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Conjugate effect of the 2011 Tohoku reflected tsunami-driven gravity waves in the ionosphere 期刊论文
Geophysical Research Letters, 2022
作者:  Min-Yang Chou;  Jia Yue;  Charles C. H. Lin;  P. K. Rajesh;  N. M. Pedatella
收藏  |  浏览/下载:15/0  |  提交时间:2022/01/29
Peta–electron volt gamma-ray emission from the Crab Nebula 期刊论文
Science, 2021
作者:  The LHAASO Collaboration*†;  Zhen Cao;  F. Aharonian;  Q. An;  Axikegu;  L. X. Bai;  Y. X. Bai;  Y. W. Bao;  D. Bastieri;  X. J. Bi;  Y. J. Bi;  H. Cai;  J. T. Cai;  Zhe Cao;  J. Chang;  J. F. Chang;  B. M. Chen;  E. S. Chen;  J. Chen;  Liang Chen;  Liang Chen;  Long Chen;  M. J. Chen;  M. L. Chen;  Q. H. Chen;  S. H. Chen;  S. Z. Chen;  T. L. Chen;  X. L. Chen;  Y. Chen;  N. Cheng;  Y. D. Cheng;  S. W. Cui;  X. H. Cui;  Y. D. Cui;  B. D’Ettorre Piazzoli;  B. Z. Dai;  H. L. Dai;  Z. G. Dai;  Danzengluobu;  D. della Volpe;  X. J. Dong;  K. K. Duan;  J. H. Fan;  Y. Z. Fan;  Z. X. Fan;  J. Fang;  K. Fang;  C. F. Feng;  L. Feng;  S. H. Feng;  Y. L. Feng;  B. Gao;  C. D. Gao;  L. Q. Gao;  Q. Gao;  W. Gao;  M. M. Ge;  L. S. Geng;  G. H. Gong;  Q. B. Gou;  M. H. Gu;  F. L. Guo;  J. G. Guo;  X. L. Guo;  Y. Q. Guo;  Y. Y. Guo;  Y. A. Han;  H. H. He;  H. N. He;  J. C. He;  S. L. He;  X. B. He;  Y. He;  M. Heller;  Y. K. Hor;  C. Hou;  X. Hou;  H. B. Hu;  S. Hu;  S. C. Hu;  X. J. Hu;  D. H. Huang;  Q. L. Huang;  W. H. Huang;  X. T. Huang;  X. Y. Huang;  Z. C. Huang;  F. Ji;  X. L. Ji;  H. Y. Jia;  K. Jiang;  Z. J. Jiang;  C. Jin;  T. Ke;  D. Kuleshov;  K. Levochkin;  B. B. Li;  Cheng Li;  Cong Li;  F. Li;  H. B. Li;  H. C. Li;  H. Y. Li;  Jian Li;  Jie Li;  K. Li;  W. L. Li;  X. R. Li;  Xin Li;  Xin Li;  Y. Li;  Y. Z. Li;  Zhe Li;  Zhuo Li;  E. W. Liang;  Y. F. Liang;  S. J. Lin;  B. Liu;  C. Liu;  D. Liu;  H. Liu;  H. D. Liu;  J. Liu;  J. L. Liu;  J. S. Liu;  J. Y. Liu;  M. Y. Liu;  R. Y. Liu;  S. M. Liu;  W. Liu;  Y. Liu;  Y. N. Liu;  Z. X. Liu;  W. J. Long;  R. Lu;  H. K. Lv;  B. Q. Ma;  L. L. Ma;  X. H. Ma;  J. R. Mao;  A. Masood;  Z. Min;  W. Mitthumsiri;  T. Montaruli;  Y. C. Nan;  B. Y. Pang;  P. Pattarakijwanich;  Z. Y. Pei;  M. Y. Qi;  Y. Q. Qi;  B. Q. Qiao;  J. J. Qin;  D. Ruffolo;  V. Rulev;  A. Saiz;  L. Shao;  O. Shchegolev;  X. D. Sheng;  J. Y. Shi;  H. C. Song;  Yu. V. Stenkin;  V. Stepanov;  Y. Su;  Q. N. Sun;  X. N. Sun;  Z. B. Sun;  P. H. T. Tam;  Z. B. Tang;  W. W. Tian;  B. D. Wang;  C. Wang;  H. Wang;  H. G. Wang;  J. C. Wang;  J. S. Wang;  L. P. Wang;  L. Y. Wang;  R. N. Wang;  Wei Wang;  Wei Wang;  X. G. Wang;  X. J. Wang;  X. Y. Wang;  Y. Wang;  Y. D. Wang;  Y. J. Wang;  Y. P. Wang;  Z. H. Wang;  Z. X. Wang;  Zhen Wang;  Zheng Wang;  D. M. Wei;  J. J. Wei;  Y. J. Wei;  T. Wen;  C. Y. Wu;  H. R. Wu;  S. Wu;  W. X. Wu;  X. F. Wu;  S. Q. Xi;  J. Xia;  J. J. Xia;  G. M. Xiang;  D. X. Xiao;  G. Xiao;  H. B. Xiao;  G. G. Xin;  Y. L. Xin;  Y. Xing;  D. L. Xu;  R. X. Xu;  L. Xue;  D. H. Yan;  J. Z. Yan;  C. W. Yang;  F. F. Yang;  J. Y. Yang;  L. L. Yang;  M. J. Yang;  R. Z. Yang;  S. B. Yang;  Y. H. Yao;  Z. G. Yao;  Y. M. Ye;  L. Q. Yin;  N. Yin;  X. H. You;  Z. Y. You;  Y. H. Yu;  Q. Yuan;  H. D. Zeng;  T. X. Zeng;  W. Zeng;  Z. K. Zeng;  M. Zha;  X. X. Zhai;  B. B. Zhang;  H. M. Zhang;  H. Y. Zhang;  J. L. Zhang;  J. W. Zhang;  L. X. Zhang;  Li Zhang;  Lu Zhang;  P. F. Zhang;  P. P. Zhang;  R. Zhang;  S. R. Zhang;  S. S. Zhang;  X. Zhang;  X. P. Zhang;  Y. F. Zhang;  Y. L. Zhang;  Yi Zhang;  Yong Zhang;  B. Zhao;  J. Zhao;  L. Zhao;  L. Z. Zhao;  S. P. Zhao;  F. Zheng;  Y. Zheng;  B. Zhou;  H. Zhou;  J. N. Zhou;  P. Zhou;  R. Zhou;  X. X. Zhou;  C. G. Zhu;  F. R. Zhu;  H. Zhu;  K. J. Zhu;  X. Zuo
收藏  |  浏览/下载:14/0  |  提交时间:2021/07/27
Subpolar North Atlantic western boundary density anomalies and the Meridional Overturning Circulation 期刊论文
Nature Communications, 2021
作者:  F. Li;  M. S. Lozier;  S. Bacon;  A. S. Bower;  S. A. Cunningham;  M. F. de Jong;  B. deYoung;  N. Fraser;  N. Fried;  G. Han;  N. P. Holliday;  J. Holte;  L. Houpert;  M. E. Inall;  W. E. Johns;  S. Jones;  C. Johnson;  J. Karstensen;  I. A. Le Bras;  P. Lherminier;  X. Lin;  H. Mercier;  M. Oltmanns;  A. Pacini;  T. Petit;  R. S. Pickart;  D. Rayner;  F. Straneo;  V. Thierry;  M. Visbeck;  I. Yashayaev;  C. Zhou
