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Measurement report: Amino acids in fine and coarse atmospheric aerosol: concentrations, compositions, sources and possible bacterial degradation state 期刊论文
Atmospheric Chemistry and Physics, 2020
作者:  Ren-guo Zhu, Hua-Yun Xiao, Li Luo, Hongwei Xiao, Zequn Wen, Yuwen Zhu, Xiaozheng Fang, Yuanyuan Pan, and Zhenping Chen
收藏  |  浏览/下载:13/0  |  提交时间:2020/08/09
Marine organic matter in the remote environment of the Cape Verde islands - an introduction and overview to the MarParCloud campaign 期刊论文
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2020, 20 (11) : 6921-6951
作者:  van Pinxteren, Manuela;  Fomba, Khanneh Wadinga;  Triesch, Nadja;  Stolle, Christian;  Wurl, Oliver;  Bahlmann, Enno;  Gong, Xianda;  Voigtlaender, Jens;  Wex, Heike;  Robinson, Tiera-Brandy;  Barthel, Stefan;  Zeppenfeld, Sebastian;  Hoffmann, Erik Hans;  Roveretto, Marie;  Li, Chunlin;  Grosselin, Benoit;  Daele, Veronique;  Senf, Fabian;  van Pinxteren, Dominik;  Manzi, Malena;  Zabalegui, Nicolas;  Frka, Sanja;  Gasparovic, Blazenka;  Pereira, Ryan;  Li, Tao;  Wen, Liang;  Li, Jiarong;  Zhu, Chao;  Chen, Hui;  Chen, Jianmin;  Fiedler, Bjoern;  Von Tuempling, Wolf;  Read, Katie Alana;  Punjabi, Shalini;  Lewis, Alastair Charles;  Hopkins, James Roland;  Carpenter, Lucy Jane;  Peeken, Ilka;  Rixen, Tim;  Schulz-Bull, Detlef;  Monge, Maria Eugenia;  Mellouki, Abdelwahid;  George, Christian;  Stratmann, Frank;  Herrmann, Hartmut
收藏  |  浏览/下载:23/0  |  提交时间:2020/08/18
Increased new particle yields with largely decreased probability of survival to CCN size at the summit of Mt. Tai under reduced SO2 emissions 期刊论文
Atmospheric Chemistry and Physics, 2020
作者:  Yujiao Zhu, Likun Xue, Jian Gao, Jianmin Chen, Hongyong Li, Yong Zhao, Zhaoxin Guo, Tianshu Chen, Liang Wen, Penggang Zheng, Ye Shan, Xinfeng Wang, Tao Wang, Xiaohong Yao, and Wenxing Wang
收藏  |  浏览/下载:20/0  |  提交时间:2020/05/20
Millennial-scale hydroclimate control of tropical soil carbon storage 期刊论文
NATURE, 2020, 581 (7806) : 63-+
作者:  Lam, Tommy Tsan-Yuk;  Jia, Na;  Zhang, Ya-Wei;  Shum, Marcus Ho-Hin;  Jiang, Jia-Fu;  Zhu, Hua-Chen;  Tong, Yi-Gang;  Shi, Yong-Xia;  Ni, Xue-Bing;  Liao, Yun-Shi;  Li, Wen-Juan;  Jiang, Bao-Gui;  Wei, Wei;  Yuan, Ting-Ting;  Zheng, Kui;  Cui, Xiao-Ming;  Li, Jie;  Pei, Guang-Qian
收藏  |  浏览/下载:25/0  |  提交时间:2020/05/13

Over the past 18,000 years, the residence time and amount of soil carbon stored in the Ganges-Brahmaputra basin have been controlled by the intensity of Indian Summer Monsoon rainfall, with greater carbon destabilization during wetter, warmer conditions.


The storage of organic carbon in the terrestrial biosphere directly affects atmospheric concentrations of carbon dioxide over a wide range of timescales. Within the terrestrial biosphere, the magnitude of carbon storage can vary in response to environmental perturbations such as changing temperature or hydroclimate(1), potentially generating feedback on the atmospheric inventory of carbon dioxide. Although temperature controls the storage of soil organic carbon at mid and high latitudes(2,3), hydroclimate may be the dominant driver of soil carbon persistence in the tropics(4,5)  however, the sensitivity of tropical soil carbon turnover to large-scale hydroclimate variability remains poorly understood. Here we show that changes in Indian Summer Monsoon rainfall have controlled the residence time of soil carbon in the Ganges-Brahmaputra basin over the past 18,000 years. Comparison of radiocarbon ages of bulk organic carbon and terrestrial higher-plant biomarkers with co-located palaeohydrological records(6) reveals a negative relationship between monsoon rainfall and soil organic carbon stocks on a millennial timescale. Across the deglaciation period, a depletion of basin-wide soil carbon stocks was triggered by increasing rainfall and associated enhanced soil respiration rates. Our results suggest that future hydroclimate changes in tropical regions are likely to accelerate soil carbon destabilization, further increasing atmospheric carbon dioxide concentrations.


