研究成果: |
一、承担项目 1.国家自然科学基金青年项目, 基于模块化组装的黏附蛋白创制及生物医学应用研究,起止时间:2025/1-2027/12,主持 2.吉林省自然科学基金,抗菌蛋白粘合剂设计、合成及医学应用研究,起止时间:2024/1-2026/12,主持 3.吉林省自然科学基金,人参AP2/ERF转录因子基因的挖掘及功能验证,起止时间:2019/01-2021/12,主持 二、代表性论文 1. An L., Wang W., Chu J., An L., Geng B., Fu X., Chen J.*, J Ma.*, Lycium barbarum polysaccharide alleviates Amyloid-β-Induced toxicity in the Caenorhabditis elegans model, Food Frontiers, 2024. 2. Chen J., Shi W., Ren Y., Zhao K., Liu Y., Jia B., Zhao L., Li M., Liu Y., Su J., Ma C., Wang F., Sun J., Tian Y., Li J.*, Zhang H., Liu K., Strong Protein Adhesives through Lanthanide-enhanced Structure Folding and Stack Density, Angew. Chem. Int. Ed., 2023, e202304483. 3. Yu Y. # ,Chen J.# , An L., Huang T., Wang W., Cheng Z., Wang L., Xu X., Zhao Z., Fu X., Ma J.*, Knockdown of phosphatases of regenerating liver-1 prolongs the lifespan of Caenorhabditis elegans via activating DAF-16/FOXO, FASEB J., 2023, 37:e22844. 4. An L., Fu X., Chen J.*, Ma J.*, Application of Caenorhabditis elegans in Lipid Metabolism Research, Int. J. Mol. Sci., 2023, 24: 1173. 5. Bai S., Yu Y., An L., Wang W., Fu X., Chen J.*, Ma J.*, Ellagic Acid Increases Stress Resistance via Insulin/IGF-1 Signaling Pathway in Caenorhabditis elegans, Molecules, 2022, 27: 6168. 6. Li H.#, Chen J.#, Zhao Q, Han Y., Li Li, Sun C.,... , Lei J., Wang Y.*, Zhang M.*, Basic leucine zipper (bZIP) transcription factor genes and their responses to drought stress in ginseng, Panax ginseng C.A. Meyer, BMC Genomics, 2021, 22: 316 7. Chen J., Zhou Y., Zhang Q., ... , Zhang M.*, Wang Y.*, Structural variation, functional differentiation and expression characteristics of the AP2/ERF gene family and its response to cold stress and methyl jasmonate in Panax ginseng C.A. Meyer, Plos One, 2020, 15(3): e0226055. 8. Chen J., Dou R., Yang Z., You T., Gao X.*, Wang L.*, Phytotoxicity and bioaccumulation of zinc oxide nanoparticles in rice ( Oryza sativa L.), Plant Physiol. Bioch., 2018: 130. 9. Chen J., Liu B., Yang Z., Qu J., Xun H., Dou R., Gao X.*, Wang L.*, Phenotypic, transcriptional, physiological and metabolic responses to carbon nanodot exposure in Arabidopsis thaliana, Environ. Sci.: Nano, 2018, 5: 2672-2685. 10. Chen J., Dou R., Yang Z., Wang X., Mao C., Gao X., Wang L.*, The effect and fate of water-soluble carbon nanodots in maize (Zea mays L.), Nanotoxicology, 2016, 10(6): 818-828. |