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On the performance of Sentinel‐3 altimetry over new reservoirs: Approaches to determine on‐board a‐priori elevation 期刊论文
Geophysical Research Letters, 2020
作者:  Xingxing Zhang;  Liguang Jiang;  ;  cile M. M. Kittel;  Zhijun Yao;  Karina Nielsen;  Zhaofei Liu;  Rui Wang;  Jun Liu;  Ole B. Andersen;  Peter Bauer‐;  Gottwein
收藏  |  浏览/下载:7/0  |  提交时间:2020/08/25
Characterization of submicron particles by time-of-flight aerosol chemical speciation monitor (ToF-ACSM) during wintertime: aerosol composition, sources, and chemical processes in Guangzhou, China 期刊论文
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2020, 20 (12) : 7595-7615
作者:  Guo, Junchen;  Zhou, Shengzhen;  Cai, Mingfu;  Zhao, Jun;  Song, Wei;  Zhao, Weixiong;  Hu, Weiwei;  Sun, Yele;  He, Yao;  Yang, Chengqiang;  Xu, Xuezhe;  Zhang, Zhisheng;  Cheng, Peng;  Fan, Qi;  Hang, Jian;  Fan, Shaojia;  Wang, Xinming;  Wang, Xuemei
收藏  |  浏览/下载:19/0  |  提交时间:2020/07/06
Structures of cell wall arabinosyltransferases with the anti-tuberculosis drug ethambutol 期刊论文
Science, 2020
作者:  Lu Zhang;  Yao Zhao;  Yan Gao;  Lijie Wu;  Ruogu Gao;  Qi Zhang;  Yinan Wang;  Chengyao Wu;  Fangyu Wu;  Sudagar S. Gurcha;  Natacha Veerapen;  Sarah M. Batt;  Wei Zhao;  Ling Qin;  Xiuna Yang;  Manfu Wang;  Yan Zhu;  Bing Zhang;  Lijun Bi;  Xian’en Zhang;  Haitao Yang;  Luke W. Guddat;  Wenqing Xu;  Quan Wang;  Jun Li;  Gurdyal S. Besra;  Zihe Rao
收藏  |  浏览/下载:10/0  |  提交时间:2020/06/16
Chesapeake Bay acidification buffered by spatially decoupled carbonate mineral cycling 期刊论文
NATURE GEOSCIENCE, 2020, 13 (6) : 441-+
作者:  Su, Jianzhong;  Cai, Wei-Jun;  Brodeur, Jean;  Chen, Baoshan;  Hussain, Najid;  Yao, Yichen;  Ni, Chaoying;  Testa, Jeremy M.;  Li, Ming;  Xie, Xiaohui;  Ni, Wenfei;  Scaboo, K. Michael;  Xu, Yuan-yuan;  Cornwell, Jeffrey;  Gurbisz, Cassie;  Owens, Michael S.;  Waldbusser, George G.;  Dai, Minhan;  Kemp, W. Michael
收藏  |  浏览/下载:9/0  |  提交时间:2020/06/09
Structure of the RNA-dependent RNA polymerase from COVID-19 virus 期刊论文
Science, 2020
作者:  Yan Gao;  Liming Yan;  Yucen Huang;  Fengjiang Liu;  Yao Zhao;  Lin Cao;  Tao Wang;  Qianqian Sun;  Zhenhua Ming;  Lianqi Zhang;  Ji Ge;  Litao Zheng;  Ying Zhang;  Haofeng Wang;  Yan Zhu;  Chen Zhu;  Tianyu Hu;  Tian Hua;  Bing Zhang;  Xiuna Yang;  Jun Li;  Haitao Yang;  Zhijie Liu;  Wenqing Xu;  Luke W. Guddat;  Quan Wang;  Zhiyong Lou;  Zihe Rao
收藏  |  浏览/下载:16/0  |  提交时间:2020/05/20
Dynamic Pore-Scale Dissolution by CO2-Saturated Brine in Carbonates: Impact of Homogeneous Versus Fractured Versus Vuggy Pore Structure 期刊论文
WATER RESOURCES RESEARCH, 2020, 56 (4)
作者:  Yang, Yongfei;  Li, Yingwen;  Yao, Jun;  Iglauer, Stefan;  Luquot, Linda;  Zhang, Kai;  Sun, Hai;  Zhang, Lei;  Song, Wenhui;  Wang, Zhiyu
收藏  |  浏览/下载:10/0  |  提交时间:2020/07/02
Carbonate dissolution pattern  Carbon storage  Pore-scale  Micro-CT  Permeability changes  Pe -Da distribution  
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.