  
Structural basis of energy transfer in Porphyridium purpureum phycobilisome 期刊论文
NATURE, 2020
作者:  Long, Haizhen;  Zhang, Liwei;  Lv, Mengjie;  Wen, Zengqi;  Zhang, Wenhao;  Chen, Xiulan;  Zhang, Peitao;  Li, Tongqing;  Chang, Luyuan;  Jin, Caiwei;  Wu, Guozhao;  Wang, Xi;  Yang, Fuquan;  Pei, Jianfeng;  Chen, Ping;  Margueron, Raphael;  Deng, Haiteng;  Zhu, Mingzhao;  Li, Guohong
收藏  |  浏览/下载:26/0  |  提交时间:2020/07/03

The cryo-electron microscopy structure of a phycobilisome from the red alga Porphyridium purpureum reveals how aromatic interactions between the linker proteins and the chromophores drive a unidirectional transfer of energy.


Photosynthetic organisms have developed various light-harvesting systems to adapt to their environments(1). Phycobilisomes are large light-harvesting protein complexes found in cyanobacteria and red algae(2-4), although how the energies of the chromophores within these complexes are modulated by their environment is unclear. Here we report the cryo-electron microscopy structure of a 14.7-megadalton phycobilisome with a hemiellipsoidal shape from the red alga Porphyridium purpureum. Within this complex we determine the structures of 706 protein subunits, including 528 phycoerythrin, 72 phycocyanin, 46 allophycocyanin and 60 linker proteins. In addition, 1,598 chromophores are resolved comprising 1,430 phycoerythrobilin, 48 phycourobilin and 120 phycocyanobilin molecules. The markedly improved resolution of our structure compared with that of the phycobilisome of Griffithsia pacifica(5) enabled us to build an accurate atomic model of the P. purpureum phycobilisome system. The model reveals how the linker proteins affect the microenvironment of the chromophores, and suggests that interactions of the aromatic amino acids of the linker proteins with the chromophores may be a key factor in fine-tuning the energy states of the chromophores to ensure the efficient unidirectional transfer of energy.


  
Gram-scale bottom-up flash graphene synthesis 期刊论文
NATURE, 2020, 577 (7792) : 647-651
作者:  Long, Haizhen;  Zhang, Liwei;  Lv, Mengjie;  Wen, Zengqi;  Zhang, Wenhao;  Chen, Xiulan;  Zhang, Peitao;  Li, Tongqing;  Chang, Luyuan;  Jin, Caiwei;  Wu, Guozhao;  Wang, Xi;  Yang, Fuquan;  Pei, Jianfeng;  Chen, Ping;  Margueron, Raphael;  Deng, Haiteng;  Zhu, Mingzhao;  Li, Guohong
收藏  |  浏览/下载:12/0  |  提交时间:2020/07/03

Most bulk-scale graphene is produced by a top-down approach, exfoliating graphite, which often requires large amounts of solvent with high-energy mixing, shearing, sonication or electrochemical treatment(1-3). Although chemical oxidation of graphite to graphene oxide promotes exfoliation, it requires harsh oxidants and leaves the graphene with a defective perforated structure after the subsequent reduction step(3,4). Bottom-up synthesis of high-quality graphene is often restricted to ultrasmall amounts if performed by chemical vapour deposition or advanced synthetic organic methods, or it provides a defect-ridden structure if carried out in bulk solution(4-6). Here we show that flash Joule heating of inexpensive carbon sources-such as coal, petroleum coke, biochar, carbon black, discarded food, rubber tyres and mixed plastic waste-can afford gram-scale quantities of graphene in less than one second. The product, named flash graphene (FG) after the process used to produce it, shows turbostratic arrangement (that is, little order) between the stacked graphene layers. FG synthesis uses no furnace and no solvents or reactive gases. Yields depend on the carbon content of the source  when using a high-carbon source, such as carbon black, anthracitic coal or calcined coke, yields can range from 80 to 90 per cent with carbon purity greater than 99 per cent. No purification steps are necessary. Raman spectroscopy analysis shows a low-intensity or absent D band for FG, indicating that FG has among the lowest defect concentrations reported so far for graphene, and confirms the turbostratic stacking of FG, which is clearly distinguished from turbostratic graphite. The disordered orientation of FG layers facilitates its rapid exfoliation upon mixing during composite formation. The electric energy cost for FG synthesis is only about 7.2 kilojoules per gram, which could render FG suitable for use in bulk composites of plastic, metals, plywood, concrete and other building materials.


