森林培育学科(经济林)

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王娇

王娇,博士,副教授,主要从事植物生长发育及逆境抗性调控、基因功能挖掘及种质创制等研究。

研究方向

植物生长发育及产量形成调控

植物生物/非生物逆境抗性调控

植物G蛋白及葡萄糖信号网络

植物基因功能挖掘及种质创制

学习与工作经历

2025.06–至今 浙江农林大学,林业与生物技术学院,副教授

2021.07–2025.05 浙江大学,作物学流动站,博士后

2016.09–2021.06 浙江大学,蔬菜学专业,博士

2012.09–2016.06 浙江大学,园艺专业,学士

科研项目

1. 国家自然科学基金青年科学基金项目,32402656,番茄G蛋白γ亚基GGC1通过CPK28-PIP1;2信号途径调控CO2传输及生长的分子机制研究,2025-2027,30万,在研,主持

2. 国家重点研发计划子课题,2023YFD2000601-03,不同环境处理提升番茄产量及延缓主要生育障碍的调控技术研发,2023-2028,50万,在研,主持

3. 浙江省自然科学基金探索项目,LMS25C150004,番茄驯化中不同Gβγ亚基互作模式调控茎尖分生组织大小及其产量形成的作用及机制研究,2025-2026, 10万,在研,主持

4. 杭州市自然科学基金青年项目,2025SZRJJ0432,二倍体蓝莓G蛋白家族在花青素合成中的调控作用及机制研究,2026-2028,5万,在研,主持

5. 中国博士后科学基金第17批特别资助,2024T170786,番茄G蛋白信号途径在生长及产量调控中的作用及机制研究,2024-2025,18万,结题,主持

6. 中国博士后科学基金面上项目,2022M722801,设施弱光导致番茄病害高发中Glc-RGS1糖信号途径的作用及其调控机制,2023-2024,8万,结题,主持

7. 浙江农林大学科研发展基金(人才启动项目),2025LFR034,蓝莓G蛋白家族基因鉴定及功能分析,2025-2027,在研,主持

8. 国家自然科学基金重点项目,32430092,番茄PSK多肽信号途径在传粉受精高温适应性中的调控机制,2025-2029,219万,在研,参与

9. 国家自然科学基金面上项目,31772355,设施弱光导致番茄病害高发中糖转运蛋白STP的作用及其调控机制,2018-2021,60万,结题,参与

10. 国家自然科学基金面上项目,32172650,番茄多肽受体PSKR1和钙依赖蛋白激酶CPK28互作调控植物生长和生物胁迫抗性的分子机制,2022-2025,58万,在研,参与

发表论文(#:第一作者,*:通讯作者)

1. Wang J#, Luo Q#, Deng JJ, Liang X, Li YM, Wang AR, Lin T, Liu H, Zhang XB, Liu ZY, Hu ZJ, Ding ST, Pan CT, Yu JQ, Gao QF, Foyer CH, Shi K*. The G-protein β subunit SlGB1 regulates tyramine-derived phenolamide metabolism for shoot apex growth and development in tomato.Plant Cell, 2025, 37: koaf070.

2. Wang J, Wang AR, Luo Q, Hu ZJ, Ma QM, Li YM, Lin T, Liang X, Yu JQ, Foyer CH, Shi K*. Glucose sensing by regulator of G protein signaling 1 (RGS1) plays a crucial role in coordinating defense in response to environmental variation in tomato.New Phytologist, 2022, 236: 561-575.

3. Liang X#, Wang AR#, Yue CX, Ding ST, Zhou SB, Yu Q, Zhang XB, Luo Q, Li YM, Wu YY, Li FF, Li PF, Zhao TM, Fan PX, Zhou J, Yu JQ, Foyer CH,Wang J*, Shi K*. Functional divergence of G protein γ subunits drives plant vigor and improvement through the CPK28-PIP1;2 pathway in tomato.Cell Reports, 2025, 44: 116253.

