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Global cooling induced by biophysical effects of bioenergy crop cultivation 期刊论文
Nature Communications, 2021
作者:  Wang, Jingmeng;  Li, Wei;  Ciais, Philippe;  Li, Laurent Z. X.;  Chang, Jinfeng;  Goll, Daniel;  Gasser, Thomas;  Huang, Xiaomeng;  Devaraju, Narayanappa;  Boucher, Olivier
收藏  |  浏览/下载:19/0  |  提交时间:2022/01/14
Projecting heat-related excess mortality under climate change scenarios in China 期刊论文
Nature Communications, 2021
作者:  Jun Yang;  Maigeng Zhou;  Zhoupeng Ren;  Mengmeng Li;  Boguang Wang;  De Li Liu;  Chun-Quan Ou;  Peng Yin;  Jimin Sun;  Shilu Tong;  Hao Wang;  Chunlin Zhang;  Jinfeng Wang;  Yuming Guo;  Qiyong Liu
收藏  |  浏览/下载:12/0  |  提交时间:2021/02/22
A comprehensive quantification of global nitrous oxide sources and sinks 期刊论文
Nature, 2020
作者:  Hanqin Tian;  Rongting Xu;  Josep G. Canadell;  Rona L. Thompson;  Wilfried Winiwarter;  Parvadha Suntharalingam;  Eric A. Davidson;  Philippe Ciais;  Robert B. Jackson;  Greet Janssens-Maenhout;  Michael J. Prather;  Pierre Regnier;  Naiqing Pan;  Shufen Pan;  Glen P. Peters;  Hao Shi;  Francesco N. Tubiello;  ;  nke Zaehle;  Feng Zhou;  Almut Arneth;  Gianna Battaglia;  Sarah Berthet;  Laurent Bopp;  Alexander F. Bouwman;  Erik T. Buitenhuis;  Jinfeng Chang;  Martyn P. Chipperfield;  Shree R. S. Dangal;  Edward Dlugokencky;  James W. Elkins;  Bradley D. Eyre;  Bojie Fu;  Bradley Hall;  Akihiko Ito;  Fortunat Joos;  Paul B. Krummel;  Angela Landolfi;  Goulven G. Laruelle;  Ronny Lauerwald;  Wei Li;  Sebastian Lienert;  Taylor Maavara;  Michael MacLeod;  Dylan B. Millet;  Stefan Olin;  Prabir K. Patra;  Ronald G. Prinn;  Peter A. Raymond;  Daniel J. Ruiz;  Guido R. van der Werf;  Nicolas Vuichard;  Junjie Wang;  Ray F. Weiss;  Kelley C. Wells;  Chris Wilson;  Jia Yang;  Yuanzhi Yao
收藏  |  浏览/下载:23/0  |  提交时间:2020/10/12
Transparent ferroelectric crystals with ultrahigh piezoelectricity 期刊论文
NATURE, 2020, 577 (7790) : 350-+
作者:  Qiu, Chaorui;  Wang, Bo;  Zhang, Nan;  Zhang, Shujun;  Liu, Jinfeng;  Walker, David;  Wang, Yu;  Tian, Hao;  Shrout, Thomas R.;  Xu, Zhuo;  Chen, Long-Qing;  Li, Fei
收藏  |  浏览/下载:16/0  |  提交时间:2020/07/03

Transparent piezoelectrics are highly desirable for numerous hybrid ultrasound-optical devices ranging from photoacoustic imaging transducers to transparent actuators for haptic applications(1-7). However, it is challenging to achieve high piezoelectricity and perfect transparency simultaneously because most high-performance piezoelectrics are ferroelectrics that contain high-density light-scattering domain walls. Here, through a combination of phase-field simulations and experiments, we demonstrate a relatively simple method of using an alternating-current electric field to engineer the domain structures of originally opaque rhombohedral Pb(Mg1/3Nb2/3)O-3-PbTiO3 (PMN-PT) crystals to simultaneously generate near-perfect transparency, an ultrahigh piezoelectric coefficient d(33) (greater than 2,100 picocoulombs per newton), an excellent electromechanical coupling factor k(33) (about 94 per cent) and a large electro-optical coefficient gamma(33) (approximately 220 picometres per volt), which is far beyond the performance of the commonly used transparent ferroelectric crystal LiNbO3. We find that increasing the domain size leads to a higher d(33) value for the [001]-oriented rhombohedral PMN-PT crystals, challenging the conventional wisdom that decreasing the domain size always results in higher piezoelectricity(8-10). This work presents a paradigm for achieving high transparency and piezoelectricity by ferroelectric domain engineering, and we expect the transparent ferroelectric crystals reported here to provide a route to a wide range of hybrid device applications, such as medical imaging, self-energy-harvesting touch screens and invisible robotic devices.