Flash Joule heating of inexpensive carbon sources is used to produce gram-scale quantities of high-quality graphene in under a second, without the need for a furnace, solvents or reactive gases.


  
Large-scale ruminant genome sequencing provides insights into their evolution and distinct traits 期刊论文
SCIENCE, 2019, 364 (6446) : 1152-+
作者:  Chen, Lei;  Qin, Qiang;  Jiang, Yu;  Wang, Kun;  Lin, Zeshan;  Li, Zhipeng;  Bibi, Faysal;  Yang, Yongzhi;  Wang, Jinhuan;  Nie, Wenhui;  Su, Weiting;  Liu, Guichun;  Li, Qiye;  Fu, Weiwei;  Pan, Xiangyu;  Liu, Chang;  Yang, Jie;  Zhang, Chenzhou;  Yin, Yuan;  Wang, Yu;  Zhao, Yue;  Zhang, Chen;  Wang, Zhongkai;  Qin, Yanli;  Liu, Wei;  Wang, Bao;  Ren, Yandong;  Zhang, Ru;  Zeng, Yan;  da Fonseca, Rute R.;  Wei, Bin;  Li, Ran;  Wan, Wenting;  Zhao, Ruoping;  Zhu, Wenbo;  Wang, Yutao;  Duan, Shengchang;  Gao, Yun;  Zhang, Yong E.;  Chen, Chunyan;  Hvilsom, Christina;  Epps, Clinton W.;  Chemnick, Leona G.;  Doug, Yang;  Mirarab, Siavash;  Siegismund, Hans Redlef;  Ryder, Oliver A.;  Gilbert, M. Thomas P.;  Lewin, Harris A.;  Zhang, Guojie;  Heller, Rasmus;  Wang, Wen
收藏  |  浏览/下载:17/0  |  提交时间:2019/11/27
Biological adaptations in the Arctic cervid, the reindeer (Rangifer tarandus) 期刊论文
SCIENCE, 2019, 364 (6446) : 1154-+
作者:  Lin, Zeshan;  Chen, Lei;  Chen, Xianqing;  Zhong, Yingbin;  Yang, Yue;  Xia, Wenhao;  Liu, Chang;  Zhu, Wenbo;  Wang, Han;  Yan, Biyao;  Yang, Yifeng;  Liu, Xing;  Kvie, Kjersti Sternang;  Roed, Knut Hakon;  Wang, Kun;  Xiao, Wuhan;  Wei, Haijun;  Li, Guangyu;  Heller, Rasmus;  Gilbert, M. Thomas P.;  Qiu, Qiang;  Wang, Wen;  Li, Zhipeng
收藏  |  浏览/下载:11/0  |  提交时间:2019/11/27
Genetic basis of ruminant headgear and rapid antler regeneration 期刊论文
SCIENCE, 2019, 364 (6446) : 1153-+
作者:  Wang, Yu;  Zhang, Chenzhou;  Wang, Nini;  Li, Zhipeng;  Heller, Rasmus;  Liu, Rong;  Zhao, Yue;  Han, Jiangang;  Pan, Xiangyu;  Zheng, Zhuqing;  Dai, Xueqin;  Chen, Ceshi;  Dou, Mingle;  Peng, Shujun;  Chen, Xianqing;  Liu, Jing;  Li, Ming;  Wang, Kun;  Liu, Chang;  Lin, Zeshan;  Chen, Lei;  Hao, Fei;  Zhu, Wenbo;  Song, Chengchuang;  Zhao, Chen;  Zheng, Chengli;  Wang, Jianming;  Hu, Shengwei;  Li, Cunyuan;  Yang, Hui;  Jiang, Lin;  Li, Guangyu;  Liu, Mingjun;  Sonstegard, Tad S.;  Zhang, Guojie;  Jiang, Yu;  Wang, Wen;  Qiu, Qiang
收藏  |  浏览/下载:12/0  |  提交时间:2019/11/27
Stabilization of atmospheric nitrogen deposition in China over the past decade 期刊论文
NATURE GEOSCIENCE, 2019, 12 (6) : 424-+
作者:  Yu, Guirui;  Jia, Yanlong;  He, Nianpeng;  Zhu, Jianxing;  Chen, Zhi;  Wang, Qiufeng;  Piao, Shilong;  Liu, Xuejun;  He, Honglin;  Guo, Xuebing;  Wen, Zhang;  Li, Pan;  Ding, Guoan;  Goulding, Keith
收藏  |  浏览/下载:11/0  |  提交时间:2019/11/26