以第一或通讯作者发表SCI收录论文60余篇、CSCD收录论文20余篇,其中,部分代表论文: [1] Duck plague virus-encoded microRNA dev-miR-D28-3p inhibits viral replication via targeting UL27[J].Veterinary Microbiology,2024, doi: 10.1016/j.vetmic.2024.110202. [2] Duck Tembusu virus NS3 protein induces apoptosis by activating the PERK/PKR pathway and mitochondrial pathway[J].Journal of Virology. 2023, doi: 10.1128/jvi.01497-23. [3] RNF123 Mediates Ubiquitination and Degradation of SOCS1 To Regulate Type I Interferon Production during Duck Tembusu Virus Infection[J].Journal of Virology, 2023,doi.org/10.1128/jvi.00095-23. [4] A novel live attenuated duck Tembusu virus vaccine targeting N7 methyltransferase protects ducklings against pathogenic strains[J].Veterinary Research. 2023, doi.org/10.1186/s13567-023-01170-0 [5] NS5 hijacks TRAF3 to inhibit type I interferon signaling during duck Tembusu virus infection[J].Veterinary Microbiology. 2023, doi: 10.1016/j.vetmic.2023.109894 [6] miR-146b-5p promotes duck Tembusu virus replication by targeting RPS14.Poultry Science.2023, doi.org/10.1016/j.psj.2023.102890. [7] Duck Circovirus genotype 2 ORF3 protein induces apoptosis through the mitochondrial pathway[J].Poultry Science. 2023, doi.org/10.1016/j.psj.2023.102533. [8] Flaviviruses: Innate Immunity, Inflammasome Activation, Inflammatory Cell Death, and Cytokines[J].Frontiers in Immunology. 2022, doi: 10.3389/fimmu.2022.829433. [9] Duck Tembusu Virus Infection Induces Mitochondrial-mediated and Death Receptor-mediated Apoptosis in Duck Embryo Fibroblasts[J].Veterinary Research. 2022. doi :10.1186/s13567-022-01070-9. [10] RNA-Seq analysis of duck embryo fbroblast cells gene expression during duck Tembusu virus infection[J].Veterinary Research,2022, doi.org/10.1186/s13567-022-01051-y. [11] The substitution at residue 218 of the NS5 protein methyltransferase domain of Tembusu virus impairs viral replication and translation and may triggers RIG-I-like receptor signaling[J].Poultry Science. 2022, doi.org/10.1016/j.psj.2022.102017. [12] Duck Tembusu Virus Inhibits Type I Interferon Production through the JOSD1-SOCS1-IRF7 Negative-Feedback Regulation Pathway[J].Journal of Virology, 2022, doi:10.1128/jvi.00930-22. [13] Molecular cloning, functional characterization of duck TRADD and its effect on infection with duck Tembusu virus[J].Veterinary Microbiology, 2022,doi.org/10.1016/j.vetmic.2022.109573. [14] Structure and function of capsid protein in flavivirus infection and its applications in the development of vaccines and therapeutics[J].Veterinary Research, 2021, doi: org/10.1186/s13567-021-00966-2. [15] Methyltransferase-Deficient Avian Flaviviruses Are Attenuated Due to Suppression of Viral RNA Translation and Induction of a Higher Innate Immunity[J].Frontiers in Immunology, 2021, doi: 10.3389/fimmu.2021.751688. [16] Duck Tembusu Virus Utilizes miR-221-3p Expression to Facilitate Viral Replication via Targeting of Suppressor of Cytokine Signaling 5[J].Front. Microbiol., 2020,doi.org/10.3389/fmicb.2020.00596. [17] Heterologous prime-boost: an important candidate immunization strategy against Tembusu virus[J].Virology Journal, 2020, doi:10.21203/rs.2.21818/v1. [18] Duck Tembusu virus promotes the expression of suppressor of cytokine signaling1by downregulating miR-148a-5p to facilitate virus replication[J].Infection, Genetics and Evolution. 2020, doi.org/10.1016/j. meegid. 2020. 104392. [19] Therapeutic effects of duck Tembusu virus capsid protein fused with staphylococcal nuclease protein to target Tembusu infection in vitro[J].Veterinary Microbiology, 2019, 235: 295-300. [20] Induction of a protective response in ducks vaccinated with a DNA vaccine encoding engineered duck circovirus Capsid protein [J].Veterinary Microbiology, 2018, 225 (2018) 40-47. [21] Development of an immunochromatographic strip for detection of antibodies against duck Tembusu virus[J].Journal of Virological Methods, 2017, 249: 137-142 [22] Attenuated Salmonella typhimurium delivering DNA vaccine encoding duck enteritis virus UL24 induced systemic and mucosal immune responses and conferred good protection against challenge[J].Veterinary Research, 2012, 43(1): 56. [23]四川省鸭坦布苏病毒的分离鉴定及遗传进化分析[J].病毒学报,2022,38(5):1173-1181,10.13242/j.cnki.bingduxuebao.004197 [24]鸭坦布苏病毒甲基转移酶的序列分析和结构预测[J].人兽共患病学报,2017,33(10):977-881. [25] miRNA对固有免疫信号通路调控的研究进展[J].中国科学.生命科学,2017,47,7, doi: 10.1360/N052017-00091. [26]. Argonaute蛋白质在miRNA基因调控中的作用[J].中国细胞生物学学报,2016, 38(12): 1535-1540,DOI: 10.11844/cjcb.2016.12.0204. [27]鸭圆环病毒Cap基因酵母双杂交诱饵载体的构建及鉴定[J].病毒学报,2015,31(3):282-286. |