1.First Report of Leaf Spot Caused by Didymella glomerata on Oat (Avena sativa L.) in China. Plant Disease (2026) (通讯作者)
2.Genome-Wide Identification and Stress-Responsive Expression Analysis of the Actin-Depolymerizing Factor (ADF)Gene Family in Avena sativa L. BMC Plant Biology (2026) 26(473):1-15. (通讯作者)
3.Transposable element-driven expansion of enhancer RNA repertoires underlies regulatory innovation and polyploid adaptation in cereal crops. Plant Communications (2026) 7:101887 (参与作者)
4.Identification of novel major quantitative trait loci associated with selenium and zinc accumulation in Aegilops tauschii. Frontiers in Plant Science, 2026, 17: 1892742 (通讯作者)
5.Integrative Analysis of Physiological Properties and Transcriptome Reveals the Mechanism of Salt Tolerance in Oat (Avena sativa L.). Journal of Plant Growth Regulation (2025) 44(10): 5783-5803.(通讯作者)
6.Identification and QTL analysis of stripe rust resistance in the common wheat cultivar Gaoyuan813.Molecular Breeding (2025) 45(89):1-17.(通讯作者)
7.Physiological and molecular profiling unveils oat (Avena sativa L.) defense mechanisms against powdery mildew. Frontiers in Plant Science (2025) 16: 1580472. (通讯作者)
8.A quantitative computational framework for allopolyploid single-cell data integration and core gene ranking in development. Molecular Biology and Evolution (2024) 41(9 ): msae178.(参与作者)
9.LHP1-mediated epigenetic buffering of subgenome diversity and defense responses confers genome plasticity and adaptability in allopolyploid wheat. Nature Communications (2023) 14(1):7538. (参与作者)
10.燕麦基因组学与分子育种研究进展. 植物学报(2022)57 (6): 785–791. (通讯作者)
11.De novo transcriptome assembly and comparative analysis highlight the primary mechanism regulating the response to selenium stimuli in oats (Avena sativa L.). Frontiers in Plant Science (2021) 12: 625520. (通讯作者)
12.Molecular Marker Based Design for Breeding Wheat Lines with Multiple Resistance and Superior Quality Molecular Marker Based . Plant Disease. (2020) 104:2653-26664. (通讯作者)