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Chinese sturgeon needs urgent rescue 期刊论文
Science, 2020
作者:  Xinfa Zhou;  Lu Chen;  Jing Yang;  Haiqing Wu
收藏  |  浏览/下载:13/0  |  提交时间:2020/12/07
Self-consistent kinetic model of nested electron- and ion-scale magnetic cavities in space plasmas 期刊论文
Nature Communications, 2020
作者:  Jing-Huan Li;  Fan Yang;  Xu-Zhi Zhou;  Qiu-Gang Zong;  Anton V. Artemyev;  Robert Rankin;  Quanqi Shi;  Shutao Yao;  Han Liu;  Jiansen He;  Zuyin Pu;  Chijie Xiao;  Ji Liu;  Craig Pollock;  Guan Le;  James L. Burch
收藏  |  浏览/下载:14/0  |  提交时间:2020/11/09
Large Chinese land carbon sink estimated from atmospheric carbon dioxide data 期刊论文
Nature, 2020
作者:  Jing Wang;  Liang Feng;  Paul I. Palmer;  Yi Liu;  Shuangxi Fang;  Hartmut Bö;  sch;  Christopher W. O’;  Dell;  Xiaoping Tang;  Dongxu Yang;  Lixin Liu;  ChaoZong Xia
收藏  |  浏览/下载:14/0  |  提交时间:2020/11/09
Global COVID-19 pandemic demands joint interventions for the suppression of future waves 期刊论文
Proceedings of the National Academy of Sciences, 2020
作者:  Ruiyun Li;  Bin Chen;  Tao Zhang;  Zhehao Ren;  Yimeng Song;  Yixiong Xiao;  Lin Hou;  Jun Cai;  Bo Xu;  Miao Li;  Karen Kie Yan Chan;  Ying Tu;  Mu Yang;  Jing Yang;  Zhaoyang Liu;  Chong Shen;  Che Wang;  Lei Xu;  Qiyong Liu;  Shuming Bao;  Jianqin Zhang;  Yuhai Bi;  Yuqi Bai;  Ke Deng;  Wusheng Zhang;  Wenyu Huang;  Jason D. Whittington;  Nils Chr. Stenseth;  Dabo Guan;  Peng Gong;  Bing Xu
收藏  |  浏览/下载:15/0  |  提交时间:2020/10/12
Genomic surveillance reveals multiple introductions of SARS-CoV-2 into Northern California 期刊论文
Science, 2020
作者:  Xianding Deng;  Wei Gu;  Scot Federman;  Louis du Plessis;  Oliver G. Pybus;  Nuno R. Faria;  Candace Wang;  Guixia Yu;  Brian Bushnell;  Chao-Yang Pan;  Hugo Guevara;  Alicia Sotomayor-Gonzalez;  Kelsey Zorn;  Allan Gopez;  Venice Servellita;  Elaine Hsu;  Steve Miller;  Trevor Bedford;  Alexander L. Greninger;  Pavitra Roychoudhury;  Lea M. Starita;  Michael Famulare;  Helen Y. Chu;  Jay Shendure;  Keith R. Jerome;  Catie Anderson;  Karthik Gangavarapu;  Mark Zeller;  Emily Spencer;  Kristian G. Andersen;  Duncan MacCannell;  Clinton R. Paden;  Yan Li;  Jing Zhang;  Suxiang Tong;  Gregory Armstrong;  Scott Morrow;  Matthew Willis;  Bela T. Matyas;  Sundari Mase;  Olivia Kasirye;  Maggie Park;  Godfred Masinde;  Curtis Chan;  Alexander T. Yu;  Shua J. Chai;  Elsa Villarino;  Brandon Bonin;  Debra A. Wadford;  Charles Y. Chiu
收藏  |  浏览/下载:15/0  |  提交时间:2020/08/09
Development of an inactivated vaccine candidate for SARS-CoV-2 期刊论文
Science, 2020
作者:  Qiang Gao;  Linlin Bao;  Haiyan Mao;  Lin Wang;  Kangwei Xu;  Minnan Yang;  Yajing Li;  Ling Zhu;  Nan Wang;  Zhe Lv;  Hong Gao;  Xiaoqin Ge;  Biao Kan;  Yaling Hu;  Jiangning Liu;  Fang Cai;  Deyu Jiang;  Yanhui Yin;  Chengfeng Qin;  Jing Li;  Xuejie Gong;  Xiuyu Lou;  Wen Shi;  Dongdong Wu;  Hengming Zhang;  Lang Zhu;  Wei Deng;  Yurong Li;  Jinxing Lu;  Changgui Li;  Xiangxi Wang;  Weidong Yin;  Yanjun Zhang;  Chuan Qin
收藏  |  浏览/下载:13/0  |  提交时间:2020/07/06
Amplified Madden-Julian oscillation impacts in the Pacific-North America region 期刊论文
NATURE CLIMATE CHANGE, 2020, 10 (7) : 654-+
作者:  Zhou, Wenyu;  Yang, Da;  Xie, Shang-Ping;  Ma, Jing
收藏  |  浏览/下载:9/0  |  提交时间:2020/07/06
Partitioning of cancer therapeutics in nuclear condensates 期刊论文
Science, 2020
作者:  Isaac A. Klein;  Ann Boija;  Lena K. Afeyan;  Susana Wilson Hawken;  Mengyang Fan;  Alessandra Dall'Agnese;  Ozgur Oksuz;  Jonathan E. Henninger;  Krishna Shrinivas;  Benjamin R. Sabari;  Ido Sagi;  Victoria E. Clark;  Jesse M. Platt;  Mrityunjoy Kar;  Patrick M. McCall;  Alicia V. Zamudio;  John C. Manteiga;  Eliot L. Coffey;  Charles H. Li;  Nancy M. Hannett;  Yang Eric Guo;  Tim-Michael Decker;  Tong Ihn Lee;  Tinghu Zhang;  Jing-Ke Weng;  Dylan J. Taatjes;  Arup Chakraborty;  Phillip A. Sharp;  Young Tae Chang;  Anthony A. Hyman;  Nathanael S. Gray;  Richard A. Young
收藏  |  浏览/下载:18/0  |  提交时间:2020/06/22
Electromechanical coupling in the hyperpolarization-activated K+ channel KAT1 期刊论文
NATURE, 2020, 583 (7814) : 145-+
作者:  Jin, Zhenming;  Du, Xiaoyu;  Xu, Yechun;  Deng, Yongqiang;  Liu, Meiqin;  Zhao, Yao;  Zhang, Bing;  Li, Xiaofeng;  Zhang, Leike;  Peng, Chao;  Duan, Yinkai;  Yu, Jing;  Wang, Lin;  Yang, Kailin;  Liu, Fengjiang;  Jiang, Rendi;  Yang, Xinglou;  You, Tian;  Liu, Xiaoce
收藏  |  浏览/下载:28/0  |  提交时间:2020/07/03

