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Environmental trade-offs of direct air capture technologies in climate change mitigation toward 2100 期刊论文
Nature Communications, 2022
作者:  Qiu, Yang;  Lamers, Patrick;  Daioglou, Vassilis;  McQueen, Noah;  de Boer, Harmen-Sytze;  Harmsen, Mathijs;  Wilcox, Jennifer;  Bardow, André;  Suh, Sangwon
收藏  |  浏览/下载:8/0  |  提交时间:2022/07/08
Association between Cold Spells and Mortality Risk and Burden: A Nationwide Study in China 期刊论文
Environmental Health Perspectives, 2022
作者:  Jian Lei;  Renjie Chen;  Peng Yin;  Xia Meng;  Lina Zhang;  Cong Liu;  Yang Qiu;  John S. Ji;  Haidong Kan;  Maigeng Zhou
收藏  |  浏览/下载:21/0  |  提交时间:2022/02/23
Noninvasive Dual-Modality Photoacoustic-Ultrasonic Imaging to Detect Mammalian Embryo Abnormalities after Prenatal Exposure to Methylmercury Chloride (MMC): A Mouse Study 期刊论文
Environmental Health Perspectives, 2022
作者:  Qi Qiu;  Yali Huang;  Bei Zhang;  Doudou Huang;  Xin Chen;  Zhongxiong Fan;  Jinpei Lin;  Wensheng Yang;  Kai Wang;  Ning Qu;  Juan Li;  Zhihong Li;  Jingyu Huang;  Shenrui Li;  Jiaxing Zhang;  Gang Liu;  Gang Rui;  Xiaoyuan Chen;  Qingliang Zhao
收藏  |  浏览/下载:15/0  |  提交时间:2022/02/16
Climate warming promotes deterministic assembly of arbuscular mycorrhizal fungal communities 期刊论文
Global Change Biology, 2021
作者:  Xinyu Xu;  Yunpeng Qiu;  Kangcheng Zhang;  Fei Yang;  Mengfei Chen;  Xi Luo;  Xuebin Yan;  Peng Wang;  Yi Zhang;  Huaihai Chen;  Hui Guo;  Lin Jiang;  Shuijin Hu
收藏  |  浏览/下载:19/0  |  提交时间:2021/11/15
Are deep aquifers really confined? 期刊论文
Water Resources Research, 2021
作者:  Yan Zhang;  Chi-Yuen Wang;  Li-Yun Fu;  Qiu-Ye Yang
收藏  |  浏览/下载:25/0  |  提交时间:2021/10/07
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
Nitrogen‐induced acidification, not N‐nutrient, dominates suppressive N effects on arbuscular mycorrhizal fungi 期刊论文
Global Change Biology, 2020
作者:  Shang Pan;  Yang Wang;  Yunpeng Qiu;  Dima Chen;  Lin Zhang;  Chenglong Ye;  Hui Guo;  Weixing Zhu;  Aiqun Chen;  Guohua Xu;  Yi Zhang;  Yongfei Bai;  Shuijin Hu
收藏  |  浏览/下载:9/0  |  提交时间:2020/09/30
Injured adult neurons regress to an embryonic transcriptional growth state 期刊论文
NATURE, 2020, 581 (7806) : 77-+
作者:  Wang, Ruicong;  Li, Hongda;  Wu, Jianfeng;  Cai, Zhi-Yu;  Li, Baizhou;  Ni, Hengxiao;  Qiu, Xingfeng;  Chen, Hui;  Liu, Wei;  Yang, Zhang-Hua;  Liu, Min;  Hu, Jin;  Liang, Yaoji;  Lan, Ping;  Han, Jiahuai;  Mo, Wei
收藏  |  浏览/下载:23/0  |  提交时间:2020/07/03

Grafts of spinal-cord-derived neural progenitor cells (NPCs) enable the robust regeneration of corticospinal axons and restore forelimb function after spinal cord injury(1)  however, the molecular mechanisms that underlie this regeneration are unknown. Here we perform translational profiling specifically of corticospinal tract (CST) motor neurons in mice, to identify their '  regenerative transcriptome'  after spinal cord injury and NPC grafting. Notably, both injury alone and injury combined with NPC grafts elicit virtually identical early transcriptomic responses in host CST neurons. However, in mice with injury alone this regenerative transcriptome is downregulated after two weeks, whereas in NPC-grafted mice this transcriptome is sustained. The regenerative transcriptome represents a reversion to an embryonic transcriptional state of the CST neuron. The huntingtin gene (Htt) is a central hub in the regeneration transcriptome  deletion of Htt significantly attenuates regeneration, which shows that Htt has a key role in neural plasticity after injury.


