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讲师

张秀君

2019年04月25日 17:33  点击:[]

教师简介

姓名

张秀君

学历/学位

博士研究生

职称/职务

讲师

联系电话


电子邮箱

bio_zhangxj@ujn.edu.cn

主讲课程

微生物学,分子生物学,基因工程

社会兼职       山东德升生物工程有限公司   生产研发中心主任

科研方向       资源与环境微生物

主要科研成果与奖励(主持项目、获奖、著作、代表性论文)

主持项目:

1.       山东省自然科学基金青年基金,丝状真菌LaeA催化组蛋白甲基化的精细构架与作用机制,2020.07-2022.06,主持;

2.       中国博士后科学基金面上资助,丝状真菌LaeA催化组蛋白甲基化的精细构架与作用机制,2020.09-2021.08,主持。

代表性论文:

1.          Zhang X.,   Qu Y., Qin Y. 2016. Expression and chromatin structures of cellulolytic   enzyme gene regulated by heterochromatin protein 1. Biotechnol for Biofuels.   9:206.

2.          Zhang X., Zhu Y., Bao L., Gao L., Yao G., Li Y., Yang Z., Li Z., Zhong Y.,   Li F., Yin H., Qu Y., Qin Y. 2016. Putative methyltransferase LaeA and   transcription factor CreA are necessary for proper asexual development and   controlling secondary metabolic gene cluster expression. Fungal Genet Biol.   94:32-46.

3.          Zhang, X.,   Li M., Zhu Y., Yang L., Li Y., Qu J., Wang L., Zhao J., Qu Y., Qin Y.. 2020. Penicillium   oxalicum putative methyltransferase Mtr23B has similarities and   differences with LaeA in regulating conidium development and glycoside   hydrolase gene expression. Fungal Genet Biol. 143, 103445.

4.          Li Y., Zheng X., Zhang X., Bao L.,   Zhu Y., Qu Y., Zhao J., Qin Y.. 2016. The Different Roles of Penicillium   oxalicum LaeA in the Production of Extracellular Cellulase and β-xylosidase. Front Microbiol.   22;7:2091.

5.          Pan Y., Gao L., Zhang X., Qin Y., Liu G., Qu Y.. 2019.   The Role of Cross-Pathway Control Regulator CpcA in the Growth and   Extracellular Enzyme Production of Penicillium oxalicum. Current microbiology.   77(11).

6.          Kang W., Ji X., Zhang X., Tang D.,   Feng Q.. 2019. Persistent Exposure to Fusobacterium nucleatum Triggers   Chemokine/Cytokine Release and Inhibits the Proliferation and Osteogenic   Differentiation Capabilities of Human Gingiva-Derived Mesenchymal Stem Cells. Frontiers in cellular and   infection microbiology. 9: 429.

7.  Shi   Z., Han C., Zhang X., Tian L., Wang L.. Novel synergistic mechanism   for lignocellulose degradation by a thermophilic filamentous fungus and a   thermophilic actinobacterium based on functional proteomics. Front   Microbiol. 2020 Sep 11;11:539438.

 

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