Voltage-gated potassium (K-v) channels coordinate electrical signalling and control cell volume by gating in response to membrane depolarization or hyperpolarization. However, although voltage-sensing domains transduce transmembrane electric field changes by a common mechanism involving the outward or inward translocation of gating charges(1-3), the general determinants of channel gating polarity remain poorly understood(4). Here we suggest a molecular mechanism for electromechanical coupling and gating polarity in non-domain-swapped K-v channels on the basis of the cryo-electron microscopy structure of KAT1, the hyperpolarization-activated K-v channel from Arabidopsis thaliana. KAT1 displays a depolarized voltage sensor, which interacts with a closed pore domain directly via two interfaces and indirectly via an intercalated phospholipid. Functional evaluation of KAT1 structure-guided mutants at the sensor-pore interfaces suggests a mechanism in which direct interaction between the sensor and the C-linker hairpin in the adjacent pore subunit is the primary determinant of gating polarity. We suggest that an inward motion of the S4 sensor helix of approximately 5-7 angstrom can underlie a direct-coupling mechanism, driving a conformational reorientation of the C-linker and ultimately opening the activation gate formed by the S6 intracellular bundle. This direct-coupling mechanism contrasts with allosteric mechanisms proposed for hyperpolarization-activated cyclic nucleotide-gated channels(5), and may represent an unexpected link between depolarization- and hyperpolarization-activated channels.


The cryo-electron microscopy structure of the hyperpolarization-activated K+ channel KAT1 points to a direct-coupling mechanism between S4 movement and the reorientation of the C-linker.


  
Feedback generates a second receptive field in neurons of the visual cortex 期刊论文
NATURE, 2020
作者:  Shi, Enzheng;  Yuan, Biao;  Shiring, Stephen B.;  Gao, Yao;  Akriti;  Guo, Yunfan;  Su, Cong;  Lai, Minliang;  Yang, Peidong;  Kong, Jing;  Savoie, Brett M.;  Yu, Yi;  Dou, Letian
收藏  |  浏览/下载:45/0  |  提交时间:2020/07/03

Animals sense the environment through pathways that link sensory organs to the brain. In the visual system, these feedforward pathways define the classical feedforward receptive field (ffRF), the area in space in which visual stimuli excite a neuron(1). The visual system also uses visual context-the visual scene surrounding a stimulus-to predict the content of the stimulus(2), and accordingly, neurons have been identified that are excited by stimuli outside their ffRF(3-8). However, the mechanisms that generate excitation to stimuli outside the ffRF are unclear. Here we show that feedback projections onto excitatory neurons in the mouse primary visual cortex generate a second receptive field that is driven by stimuli outside the ffRF. The stimulation of this feedback receptive field (fbRF) elicits responses that are slower and are delayed in comparison with those resulting from the stimulation of the ffRF. These responses are preferentially reduced by anaesthesia and by silencing higher visual areas. Feedback inputs from higher visual areas have scattered receptive fields relative to their putative targets in the primary visual cortex, which enables the generation of the fbRF. Neurons with fbRFs are located in cortical layers that receive strong feedback projections and are absent in the main input layer, which is consistent with a laminar processing hierarchy. The observation that large, uniform stimuli-which cover both the fbRF and the ffRF-suppress these responses indicates that the fbRF and the ffRF are mutually antagonistic. Whereas somatostatin-expressing inhibitory neurons are driven by these large stimuli, inhibitory neurons that express parvalbumin and vasoactive intestinal peptide have mutually antagonistic fbRF and ffRF, similar to excitatory neurons. Feedback projections may therefore enable neurons to use context to estimate information that is missing from the ffRF and to report differences in stimulus features across visual space, regardless of whether excitation occurs inside or outside the ffRF. By complementing the ffRF, the fbRF that we identify here could contribute to predictive processing.


Feedback projections onto neurons of the mouse primary visual cortex generate a second excitatory receptive field that is driven by stimuli outside of the classical feedforward receptive field, with responses mediated by higher visual areas.