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Spatiotemporal heterogeneity of aerosol and cloud properties over the southeast Atlantic: An observational analysis 期刊论文
Geophysical Research Letters, 2021
作者:  Ian Chang;  Lan Gao;  Sharon P. Burton;  Hong Chen;  Michael S. Diamond;  Richard A. Ferrare;  Connor J. Flynn;  Meloë;  Kacenelenbogen;  Samuel E. LeBlanc;  Kerry G. Meyer;  Kristina Pistone;  Sebastian Schmidt;  Michal Segal‐;  Rozenhaimer;  Yohei Shinozuka;  Robert Wood;  Paquita Zuidema;  Jens Redemann;  Sundar A. Christopher
收藏  |  浏览/下载:9/0  |  提交时间:2021/03/17
Spatial-temporal variations and process analysis of O-3 pollution in Hangzhou during the G20 summit 期刊论文
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2020, 20 (10) : 5963-5976
作者:  Ni, Zhi-Zhen;  Luo, Kun;  Gao, Yang;  Gao, Xiang;  Jiang, Fei;  Huang, Cheng;  Fan, Jian-Ren;  Fu, Joshua S.;  Chen, Chang-Hong
收藏  |  浏览/下载:7/0  |  提交时间:2020/05/20
Sustainable production of value-added carbon nanomaterials from biomass pyrolysis 期刊论文
NATURE SUSTAINABILITY, 2020
作者:  Zhang, Shun;  Jiang, Shun-Feng;  Huang, Bao-Cheng;  Shen, Xian-Cheng;  Chen, Wen-Jing;  Zhou, Tian-Pei;  Cheng, Hui-Yuan;  Cheng, Bin-Hai;  Wu, Chang-Zheng;  Li, Wen-Wei;  Jiang, Hong;  Yu, Han-Qing
收藏  |  浏览/下载:19/0  |  提交时间:2020/05/20
The water lily genome and the early evolution of flowering plants 期刊论文
NATURE, 2020, 577 (7788) : 79-+
作者:  Zhang, Liangsheng;  Chen, Fei;  Zhang, Xingtan;  Li, Zhen;  Zhao, Yiyong;  Lohaus, Rolf;  Chang, Xiaojun;  Dong, Wei;  Ho, Simon Y. W.;  Liu, Xing;  Song, Aixia;  Chen, Junhao;  Guo, Wenlei;  Wang, Zhengjia;  Zhuang, Yingyu;  Wang, Haifeng;  Chen, Xuequn;  Hu, Juan;  Liu, Yanhui;  Qin, Yuan;  Wang, Kai;  Dong, Shanshan;  Liu, Yang;  Zhang, Shouzhou;  Yu, Xianxian;  Wu, Qian;  Wang, Liangsheng;  Yan, Xueqing;  Jiao, Yuannian;  Kong, Hongzhi;  Zhou, Xiaofan;  Yu, Cuiwei;  Chen, Yuchu;  Li, Fan;  Wang, Jihua;  Chen, Wei;  Chen, Xinlu;  Jia, Qidong;  Zhang, Chi;  Jiang, Yifan;  Zhang, Wanbo;  Liu, Guanhua;  Fu, Jianyu;  Chen, Feng;  Ma, Hong;  Van de Peer, Yves;  Tang, Haibao
收藏  |  浏览/下载:11/0  |  提交时间:2020/07/03

Water lilies belong to the angiosperm order Nymphaeales. Amborellales, Nymphaeales and Austrobaileyales together form the so-called ANA-grade of angiosperms, which are extant representatives of lineages that diverged the earliest from the lineage leading to the extant mesangiosperms(1-3). Here we report the 409-megabase genome sequence of the blue-petal water lily (Nymphaea colorata). Our phylogenomic analyses support Amborellales and Nymphaeales as successive sister lineages to all other extant angiosperms. The N. colorata genome and 19 other water lily transcriptomes reveal a Nymphaealean whole-genome duplication event, which is shared by Nymphaeaceae and possibly Cabombaceae. Among the genes retained from this whole-genome duplication are homologues of genes that regulate flowering transition and flower development. The broad expression of homologues of floral ABCE genes in N. colorata might support a similarly broadly active ancestral ABCE model of floral organ determination in early angiosperms. Water lilies have evolved attractive floral scents and colours, which are features shared with mesangiosperms, and we identified their putative biosynthetic genes in N. colorata. The chemical compounds and biosynthetic genes behind floral scents suggest that they have evolved in parallel to those in mesangiosperms. Because of its unique phylogenetic position, the N. colorata genome sheds light on the early evolution of angiosperms.


