A novel viral vaccine platform based on engineered transfer RNA
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Hao Zheng | Tong-Yun Wang | Z. Tian | Xue-Hui Cai | Yandong Tang | Guo-Ju Sang | Hongliang Zhang | Fan-Dan Meng | Zhi-Jun Tian
[1] H. Liu,et al. Neuropilin-1 Facilitates Pseudorabies Virus Replication and Viral Glycoprotein B Promotes Its Degradation in a Furin-Dependent Manner , 2022, Journal of virology.
[2] Shujie Wang,et al. Generation of Premature Termination Codon (PTC)-Harboring Pseudorabies Virus (PRV) via Genetic Code Expansion Technology , 2022, Viruses.
[3] Jerome H. Kim,et al. Vaccine development for emerging infectious diseases , 2021, Nature Medicine.
[4] Jincun Zhao,et al. Evaluating angiotensin-converting enzyme 2-mediated SARS-CoV-2 entry across species , 2021, Journal of Biological Chemistry.
[5] A. Pollard,et al. A guide to vaccinology: from basic principles to new developments , 2020, Nature reviews. Immunology.
[6] A. Pollard,et al. A guide to vaccinology: from basic principles to new developments , 2020, Nature Reviews Immunology.
[7] Matthew S. Miller,et al. Immunological considerations for COVID-19 vaccine strategies , 2020, Nature Reviews Immunology.
[8] Yongqiang Deng,et al. Construction and characterization of UAA-controlled recombinant Zika virus by genetic code expansion , 2020, Science China Life Sciences.
[9] Tong-Yun Wang,et al. Isobavachalcone inhibits Pseudorabies virus by impairing virus-induced cell-to-cell fusion , 2020, Virology Journal.
[10] Kai Zhao,et al. A pneumonia outbreak associated with a new coronavirus of probable bat origin , 2020, Nature.
[11] F. Meng,et al. Trypsin promotes porcine deltacoronavirus mediating cell-to-cell fusion in a cell type-dependent manner , 2020, Emerging microbes & infections.
[12] Wu Tong,et al. Construction of an infectious bacterial artificial chromosome clone of a pseudorabies virus variant: Reconstituted virus exhibited wild-type properties in vitro and in vivo. , 2018, Journal of virological methods.
[13] J. Lueck,et al. Engineered transfer RNAs for suppression of premature termination codons , 2018, Nature Communications.
[14] D. Weissman,et al. mRNA vaccines — a new era in vaccinology , 2018, Nature Reviews Drug Discovery.
[15] Jason W. Chin,et al. Expanding and reprogramming the genetic code , 2017, Nature.
[16] Nanxi Wang,et al. Controlling Multicycle Replication of Live-Attenuated HIV-1 Using an Unnatural Genetic Switch. , 2017, ACS synthetic biology.
[17] J. Briggs,et al. The structure and flexibility of conical HIV-1 capsids determined within intact virions , 2016, Science.
[18] Bo Zhang,et al. Generation of influenza A viruses as live but replication-incompetent virus vaccines , 2016, Science.
[19] B. Klupp,et al. Functional Relevance of the N-Terminal Domain of Pseudorabies Virus Envelope Glycoprotein H and Its Interaction with Glycoprotein L , 2016, Journal of Virology.
[20] Lihe Zhang,et al. CRISPRi-Manipulation of Genetic Code Expansion via RF1 for Reassignment of Amber Codon in Bacteria , 2016, Scientific Reports.
[21] Jason W. Chin,et al. Efficient Multisite Unnatural Amino Acid Incorporation in Mammalian Cells via Optimized Pyrrolysyl tRNA Synthetase/tRNA Expression and Engineered eRF1 , 2014, Journal of the American Chemical Society.
[22] Stephan Günther,et al. Emergence of Zaire Ebola virus disease in Guinea. , 2014, The New England journal of medicine.
[23] N. Shen,et al. Equine Viperin Restricts Equine Infectious Anemia Virus Replication by Inhibiting the Production and/or Release of Viral Gag, Env, and Receptor via Distortion of the Endoplasmic Reticulum , 2014, Journal of Virology.
[24] J. Chin,et al. Expanding and reprogramming the genetic code of cells and animals. , 2014, Annual review of biochemistry.
[25] Nanxi Wang,et al. Construction of a live-attenuated HIV-1 vaccine through genetic code expansion. , 2014, Angewandte Chemie.
[26] Lin Li,et al. Site-specific engineering of chemical functionalities on the surface of live hepatitis D virus. , 2013, Angewandte Chemie.
[27] P. Schultz,et al. A versatile platform for single- and multiple-unnatural amino acid mutagenesis in Escherichia coli. , 2013, Biochemistry.
[28] A. Osterhaus,et al. Isolation of a novel coronavirus from a man with pneumonia in Saudi Arabia. , 2012, The New England journal of medicine.
[29] R. Andino,et al. Rationalizing the development of live attenuated virus vaccines , 2010, Nature Biotechnology.
[30] Peter G Schultz,et al. An enhanced system for unnatural amino acid mutagenesis in E. coli. , 2010, Journal of molecular biology.
[31] J. Chin,et al. Evolved orthogonal ribosomes enhance the efficiency of synthetic genetic code expansion , 2007, Nature Biotechnology.
[32] D. Cane,et al. The nonsense-mediated decay RNA surveillance pathway. , 2007, Annual review of biochemistry.
[33] Rino Rappuoli,et al. Vaccine manufacturing: challenges and solutions , 2006, Nature Biotechnology.
[34] S. Ellenberg,et al. A global perspective on vaccine safety and public health: the Global Advisory Committee on Vaccine Safety. , 2004, American journal of public health.
[35] A. Danchin,et al. The Severe Acute Respiratory Syndrome , 2003 .
[36] Christian Drosten,et al. Identification of a novel coronavirus in patients with severe acute respiratory syndrome. , 2003, The New England journal of medicine.
[37] B. Klupp,et al. Pseudorabies Virus Glycoprotein M Inhibits Membrane Fusion , 2000, Journal of Virology.