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Understanding the self-assembly and molecular structure of mRNA lipid nanoparticles at real size: Insights from the ultra-large-scale simulation Journal article
Wang, Ruifeng, Zhang, Yunsen, Zhong, Hao, Zang, Jieying, Wang, Wei, Cheng, He, Chen, Yongming, Ouyang, Defang. Understanding the self-assembly and molecular structure of mRNA lipid nanoparticles at real size: Insights from the ultra-large-scale simulation[J]. International Journal of Pharmaceutics, 2025, 670, 125114.
Authors:  Wang, Ruifeng;  Zhang, Yunsen;  Zhong, Hao;  Zang, Jieying;  Wang, Wei; et al.
Favorite | TC[WOS]:0 TC[Scopus]:0  IF:5.3/5.6 | Submit date:2025/01/22
Mrna  Lipid Nanoparticle  Real Size  Self-assembly  Coarse Graining  Molecular Dynamic Simulation  
Polyclonal-to-monoclonal transition in colorectal precancerous evolution Journal article
Lu, Zhaolian, Mo, Shanlan, Xie, Duo, Zhai, Xiangwei, Deng, Shanjun, Zhou, Kantian, Wang, Kun, Kang, Xueling, Zhang, Hao, Tong, Juanzhen, Hou, Liangzhen, Hu, Huijuan, Li, Xuefei, Zhou, Da, Lee, Leo Tsz On, Liu, Li, Zhu, Yaxi, Yu, Jing, Lan, Ping, Wang, Jiguang, He, Zhen, He, Xionglei, Hu, Zheng. Polyclonal-to-monoclonal transition in colorectal precancerous evolution[J]. Nature, 2024, 636(8041), 233–240.
Authors:  Lu, Zhaolian;  Mo, Shanlan;  Xie, Duo;  Zhai, Xiangwei;  Deng, Shanjun; et al.
Favorite | TC[WOS]:0 TC[Scopus]:0  IF:50.5/54.4 | Submit date:2024/12/05
Engineering Ruthenium Species on Metal–organic Frameworks for Water Electrolysis at Industrial Current Densities Journal article
Li, Dequan, Chen, Mingpeng, Liu, Di, Shen, Congcong, Sun, Huachuan, Zhang, Yuxiao, He, Tianwei, Lu, Qingjie, Li, Bo, Zhou, Tong, Wang, Bo Xue, Wu, Yuewen, Na, Guohao, Chen, Yun, Zhao, Jianhong, Zhang, Yumin, Zhang, Jin, Liu, Feng, Cui, Hao, Liu, Qingju. Engineering Ruthenium Species on Metal–organic Frameworks for Water Electrolysis at Industrial Current Densities[J]. Advanced Energy Materials, 2024.
Authors:  Li, Dequan;  Chen, Mingpeng;  Liu, Di;  Shen, Congcong;  Sun, Huachuan; et al.
Favorite | TC[WOS]:0 TC[Scopus]:0  IF:24.4/27.2 | Submit date:2024/12/26
Alkaline Hydrogen Evolution  Electrocatalyst  Industrial Current Density  Metal–organic Framework  Supported Metal  
Cyclododecane-based high-intactness and clean transfer method for fabricating suspended two-dimensional materials Journal article
Wang, Zhao, Liu, Wenlin, Shao, Jiaxin, Hao, He, Wang, Guorui, Zhao, Yixuan, Zhu, Yeshu, Jia, Kaicheng, Lu, Qi, Yang, Jiawei, Zhang, Yanfeng, Tong, Lianming, Song, Yuqing, Sun, Pengzhan, Mao, Boyang, Hu, Chenguo, Liu, Zhongfan, Lin, Li, Peng, Hailin. Cyclododecane-based high-intactness and clean transfer method for fabricating suspended two-dimensional materials[J]. Nature Communications, 2024, 15(1), 6957.
Authors:  Wang, Zhao;  Liu, Wenlin;  Shao, Jiaxin;  Hao, He;  Wang, Guorui; et al.
Favorite | TC[WOS]:0 TC[Scopus]:0  IF:14.7/16.1 | Submit date:2024/09/03
Ivacaftor, a CFTR potentiator, synergizes with osimertinib against acquired resistance to osimertinib in NSCLC by regulating CFTR-PTEN-AKT axis Journal article
Li, Yue Kang, Ge, Fu Jing, Liu, Xiang Ning, Zeng, Chen Ming, Qian, Mei Jia, Li, Yong Hao, Zheng, Ming Ming, Qu, Jing Jing, Fang, Liang Jie, Lu, Jin Jian, Yang, Bo, He, Qiao Jun, Zhou, Jian Ya, Zhu, Hong. Ivacaftor, a CFTR potentiator, synergizes with osimertinib against acquired resistance to osimertinib in NSCLC by regulating CFTR-PTEN-AKT axis[J]. Acta Pharmacologica Sinica, 2024.