  
B cells and tertiary lymphoid structures promote immunotherapy response 期刊论文
NATURE, 2020, 577 (7791) : 549-+
作者:  Zhang, Liangsheng;  Chen, Fei;  Zhang, Xingtan;  Li, Zhen;  Zhao, Yiyong;  Lohaus, Rolf;  Chang, Xiaojun;  Dong, Wei;  Ho, Simon Y. W.;  Liu, Xing;  Song, Aixia;  Chen, Junhao;  Guo, Wenlei;  Wang, Zhengjia;  Zhuang, Yingyu;  Wang, Haifeng;  Chen, Xuequn;  Hu, Juan;  Liu, Yanhui;  Qin, Yuan;  Wang, Kai;  Dong, Shanshan;  Liu, Yang;  Zhang, Shouzhou;  Yu, Xianxian;  Wu, Qian;  Wang, Liangsheng;  Yan, Xueqing;  Jiao, Yuannian;  Kong, Hongzhi;  Zhou, Xiaofan;  Yu, Cuiwei;  Chen, Yuchu;  Li, Fan;  Wang, Jihua;  Chen, Wei;  Chen, Xinlu;  Jia, Qidong;  Zhang, Chi;  Jiang, Yifan;  Zhang, Wanbo;  Liu, Guanhua;  Fu, Jianyu;  Chen, Feng;  Ma, Hong;  Van de Peer, Yves;  Tang, Haibao
收藏  |  浏览/下载:38/0  |  提交时间:2020/07/03

Multiomic profiling of several cohorts of patients treated with immune checkpoint blockade highlights the presence and potential role of B cells and tertiary lymphoid structures in promoting therapy response.


Treatment with immune checkpoint blockade (ICB) has revolutionized cancer therapy. Until now, predictive biomarkers(1-10) and strategies to augment clinical response have largely focused on the T cell compartment. However, other immune subsets may also contribute to anti-tumour immunity(11-15), although these have been less well-studied in ICB treatment(16). A previously conducted neoadjuvant ICB trial in patients with melanoma showed via targeted expression profiling(17) that B cell signatures were enriched in the tumours of patients who respond to treatment versus non-responding patients. To build on this, here we performed bulk RNA sequencing and found that B cell markers were the most differentially expressed genes in the tumours of responders versus non-responders. Our findings were corroborated using a computational method (MCP-counter(18)) to estimate the immune and stromal composition in this and two other ICB-treated cohorts (patients with melanoma and renal cell carcinoma). Histological evaluation highlighted the localization of B cells within tertiary lymphoid structures. We assessed the potential functional contributions of B cells via bulk and single-cell RNA sequencing, which demonstrate clonal expansion and unique functional states of B cells in responders. Mass cytometry showed that switched memory B cells were enriched in the tumours of responders. Together, these data provide insights into the potential role of B cells and tertiary lymphoid structures in the response to ICB treatment, with implications for the development of biomarkers and therapeutic targets.


  
Mesoscale Air-Sea Interaction and Its Role in Eddy Energy Dissipation in the Kuroshio Extension 期刊论文
JOURNAL OF CLIMATE, 2019, 32 (24) : 8659-8676
作者:  Yang, Haiyuan;  Chang, Ping;  Qui, Bo;  Zhang, Qiuying;  Wu, Lixin;  Chen, Zhaohui;  Wang, Hong
收藏  |  浏览/下载:9/0  |  提交时间:2020/02/17
Ocean  Atmosphere-ocean interaction  Eddies  Microscale processes  variability  Oceanic variability  
Large three-dimensional photonic crystals based on monocrystalline liquid crystal blue phases 期刊论文
NATURE COMMUNICATIONS, 2017, 8
作者:  Chen, Chun-Wei;  Hou, Chien-Tsung;  Li, Cheng-Chang;  Jau, Hung-Chang;  Wang, Chun-Ta;  Hong, Ching-Lang;  Guo, Duan-Yi;  Wang, Cheng-Yu;  Chiang, Sheng-Ping;  Bunning, Timothy J.;  Khoo, Iam-Choon;  Lin, Tsung-Hsien
收藏  |  浏览/下载:17/0  |  提交时间:2019/11/27
Magnetic signatures of natural and anthropogenic sources of urban dust aerosol 期刊论文
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2019, 19 (2) : 731-745
作者:  Liu, Haijiao;  Yan, Yan;  Chang, Hong;  Chen, Hongyun;  Liang, Lianji;  Liu, Xingxing;  Qiang, Xiaoke;  Sun, Youbin
收藏  |  浏览/下载:6/0  |  提交时间:2019/04/09
Effect of ISO-SSE Interaction on Accelerating the TS to Severe TS Development in the WNP since the Late 1990s 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2018, 45 (21) : 12008-12014
作者:  Hong, Chi-Cherng;  Tsou, Chih-Hua;  Lee, Ming-Ying;  Chang, Chi-Chun;  Hsu, Huang-Hsiung;  Chen, Kuan-Chieh
收藏  |  浏览/下载:22/0  |  提交时间:2019/04/09
An autoimmune disease variant of IgG1 modulates B cell activation and differentiation 期刊论文
SCIENCE, 2018, 362 (6415) : 700-+
作者:  Chen, Xiangjun;  Sun, Xiaolin;  Yang, Wei;  Yang, Bing;  Zhao, Xiaozhen;  Chen, Shuting;  He, Lili;  Chen, Hui;  Yang, Changmei;  Xiao, Le;  Chang, Zai;  Guo, Jianping;  He, Jing;  Zhang, Fuping;  Zheng, Fang;  Hu, Zhibin;  Yang, Zhiyong;  Lou, Jizhong;  Zheng, Wenjie;  Qi, Hai;  Xu, Chenqi;  Zhang, Hong;  Shan, Hongying;  Zhou, Xu-jie;  Wang, Qingwen;  Shi, Yi;  Lai, Luhua;  Li, Zhanguo;  Liu, Wanli
收藏  |  浏览/下载:13/0  |  提交时间:2019/11/27