko;  Pascal Boeckx;  Patrick Boundja;  Roel J. W. Brienen;  Terry Brncic;  Eric Chezeaux;  George B. Chuyong;  Connie J. Clark;  Murray Collins;  James A. Comiskey;  David A. Coomes;  Greta C. Dargie;  Thales de Haulleville;  Marie Noel Djuikouo Kamdem;  Jean-Louis Doucet;  Adriane Esquivel-Muelbert;  Ted R. Feldpausch;  Alusine Fofanah;  Ernest G. Foli;  Martin Gilpin;  Emanuel Gloor;  Christelle Gonmadje;  Sylvie Gourlet-Fleury;  Jefferson S. Hall;  Alan C. Hamilton;  David J. Harris;  Terese B. Hart;  Mireille B. N. Hockemba;  Annette Hladik;  Suspense A. Ifo;  Kathryn J. Jeffery;  Tommaso Jucker;  Emmanuel Kasongo Yakusu;  Elizabeth Kearsley;  David Kenfack;  Alexander Koch;  Miguel E. Leal;  Aurora Levesley;  Jeremy A. Lindsell;  Janvier Lisingo;  Gabriela Lopez-Gonzalez;  Jon C. Lovett;  Jean-Remy Makana;  Yadvinder Malhi;  Andrew R. Marshall;  Jim Martin;  Emanuel H. Martin;  Faustin M. Mbayu;  Vincent P. Medjibe;  Vianet Mihindou;  Edward T. A. Mitchard;  Sam Moore;  Pantaleo K. T. Munishi;  Natacha Nssi Bengone;  Lucas Ojo;  Fidè;  le Evouna Ondo;  Kelvin S.-H. Peh;  Georgia C. Pickavance;  Axel Dalberg Poulsen;  John R. Poulsen;  Lan Qie;  Jan Reitsma;  Francesco Rovero;  Michael D. Swaine;  Joey Talbot;  James Taplin;  David M. Taylor;  Duncan W. Thomas;  Benjamin Toirambe;  John Tshibamba Mukendi;  Darlington Tuagben;  Peter M. Umunay;  Geertje M. F. van der Heijden;  Hans Verbeeck;  Jason Vleminckx;  Simon Willcock;  Hannsjö;  rg Wö;  ll;  John T. Woods;  Lise Zemagho
收藏  |  浏览/下载:25/0  |  提交时间:2020/05/13

Structurally intact tropical forests sequestered about half of the global terrestrial carbon uptake over the 1990s and early 2000s, removing about 15 per cent of anthropogenic carbon dioxide emissions(1-3). Climate-driven vegetation models typically predict that this tropical forest '  carbon sink'  will continue for decades(4,5). Here we assess trends in the carbon sink using 244 structurally intact African tropical forests spanning 11 countries, compare them with 321 published plots from Amazonia and investigate the underlying drivers of the trends. The carbon sink in live aboveground biomass in intact African tropical forests has been stable for the three decades to 2015, at 0.66 tonnes of carbon per hectare per year (95 per cent confidence interval 0.53-0.79), in contrast to the long-term decline in Amazonian forests(6). Therefore the carbon sink responses of Earth'  s two largest expanses of tropical forest have diverged. The difference is largely driven by carbon losses from tree mortality, with no detectable multi-decadal trend in Africa and a long-term increase in Amazonia. Both continents show increasing tree growth, consistent with the expected net effect of rising atmospheric carbon dioxide and air temperature(7-9). Despite the past stability of the African carbon sink, our most intensively monitored plots suggest a post-2010 increase in carbon losses, delayed compared to Amazonia, indicating asynchronous carbon sink saturation on the two continents. A statistical model including carbon dioxide, temperature, drought and forest dynamics accounts for the observed trends and indicates a long-term future decline in the African sink, whereas the Amazonian sink continues to weaken rapidly. Overall, the uptake of carbon into Earth'  s intact tropical forests peaked in the 1990s. Given that the global terrestrial carbon sink is increasing in size, independent observations indicating greater recent carbon uptake into the Northern Hemisphere landmass(10) reinforce our conclusion that the intact tropical forest carbon sink has already peaked. This saturation and ongoing decline of the tropical forest carbon sink has consequences for policies intended to stabilize Earth'  s climate.