收藏  |  浏览/下载:12/0  |  提交时间:2021/06/07
Phylogenetic analysis of SARS-CoV-2 in Boston highlights the impact of superspreading events 期刊论文
Science, 2021
作者:  Jacob E. Lemieux;  Katherine J. Siddle;  Bennett M. Shaw;  Christine Loreth;  Stephen F. Schaffner;  Adrianne Gladden-Young;  Gordon Adams;  Timelia Fink;  Christopher H. Tomkins-Tinch;  Lydia A. Krasilnikova;  Katherine C. DeRuff;  Melissa Rudy;  Matthew R. Bauer;  Kim A. Lagerborg;  Erica Normandin;  Sinéad B. Chapman;  Steven K. Reilly;  Melis N. Anahtar;  Aaron E. Lin;  Amber Carter;  Cameron Myhrvold;  Molly E. Kemball;  Sushma Chaluvadi;  Caroline Cusick;  Katelyn Flowers;  Anna Neumann;  Felecia Cerrato;  Maha Farhat;  Damien Slater;  Jason B. Harris;  John A. Branda;  David Hooper;  Jessie M. Gaeta;  Travis P. Baggett;  James O’Connell;  Andreas Gnirke;  Tami D. Lieberman;  Anthony Philippakis;  Meagan Burns;  Catherine M. Brown;  Jeremy Luban;  Edward T. Ryan;  Sarah E. Turbett;  Regina C. LaRocque;  William P. Hanage;  Glen R. Gallagher;  Lawrence C. Madoff;  Sandra Smole;  Virginia M. Pierce;  Eric Rosenberg;  Pardis C. Sabeti;  Daniel J. Park;  Bronwyn L. MacInnis
收藏  |  浏览/下载:18/0  |  提交时间:2021/02/17
DNA vaccine protection against SARS-CoV-2 in rhesus macaques 期刊论文
Science, 2020
作者:  Jingyou Yu;  Lisa H. Tostanoski;  Lauren Peter;  Noe B. Mercado;  Katherine McMahan;  Shant H. Mahrokhian;  Joseph P. Nkolola;  Jinyan Liu;  Zhenfeng Li;  Abishek Chandrashekar;  David R. Martinez;  Carolin Loos;  Caroline Atyeo;  Stephanie Fischinger;  John S. Burke;  Matthew D. Slein;  Yuezhou Chen;  Adam Zuiani;  Felipe J. N. Lelis;  Meghan Travers;  Shaghayegh Habibi;  Laurent Pessaint;  Alex Van Ry;  Kelvin Blade;  Renita Brown;  Anthony Cook;  Brad Finneyfrock;  Alan Dodson;  Elyse Teow;  Jason Velasco;  Roland Zahn;  Frank Wegmann;  Esther A. Bondzie;  Gabriel Dagotto;  Makda S. Gebre;  Xuan He;  Catherine Jacob-Dolan;  Marinela Kirilova;  Nicole Kordana;  Zijin Lin;  Lori F. Maxfield;  Felix Nampanya;  Ramya Nityanandam;  John D. Ventura;  Huahua Wan;  Yongfei Cai;  Bing Chen;  Aaron G. Schmidt;  Duane R. Wesemann;  Ralph S. Baric;  Galit Alter;  Hanne Andersen;  Mark G. Lewis;  Dan H. Barouch
收藏  |  浏览/下载:18/0  |  提交时间:2020/08/18
Uncertainty in the Response of Sudden Stratospheric Warmings and Stratosphere-Troposphere Coupling to Quadrupled CO2 Concentrations in CMIP6 Models 期刊论文
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2020, 125 (6)
作者:  Ayarzaguena, B.;  Charlton-Perez, A. J.;  Butler, A. H.;  Hitchcock, P.;  Simpson, I. R.;  Polvani, L. M.;  Butchart, N.;  Gerber, E. P.;  Gray, L.;  Hassler, B.;  Lin, P.;  Lott, F.;  Manzini, E.;  Mizuta, R.;  Orbe, C.;  Osprey, S.;  Saint-Martin, D.;  Sigmond, M.;  Taguchi, M.;  Volodin, E. M.;  Watanabe, S.
收藏  |  浏览/下载:12/0  |  提交时间:2020/07/02
sudden stratospheric warming  CMIP6  stratosphere-troposphere coupling  climate change  
Electrical manipulation of a topological antiferromagnetic state 期刊论文
NATURE, 2020, 580 (7805) : 608-+
作者:  Chabon, Jacob J.;  Hamilton, Emily G.;  Kurtz, David M.;  Esfahani, Mohammad S.;  Moding, Everett J.;  Stehr, Henning;  Schroers-Martin, Joseph;  Nabet, Barzin Y.;  Chen, Binbin;  Chaudhuri, Aadel A.;  Liu, Chih Long;  Hui, Angela B.;  Jin, Michael C.;  Azad, Tej D.;  Almanza, Diego;  Jeon, Young-Jun;  Nesselbush, Monica C.;  Keh, Lyron Co Ting;  Bonilla, Rene F.;  Yoo, Christopher H.;  Ko, Ryan B.;  Chen, Emily L.;  Merriott, David J.;  Massion, Pierre P.;  Mansfield, Aaron S.;  Jen, Jin;  Ren, Hong Z.;  Lin, Steven H.;  Costantino, Christina L.;  Burr, Risa;  Tibshirani, Robert;  Gambhir, Sanjiv S.;  Berry, Gerald J.;  Jensen, Kristin C.;  West, Robert B.;  Neal, Joel W.;  Wakelee, Heather A.;  Loo, Billy W., Jr.;  Kunder, Christian A.;  Leung, Ann N.;  Lui, Natalie S.;  Berry, Mark F.;  Shrager, Joseph B.;  Nair, Viswam S.;  Haber, Daniel A.;  Sequist, Lecia V.;  Alizadeh, Ash A.;  Diehn, Maximilian
收藏  |  浏览/下载:36/0  |  提交时间:2020/07/03