  
Rainfall manipulation experiments as simulated by terrestrial biosphere models: Where do we stand? 期刊论文
Global Change Biology, 2020
作者:  Athanasios Paschalis;  Simone Fatichi;  Jakob Zscheischler;  Philippe Ciais;  Michael Bahn;  Lena Boysen;  Jinfeng Chang;  Martin De Kauwe;  Marc Estiarte;  Daniel Goll;  Paul J. Hanson;  Anna B. Harper;  Enqing Hou;  Jaime Kigel;  Alan K. Knapp;  Klaus S. Larsen;  Wei Li;  Sebastian Lienert;  Yiqi Luo;  Patrick Meir;  Julia E. M. S. Nabel;  Romà;  Ogaya;  Anthony J. Parolari;  Changhui Peng;  Josep Peñ;  uelas;  Julia Pongratz;  Serge Rambal;  Inger K. Schmidt;  Hao Shi;  Marcelo Sternberg;  Hanqin Tian;  Elisabeth Tschumi;  Anna Ukkola;  Sara Vicca;  Nicolas Viovy;  Ying‐;  Ping Wang;  Zhuonan Wang;  Karina Williams;  Donghai Wu;  Qiuan Zhu
收藏  |  浏览/下载:9/0  |  提交时间:2020/05/13
PIK3CA variants selectively initiate brain hyperactivity during gliomagenesis 期刊论文
NATURE, 2020, 578 (7793) : 166-+
作者:  Qiu, Chaorui;  Wang, Bo;  Zhang, Nan;  Zhang, Shujun;  Liu, Jinfeng;  Walker, David;  Wang, Yu;  Tian, Hao;  Shrout, Thomas R.;  Xu, Zhuo;  Chen, Long-Qing;  Li, Fei
收藏  |  浏览/下载:6/0  |  提交时间:2020/07/03

Glioblastoma is a universally lethal form of brain cancer that exhibits an array of pathophysiological phenotypes, many of which are mediated by interactions with the neuronal microenvironment(1,2). Recent studies have shown that increases in neuronal activity have an important role in the proliferation and progression of glioblastoma(3,4). Whether there is reciprocal crosstalk between glioblastoma and neurons remains poorly defined, as the mechanisms that underlie how these tumours remodel the neuronal milieu towards increased activity are unknown. Here, using a native mouse model of glioblastoma, we develop a high-throughput in vivo screening platform and discover several driver variants of PIK3CA. We show that tumours driven by these variants have divergent molecular properties that manifest in selective initiation of brain hyperexcitability and remodelling of the synaptic constituency. Furthermore, secreted members of the glypican (GPC) family are selectively expressed in these tumours, and GPC3 drives gliomagenesis and hyperexcitability. Together, our studies illustrate the importance of functionally interrogating diverse tumour phenotypes driven by individual, yet related, variants and reveal how glioblastoma alters the neuronal microenvironment.


Glioblastoma tumours expressing oncogenic PIK3CA variants secrete the glycan GPC3, which promotes the formation of neural synapses, brain synaptic hyperexcitability and gliomagenesis.


  
Weakened growth of cropland-N2O emissions in China associated with nationwide policy interventions 期刊论文
GLOBAL CHANGE BIOLOGY, 2019, 25 (11) : 3706-3719
作者:  Shang, Ziyin;  Zhou, Feng;  Smith, Pete;  Saikawa, Eri;  Ciais, Philippe;  Chang, Jinfeng;  Tian, Hanqin;  Del Grosso, Stephen J.;  Ito, Akihiko;  Chen, Minpeng;  Wang, Qihui;  Bo, Yan;  Cui, Xiaoqing;  Castaldi, Simona;  Juszczak, Radoslaw;  Kasimir, Asa;  Magliulo, Vincenzo;  Medinets, Sergiy;  Medinets, Volodymyr;  Rees, Robert M.;  Wohlfahrt, Georg;  Sabbatini, Simone
收藏  |  浏览/下载:18/0  |  提交时间:2019/11/27
agricultural management  agricultural soils  emission inventory  flux upscaling  land surface model  nitrous oxide  policy analysis  temporal trend  
Ligand-triggered allosteric ADP release primes a plant NLR complex 期刊论文
SCIENCE, 2019, 364 (6435) : 43-+
作者:  Wang, Jizong;  Wang, Jia;  Hu, Meijuan;  Wu, Shan;  Qi, Jinfeng;  Wang, Guoxun;  Han, Zhifu;  Qi, Yijun;  Gao, Ning;  Wang, Hong-Wei;  Zhou, Jian-Min;  Chai, Jijie
收藏  |  浏览/下载:14/0  |  提交时间:2019/11/27
Reconstitution and structure of a plant NLR resistosome conferring immunity 期刊论文
SCIENCE, 2019, 364 (6435) : 44-+
作者:  Wang, Jizong;  Hu, Meijuan;  Wang, Jia;  Qi, Jinfeng;  Han, Zhifu;  Wang, Guoxun;  Qi, Yijun;  Wang, Hong-Wei;  Zhou, Jian-Min;  Chai, Jijie
收藏  |  浏览/下载:14/0  |  提交时间:2019/11/27
Temporal response of soil organic carbon after grassland-related land-use change 期刊论文
GLOBAL CHANGE BIOLOGY, 2018, 24 (10) : 4731-4746
作者:  Li, Wei;  Ciais, Philippe;  Guenet, Bertrand;  Peng, Shushi;  Chang, Jinfeng;  Chaplot, Vincent;  Khudyaev, Sergey;  Peregon, Anna;  Piao, Shilong;  Wang, Yilong;  Yue, Chao
收藏  |  浏览/下载:12/0  |  提交时间:2019/04/09
land-use and land-cover change  NPP  soil carbon response curve  soil organic carbon  temporal change