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中山大学生命科学学院导师教师师资介绍简介-张玉婵

本站小编 Free考研考试/2021-05-20


张玉婵

Submitted on 周一, 10/30/2017 - 21:13


性别


电子邮件
zhyuchan@mail.sysu.edu.cn

职称
副教授

导师类型
博士生导师

学历
理学博士

学科方向
0710生物学-10生物化学与分子生物学


研究方向
植物非编码RNA鉴定及功能

个人经历
2013年取得中山大学理学博士学位;
2013年至2016年,中山大学博士后;
2016年至今,中山大学生命科学学院副教授
主要从事植物非编码RNA鉴定及其在作物产量和生殖发育中的调控作用研究。

讲授课程
RNA生物学、新生研讨课、生物科学综合实验、细胞生物学实验、生命科学导论实验

学术成就
主要学术成绩有:(1)在国际上报道了首例正调控水稻产量的小分子非编码RNA miR397,揭示了非编码RNA也可作为遗传资源被用于作物育种;研究成果发表于Nature Biotechnology(IF5:45.1,第一作者,ESI高被引论文)、Plant Physiology(IF5:7.0,共同通讯作者)等刊物,并于2018年申请并获得广东省科技奖励自然科学类一等奖(2/7);(2)揭示了miRNA及RNA修饰在水稻花粉发育中的新功能,阐明了非编码RNA在作物复杂性状调控网络中的重要作用;研究成果发表于Proc Natl Acad Sci U S A(IF5:10.6,第一作者)、PLOS Genetics(IF5:6.3,共同第一且通讯作者)等刊物;(3)发现了长链非编码RNA在生殖发育阶段和生殖组织中的特异表达性和功能。研究成果发表于Genome Biology(IF5:18.4,第一作者,封面论文)Nucleic Acid Research(IF5:10.7,共同第一作者)、Annual Review of Cell and Development Biology(IF5:17.4,共同第一作者)等刊物。本研究成果不仅揭示了植物遗传性状调控的复杂性,也发现了一个新层面上的基因调控方式,而且为作物的遗传育种提供了新的思路和基因资源。解析非编码RNA调控网络对于全面认识作物复杂农艺性状的形成有着重要意义。相关工作被F1000、Nature China等点评收录,被Nature Reviews Genetics等高影响力期刊他引。