In mouse models of central nervous system injury, Htt is shown to be a key component of the regulatory program associated with reversion of the neuronal transcriptome to a less-mature state.


  
The gut-brain axis mediates sugar preference 期刊论文
NATURE, 2020, 580 (7804) : 511-+
作者:  Wang, Ruicong;  Li, Hongda;  Wu, Jianfeng;  Cai, Zhi-Yu;  Li, Baizhou;  Ni, Hengxiao;  Qiu, Xingfeng;  Chen, Hui;  Liu, Wei;  Yang, Zhang-Hua;  Liu, Min;  Hu, Jin;  Liang, Yaoji;  Lan, Ping;  Han, Jiahuai;  Mo, Wei
收藏  |  浏览/下载:17/0  |  提交时间:2020/07/03

The taste of sugar is one of the most basic sensory percepts for humans and other animals. Animals can develop a strong preference for sugar even if they lack sweet taste receptors, indicating a mechanism independent of taste(1-3). Here we examined the neural basis for sugar preference and demonstrate that a population of neurons in the vagal ganglia and brainstem are activated via the gut-brain axis to create preference for sugar. These neurons are stimulated in response to sugar but not artificial sweeteners, and are activated by direct delivery of sugar to the gut. Using functional imaging we monitored activity of the gut-brain axis, and identified the vagal neurons activated by intestinal delivery of glucose. Next, we engineered mice in which synaptic activity in this gut-to-brain circuit was genetically silenced, and prevented the development of behavioural preference for sugar. Moreover, we show that co-opting this circuit by chemogenetic activation can create preferences to otherwise less-preferred stimuli. Together, these findings reveal a gut-to-brain post-ingestive sugar-sensing pathway critical for the development of sugar preference. In addition, they explain the neural basis for differences in the behavioural effects of sweeteners versus sugar, and uncover an essential circuit underlying the highly appetitive effects of sugar.


Experiments in mice show that a population of neurons in the vagal ganglia respond to the presence of glucose in the gut and connect to neurons in the brainstem, revealing the circuit that underlies the neural basis for the behavioural preference for sugar.


  
A genome-wide association study identifies six novel risk loci for primary biliary cholangitis 期刊论文
NATURE COMMUNICATIONS, 2017, 8
作者:  Qiu, Fang;  Tang, Ruqi;  Zuo, Xianbo;  Shi, Xingjuan;  Wei, Yiran;  Zheng, Xiaodong;  Dai, Yaping;  Gong, Yuhua;  Wang, Lan;  Xu, Ping;  Zhu, Xiang;  Wu, Jian;  Han, Chongxu;  Gao, Yueqiu;  Zhang, Kui;  Jiang, Yuzhang;  Zhou, Jianbo;  Shao, Youlin;  Hu, Zhigang;  Tian, Ye;  Zhang, Haiyan;  Dai, Na;  Liu, Lei;  Wu, Xudong;  Zhao, Weifeng;  Zhang, Xiaomin;  Zang, Zhidong;  Nie, Jinshan;  Sun, Weihao;  Zhao, Yi;  Mao, Yuan;  Jiang, Po;  Ji, Hualiang;  Dong, Qing;  Li, Junming;  Li, Zhenzhong;  Bai, Xinli;  Li, Li;  Lin, Maosong;  Dong, Ming;  Li, Jinxin;  Zhu, Ping;  Wang, Chan;  Zhang, Yanqiu;  Jiang, Peng;  Wang, Yujue;  Jawed, Rohil;  Xu, Jing;  Zhang, Yu;  Wang, Qixia;  Yang, Yue;  Yang, Fan;  Lian, Min;  Jiang, Xiang;  Xiao, Xiao;  Li, Yanmei;  Fang, Jingyuan;  Qiu, Dekai;  Zhu, Zhen;  Qiu, Hong;  Zhang, Jianqiong;  Tian, Wenyan;  Chen, Sufang;  Jiang, Ling;  Ji, Bing;  Li, Ping;  Chen, Guochang;  Wu, Tianxue;  Sun, Yan;  Yu, Jianjiang;  Tang, Huijun;  He, Michun;  Xia, Min;  Pei, Hao;  Huang, Lihua;  Qing, Zhuye;  Wu, Jianfang;  Huang, Qinghai;  Han, Junhai;  Xie, Wei;  Sun, Zhongsheng;  Guo, Jian;  He, Gengsheng;  Gershwin, M. Eric;  Lian, Zhexiong;  Liu, Xiang;  Seldin, Michael F.;  Liu, Xiangdong;  Chen, Weichang;  Ma, Xiong
收藏  |  浏览/下载:18/0  |  提交时间:2019/11/27