Room-temperature electrical switching of a topological antiferromagnetic state in polycrystalline Mn3Sn thin films is demonstrated using the same protocol as that used for conventional ferromagnetic metals.


Electrical manipulation of phenomena generated by nontrivial band topology is essential for the development of next-generation technology using topological protection. A Weyl semimetal is a three-dimensional gapless system that hosts Weyl fermions as low-energy quasiparticles(1-4). It has various exotic properties, such as a large anomalous Hall effect (AHE) and chiral anomaly, which are robust owing to the topologically protected Weyl nodes(1-16). To manipulate such phenomena, a magnetic version of Weyl semimetals would be useful for controlling the locations of Weyl nodes in the Brillouin zone. Moreover, electrical manipulation of antiferromagnetic Weyl metals would facilitate the use of antiferromagnetic spintronics to realize high-density devices with ultrafast operation(17,18). However, electrical control of a Weyl metal has not yet been reported. Here we demonstrate the electrical switching of a topological antiferromagnetic state and its detection by the AHE at room temperature in a polycrystalline thin film(19) of the antiferromagnetic Weyl metal Mn3Sn9,10,12,20, which exhibits zero-field AHE. Using bilayer devices composed of Mn3Sn and nonmagnetic metals, we find that an electrical current density of about 10(10) to 10(11) amperes per square metre induces magnetic switching in the nonmagnetic metals, with a large change in Hall voltage. In addition, the current polarity along the bias field and the sign of the spin Hall angle of the nonmagnetic metals-positive for Pt (ref. (21)), close to 0 for Cu and negative for W (ref. (22))-determines the sign of the Hall voltage. Notably, the electrical switching in the antiferromagnet is achieved with the same protocol as that used for ferromagnetic metals(23,24). Our results may lead to further scientific and technological advances in topological magnetism and antiferromagnetic spintronics.