承担课题
国家自然科学基金面上项目、青年项目;
广东省特支计划科技创新青年拔尖人才项目;
广州市珠江科技新星。

论文专著
第一作者或通讯作者论文(含并列):
(1) Zhang YC; He RR; Lian JP; Zhou YF; Zhang F; Li QF; Yu Y; Feng YZ; Yang YW; Lei MQ; He H; Zhang Z; Chen YQ*; OsmiR528 regulates rice-pollen intine formation by targeting an uclacyanin to influence flavonoid metabolism, Proceedings of the National Academy of Sciences of the United States of America, 2019,117(1): 727-732. ( IF510.6)
(2) Zhang F#; Zhang YC#*; Liao JY; Yu Y; Zhou YF; Feng YZ; Yang YW; Lei MQ; Bai M; Wu H; Chen YQ*; The subunit of RNA N6-methyladenosine methyltransferase OsFIP regulates early degeneration of microspores in rice , PLoS Genetics, 201 9, 15(5): 0-e**. ( IF56.3)
(3) Liao JY#*; Yang B#; Zhang YC#; Wang XJ; Ye YS; Peng JW; Yang ZZ; He JH; Zhang Y; Hu KS; Lin DC*; Yin D*; EuRBPDB: a comprehensive resource for annotation, functional and oncological investigation of eukaryotic RNA binding proteins (RBPs). , Nucleic Acids Research, 2019, 48(D1): D307-D313. ( IF510.7)
(4) Yu Y#; Zhang YC#; Chen XM*; Chen YQ*; Plant Noncoding RNAs: Hidden Players in Development and Stress Responses, Annual Review of Cell and Developmental Biology, 2019, 35: 407-431. ( IF517.4)
(5) Zhang F#; Zhang YC#; Zhang JP; Yu Y; Zhou YF; Feng YZ; Yang YW; Lei MQ; He H; Lian JP; Chen YQ*; Rice UCL8, a plantacyanin gene targeted by miR408, regulates fertility by controlling pollen tube germination and growth, Rice, 2018, 11(60): 10.1186/s12284-018. ( IF54.6)
(6) Zhang JP#; Yu Y#; Feng YZ; Zhou YF; Zhang F; Yang YW; Lei MQ; Zhang YC*; Chen YQ*; MiR408 Regulates Grain Yield and Photosynthesis via a Phytocyanin Protein , Plant Physiology, 2017, 175(3): 1175-1185. ( IF57)
(7) Yu Y; Li QF; Zhang JP; Zhang F; Zhou YF; Feng YZ; Chen YQ; Zhang YC*; Laccase-13 Regulates Seed Setting Rate by Affecting Hydrogen Peroxide Dynamics and Mitochondrial Integrity in Rice , Frontiers in Plant Science, 2017, 8:0-1324. ( IF54.9)
(8) Zhang YC; Chen YQ*; Epigenetic Regulation by Noncoding RNAs in Plant Development, Springer, 2017.
(9) Zhang YC#; Liao JY#; Li ZY; Yu Y; Zhang JP; Li QF; Qu LH; Shu WS; Chen YQ*; Genome-wide screening and functional analysis identify a large number of long noncoding RNAs involved in the sexual reproduction of rice., Genome Biology, 2014, 15(12). ( IF518.4)
(10) Zhang YC; Yu Y; Wang CY; Li ZY; Liu Q; Xu J; Liao JY; Wang XJ; Qu LH; Chen F; Xin PY; Yan CY; Chu JF; Li HQ; Chen YQ*; Overexpression of microRNA OsmiR397 improves rice yield by increasing grain size and promoting panicle branching , Nature Biotechnology, 2013, 31(9): 848-852. ( IF545.1)
(11) Zhang YC; Chen YQ*; Long noncoding RNAs: New regulators in plant development , Biochemical and Biophysical Research Communications, 2013, 436(2): 111-114. ( IF5:2.6)
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参与论文:
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(1) Li ZY(#) ; Xia J(#) ; Chen Z; Yu Y; Li QF;Zhang YC ; Zhang JP; Wang CY; Zhu XY; Zhang W(*) ; Chen YQ (*) ,
Large-scale rewiring of innate immunity circuitryand microRNA regulation during initial rice blast infection., Scientific reports, 2016.05.06, 1038(10)
(2) Li ZF; Zhang YC; Chen YQ ,(*)miRNAs and lncRNAs in reproductive development, Plant Science, 2015.02.09, 238(-): 46~52
(3) Liao JY; Guo YH; Zheng LL; Li Y; Xu WL; Zhang YC; Zhou H; Lun ZR ;(*)Ayala FJ(*) ; Qu LH ,(*) Both endo-siRNAs and tRNA-derived small RNAs are involved in the differentiation of primitive eukaryote Giardia lamblia., Proc Natl Acad Sci U S A., 2014.09.30, 111(39): 14159~14164
(4) Wang CY (#); Zhang S(#) ; Yu Y(#) ; Luo YC; Liu Q; Ju C; Zhang YC ; Qu LH; Lucas WJ; Wang X (*); Chen YQ ,(*)MiR397b Regulates Both Lignin Content and Seed number in Arabidopsis via Modulating a Laccase Involved in Lignin Biosynthesis., Plant Biotechnology Journal, 2014.06.29, 12(8): 1132~1142
(5) Chen CJ; liu Q; Zhang YC; Qu LH; Chen YQ (*) ; Gautheret D ,(*)Genome-wide analysis of small RNAs and discovery of novel microRNAs in rice embryogenic calli using deep sequencing, RNA Biology, 2011.05.01, 8(3): 538~547
(6) Liu Q; Zhang YC; Wang CY; Luo YC; Huang QJ; Chen SY; Zhou H; Qu LH;Chen YQ ,(*)Expression analysis of phytohormone-regulated microRNAs in riceimplying their regulation roles in plant hormone signaling., Febs Letters, 2009.02.18, 583(4): 723~728







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