Authors:  Li, Yue Kang;  Ge, Fu Jing;  Liu, Xiang Ning;  Zeng, Chen Ming;  Qian, Mei Jia; et al.
Favorite | TC[WOS]:1 TC[Scopus]:1  IF:6.9/7.6 | Submit date:2024/12/26
Acquired Resistance  Cftr  Ivacaftor  Nsclc  Osimertinib  
Shining light on atomic vacancies in electrocatalysts for boosted water splitting Journal article
Chen, Mingpeng, Sun, Huachuan, Lu, Qingjie, Li, Dequan, Liu, Di, Zhou, Tong, Zi, Baoye, Zheng, Hongshun, Xiao, Bin, He, Tianwei, Zhao, Jianhong, Zhang, Yumin, Zhang, Jin, Liu, Feng, Cui, Hao, Pan, Hui, Liu, Qingju. Shining light on atomic vacancies in electrocatalysts for boosted water splitting[J]. Chemical Engineering Journal, 2024, 497.
Authors:  Chen, Mingpeng;  Sun, Huachuan;  Lu, Qingjie;  Li, Dequan;  Liu, Di; et al.
Favorite | TC[WOS]:3 TC[Scopus]:3  IF:13.3/13.2 | Submit date:2024/12/26
Atomic vacancy  Characterization technique  Electrocatalytic water splitting  Mechanistic understanding  Synthetic method  
Shining light on atomic vacancies in electrocatalysts for boosted water splitting Review article
2024
Authors:  Chen, Mingpeng;  Sun, Huachuan;  Lu, Qingjie;  Li, Dequan;  Liu, Di; et al.
Favorite | TC[WOS]:3 TC[Scopus]:3  IF:13.3/13.2 | Submit date:2024/09/03
Atomic Vacancy  Characterization Technique  Electrocatalytic Water Splitting  Mechanistic Understanding  Synthetic Method  
MHCI trafficking signal-based mRNA vaccines strengthening immune protection against RNA viruses Journal article
Yupei Zhang, Songhui Zhai, Shugang Qin, Yuting Chen, Kepan Chen, Zhiying Huang, Xing Lan, Yaoyao Luo, Guohong Li, Hao Li, Xi He, Meiwan Chen, Zhongwei Zhang, Xingchen Peng, Xin Jiang, Hai Huang, Xiangrong Song. MHCI trafficking signal-based mRNA vaccines strengthening immune protection against RNA viruses[J]. Bioengineering & Translational Medicine, 2024, e10709.
Authors:  Yupei Zhang;  Songhui Zhai;  Shugang Qin;  Yuting Chen;  Kepan Chen; et al.
Favorite | TC[WOS]:0 TC[Scopus]:0  IF:6.1/7.2 | Submit date:2024/08/20
Framework  Immune Protection  Mitd  Mrna Vaccines  Rna Virus  
Macrophage plasticity: signaling pathways, tissue repair, and regeneration Journal article
Yan, Lingfeng, Wang, Jue, Cai, Xin, Liou, Yih Cherng, Shen, Han Ming, Hao, Jianlei, Huang, Canhua, Luo, Gaoxing, He, Weifeng. Macrophage plasticity: signaling pathways, tissue repair, and regeneration[J]. MEDCOMM, 2024, 5(8), e658.
Authors:  Yan, Lingfeng;  Wang, Jue;  Cai, Xin;  Liou, Yih Cherng;  Shen, Han Ming; et al.
Favorite | TC[WOS]:13 TC[Scopus]:16 | Submit date:2024/09/03
Epigenetic Regulation  Macrophages  Plasticity  Signaling Pathways  Tissue Repair  
High-Quality van der Waals Epitaxial CsPbBr3 Film Grown on Monolayer Graphene Covered TiO2 for High-Performance Solar Cells Journal article
Wen, Zhaorui, Liang, Chao, Li, Shengwen, Wang, Gang, He, Bingchen, Gu, Hao, Xie, Junpeng, Pan, Hui, Su, Zhenhuang, Gao, Xingyu, Hong, Guo, Chen, Shi. High-Quality van der Waals Epitaxial CsPbBr3 Film Grown on Monolayer Graphene Covered TiO2 for High-Performance Solar Cells[J]. ENERGY & ENVIRONMENTAL MATERIALS, 2024, 7(4), e12680.
Authors:  Wen, Zhaorui;  Liang, Chao;  Li, Shengwen;  Wang, Gang;  He, Bingchen; et al.
Favorite | TC[WOS]:9 TC[Scopus]:8  IF:13.0/14.1 | Submit date:2024/02/22
All-inorganic Perovskite Solar Cells  Buried Interface Modification  Monolayer Graphene  Van Der Waals Epitaxial Growth