  
Cryo-EM structure of SWI/SNF complex bound to a nucleosome 期刊论文
NATURE, 2020
作者:  Hang, Saiyu;  Paik, Donggi;  Yao, Lina;  Kim, Eunha;  Trinath, Jamma;  Lu, Jingping;  Ha, Soyoung;  Nelson, Brandon N.;  Kelly, Samantha P.;  Wu, Lin;  Zheng, Ye;  Longman, Randy S.;  Rastinejad, Fraydoon;  Devlin, A. Sloan;  Krout, Michael R.;  Fischbach, Michael A.;  Littman, Dan R.;  Huh, Jun R.
收藏  |  浏览/下载:7/0  |  提交时间:2020/07/03

The chromatin-remodelling complex SWI/SNF is highly conserved and has critical roles in various cellular processes, including transcription and DNA-damage repair(1,2). It hydrolyses ATP to remodel chromatin structure by sliding and evicting histone octamers(3-8), creating DNA regions that become accessible to other essential factors. However, our mechanistic understanding of the remodelling activity is hindered by the lack of a high-resolution structure of complexes from this family. Here we report the cryo-electron microscopy structure of Saccharomyces cerevisiae SWI/SNF bound to a nucleosome, at near-atomic resolution. In the structure, the actin-related protein (Arp) module is sandwiched between the ATPase and the rest of the complex, with the Snf2 helicase-SANT associated (HSA) domain connecting all modules. The body contains an assembly scaffold composed of conserved subunits Snf12 (also known as SMARCD or BAF60), Snf5 (also known as SMARCB1, BAF47 or INI1) and an asymmetric dimer of Swi3 (also known as SMARCC, BAF155 or BAF170). Another conserved subunit, Swi1 (also known as ARID1 or BAF250), resides in the core of SWI/SNF, acting as a molecular hub. We also observed interactions between Snf5 and the histones at the acidic patch, which could serve as an anchor during active DNA translocation. Our structure enables us to map and rationalize a subset of cancer-related mutations in the human SWI/SNF complex and to propose a model for how SWI/SNF recognizes and remodels the +1 nucleosome to generate nucleosome-depleted regions during gene activation(9).