  
Live-animal imaging of native haematopoietic stem and progenitor cells 期刊论文
NATURE, 2020, 578 (7794) : 278-+
作者:  Gerstung, Moritz;  Jolly, Clemency;  Leshchiner, Ignaty;  Dentro, Stefan C.;  Gonzalez, Santiago;  Rosebrock, Daniel;  Mitchell, Thomas J.;  Rubanova, Yulia;  Anur, Pavana;  Yu, Kaixian;  Tarabichi, Maxime;  Deshwar, Amit;  Wintersinger, Jeff;  Kleinheinz, Kortine;  Vazquez-Garcia, Ignacio;  Haase, Kerstin;  Jerman, Lara;  Sengupta, Subhajit;  Macintyre, Geoff;  Malikic, Salem;  Donmez, Nilgun;  Livitz, Dimitri G.;  Cmero, Marek;  Demeulemeester, Jonas;  Schumacher, Steven;  Fan, Yu;  Yao, Xiaotong;  Lee, Juhee;  Schlesner, Matthias;  Boutros, Paul C.;  Bowtell, David D.;  Zhu, Hongtu;  Getz, Gad;  Imielinski, Marcin;  Beroukhim, Rameen;  Sahinalp, S. Cenk;  Ji, Yuan;  Peifer, Martin;  Markowetz, Florian;  Mustonen, Ville;  Yuan, Ke;  Wang, Wenyi;  Morris, Quaid D.;  Spellman, Paul T.;  Wedge, David C.;  Van Loo, Peter;  Deshwar, Amit G.;  Adams, David J.;  Campbell, Peter J.;  Cao, Shaolong;  Christie, Elizabeth L.;  Cun, Yupeng;  Dawson, Kevin J.;  Drews, Ruben M.;  Eils, Roland;  Fittall, Matthew;  Garsed, Dale W.;  Ha, Gavin;  Lee-Six, Henry;  Martincorena, Inigo;  Oesper, Layla;  Peto, Myron;  Raphael, Benjamin J.;  Salcedo, Adriana;  Shi, Ruian;  Shin, Seung Jun;  Spiro, Oliver;  Stein, Lincoln D.;  Vembu, Shankar;  Wheeler, David A.;  Yang, Tsun-Po
收藏  |  浏览/下载:15/0  |  提交时间:2020/07/03

The biology of haematopoietic stem cells (HSCs) has predominantly been studied under transplantation conditions(1,2). It has been particularly challenging to study dynamic HSC behaviour, given that the visualization of HSCs in the native niche in live animals has not, to our knowledge, been achieved. Here we describe a dual genetic strategy in mice that restricts reporter labelling to a subset of the most quiescent long-term HSCs (LT-HSCs) and that is compatible with current intravital imaging approaches in the calvarial bone marrow(3-5). We show that this subset of LT-HSCs resides close to both sinusoidal blood vessels and the endosteal surface. By contrast, multipotent progenitor cells (MPPs) show greater variation in distance from the endosteum and are more likely to be associated with transition zone vessels. LT-HSCs are not found in bone marrow niches with the deepest hypoxia and instead are found in hypoxic environments similar to those of MPPs. In vivo time-lapse imaging revealed that LT-HSCs at steady-state show limited motility. Activated LT-HSCs show heterogeneous responses, with some cells becoming highly motile and a fraction of HSCs expanding clonally within spatially restricted domains. These domains have defined characteristics, as HSC expansion is found almost exclusively in a subset of bone marrow cavities with bone-remodelling activity. By contrast, cavities with low bone-resorbing activity do not harbour expanding HSCs. These findings point to previously unknown heterogeneity within the bone marrow microenvironment, imposed by the stages of bone turnover. Our approach enables the direct visualization of HSC behaviours and dissection of heterogeneity in HSC niches.


A dual genetic strategy enables the labelling and in vivo imaging of native long-term haematopoietic stem cells in the mouse calvarial bone marrow.


  
Glucagon stimulates gluconeogenesis by INSP3R1-mediated hepatic lipolysis 期刊论文
NATURE, 2020, 579 (7798) : 279-+
作者:  Liu, Xiaomeng;  Gao, Hongyan;  Ward, Joy E.;  Liu, Xiaorong;  Yin, Bing;  Fu, Tianda;  Chen, Jianhan;  Lovley, Derek R.;  Yao, Jun
收藏  |  浏览/下载:15/0  |  提交时间:2020/07/03

Although it is well-established that reductions in the ratio of insulin to glucagon in the portal vein have a major role in the dysregulation of hepatic glucose metabolism in type-2 diabetes(1-3), the mechanisms by which glucagon affects hepatic glucose production and mitochondrial oxidation are poorly understood. Here we show that glucagon stimulates hepatic gluconeogenesis by increasing the activity of hepatic adipose triglyceride lipase, intrahepatic lipolysis, hepatic acetyl-CoA content and pyruvate carboxylase flux, while also increasing mitochondrial fat oxidation-all of which are mediated by stimulation of the inositol triphosphate receptor 1 (INSP3R1). In rats and mice, chronic physiological increases in plasma glucagon concentrations increased mitochondrial oxidation of fat in the liver and reversed diet-induced hepatic steatosis and insulin resistance. However, these effects of chronic glucagon treatment-reversing hepatic steatosis and glucose intolerance-were abrogated in Insp3r1 (also known as Itpr1)-knockout mice. These results provide insights into glucagon biology and suggest that INSP3R1 may represent a target for therapies that aim to reverse nonalcoholic fatty liver disease and type-2 diabetes.