The cryo-electron microscopy structure of the yeast SWI/SNF complex bound to a nucleosome substrate provides insights into the chromatin-remodelling function of this family of protein complexes and suggests mechanisms by which the mutated proteins may cause cancer.


  
Selective loading and processing of prespacers for precise CRISPR adaptation 期刊论文
NATURE, 2020
作者:  Liu, Guoxia;  Papa, Arianne;  Katchman, Alexander N.;  Zakharov, Sergey I.;  Roybal, Daniel;  Hennessey, Jessica A.;  Kushner, Jared;  Yang, Lin;  Chen, Bi-Xing;  Kushnir, Alexander;  Dangas, Katerina;  Gygi, Steven P.;  Pitt, Geoffrey S.;  Colecraft, Henry M.;  Ben-Johny, Manu;  Kalocsay, Marian;  Marx, Steven O.
收藏  |  浏览/下载:5/0  |  提交时间:2020/07/03

CRISPR-Cas immunity protects prokaryotes against invading genetic elements(1). It uses the highly conserved Cas1-Cas2 complex to establish inheritable memory (spacers)(2-5). How Cas1-Cas2 acquires spacers from foreign DNA fragments (prespacers) and integrates them into the CRISPR locus in the correct orientation is unclear(6,7). Here, using the high spatiotemporal resolution of single-molecule fluorescence, we show that Cas1-Cas2 selects precursors of prespacers from DNA in various forms-including single-stranded DNA and partial duplexes-in a manner that depends on both the length of the DNA strand and the presence of a protospacer adjacent motif (PAM) sequence. We also identify DnaQ exonucleases as enzymes that process the Cas1-Cas2-loaded prespacer precursors into mature prespacers of a suitable size for integration. Cas1-Cas2 protects the PAM sequence from maturation, which results in the production of asymmetrically trimmed prespacers and the subsequent integration of spacers in the correct orientation. Our results demonstrate the kinetic coordination of prespacer precursor selection and PAM trimming, providing insight into the mechanisms that underlie the integration of functional spacers in the CRISPR loci.


Cas1-Cas2 selects precursor prespacers from DNA fragments in a length- and PAM-sequence-dependent manner, and these precursors are trimmed by DnaQ exonucleases to enable integration into the CRISPR locus in the correct orientation.


  
Structural basis of ligand recognition and self-activation of orphan GPR52 期刊论文
NATURE, 2020
作者:  Liu, Guoxia;  Papa, Arianne;  Katchman, Alexander N.;  Zakharov, Sergey I.;  Roybal, Daniel;  Hennessey, Jessica A.;  Kushner, Jared;  Yang, Lin;  Chen, Bi-Xing;  Kushnir, Alexander;  Dangas, Katerina;  Gygi, Steven P.;  Pitt, Geoffrey S.;  Colecraft, Henry M.;  Ben-Johny, Manu;  Kalocsay, Marian;  Marx, Steven O.
收藏  |  浏览/下载:10/0  |  提交时间:2020/07/03

Structures of the orphan G-protein-coupled receptor GPR52 in ligand-free, G-protein-coupled and ligand-bound states reveal that extracellular loop 2 occupies the orthosteric binding pocket and functions as a built-in agonist to activate the receptor.


GPR52 is a class-A orphan G-protein-coupled receptor that is highly expressed in the brain and represents a promising therapeutic target for the treatment of Huntington'  s disease and several psychiatric disorders(1,2). Pathological malfunction of GPR52 signalling occurs primarily through the heterotrimeric G(s) protein(2), but it is unclear how GPR52 and G(s) couple for signal transduction and whether a native ligand or other activating input is required. Here we present the high-resolution structures of human GPR52 in three states: a ligand-free state, a G(s)-coupled self-activation state and a potential allosteric ligand-bound state. Together, our structures reveal that extracellular loop 2 occupies the orthosteric binding pocket and operates as a built-in agonist, conferring an intrinsically high level of basal activity to GPR52(3). A fully active state is achieved when G(s) is coupled to GPR52 in the absence of an external agonist. The receptor also features a side pocket for ligand binding. These insights into the structure and function of GPR52 could improve our understanding of other self-activated GPCRs, enable the identification of endogenous and tool ligands, and guide drug discovery efforts that target GPR52.