4. Wang J#, Luo Q#, Liang X, Liu H, Wu CQ, Fang HM, Zhang XB, Ding ST, Yu JQ, Shi K*. Glucose-G protein signaling plays a crucial role in tomato resilience to high temperature and elevated CO2.Plant Physiology, 2024, 195:1025-1037. (Highlighted by Jain, Plant Physiology 2024)

5. Wang J#, Zheng CF#, Shao XQ, Hu ZJ, Li JX, Wang P, Wang AR, Yu JQ, Shi K*. Transcriptomic and genetic approaches reveal an essential role of the NAC transcription factor SlNAP1 in the growth and defense response of tomato.Horticulture Research, 2020, 7: 209.

6. Luo Q#,Wang J#, Wang P, Liang X, Li JX, Wu CQ, Fang HM, Ding ST, Shao SJ, Shi K*. Transcriptomic and genetic approaches reveal that low-light-induced disease susceptibility is related with cellular oxidative stress in tomato.Horticulture Research, 2023, 10: uhad173.

7. Li YM,Wang J, Liang X, Wu SR, Zhang J, Wu CQ, Wang AR, Fang HM, Ding ST, Yu JQ, Wu S, Liu H, Shi K*. STP2-mediated sugar transport in tomato shoot apieces is critical for CLV3 arabinosylation and fruit locule development under low temperatures.Molecular Plant, 2025. DOI: 10.1016/j.molp.2025.05.002.

8. Zhang H#, Hu ZJ#, Lei C, Zheng CF,Wang J, Shao SJ, Li X, Xia XJ, Cai XZ, Zhou J, Zhou YH, Yu JQ, Foyer CH, Shi K*. A plant phytosulfokine peptide initiates auxin-dependent immunity through cytosolic Ca2+signaling in tomato.Plant Cell, 2018, 30: 652-667.

9. Ding ST, Lv JR, Hu ZJ,Wang J, Wang P, Yu JQ, Foyer CH, Shi K*. Phytosulfokine peptide optimizes plant growth and defense via glutamine synthetase GS2 phosphorylation in tomato.EMBO Journal, 2023, 42: e111858.

10. Ding ST#, Feng SX#, Zhou SB#, Zhao ZR, Liang X,Wang J, Fu RS, Deng R, Zhang T, Shao SJ, Yu JQ, Foyer CH, Shi K*. A novel LRR-RLK BRAK reciprocally phosphorylates PSKR1 to enhance growth and defense in tomato.EMBO Journal, 2024, 43: 6104-6123.

11. Fang HM#, Zuo JH#, Ma QM, Zhang XB, Xu YR, Ding ST,Wang J, Luo Q, Li YM, Wu CQ, Lv JR, Yu JQ, Shi K*. Phytosulfokine promotes fruit ripening and quality via phosphorylation of transcription factor DREB2F in tomato.Plant Physiology, 2024, 194: 2739-2754.

12. Wang P, Luo Q, Yang WC, Ahammed GJ, ST Ding, Chen XY,Wang J, Xia XJ, Shi K*. A novel role of pipecolic acid biosynthetic pathway in drought tolerance through the antioxidant system in tomato.Antioxidants, 2021, 10:1923.

13. Wang P, Liang X, Fang HM,Wang J, Liu XT, Li YM, Shi K*. Transcriptomic and genetic approaches reveal that the pipecolate biosynthesis pathway simultaneously regulates tomato fruit ripening and quality.Plant Physiology and Biochemistry, 2023, 201:107920.

14. Wang AR, Lv JR,Wang J, Shi K*. CO2enrichment in greenhouse production: towards a sustainable approach.Frontier in Plant Science, 2022, 13:1029901.

15. 李依镁#,王娇#,王萍,师恺.番茄糖转运蛋白SlSTP2在防御细菌性叶斑病中的功能.中国农业科学, 2022, 55:3144-3154.

16. 王萍,郑晨飞,王娇,胡璋健,邵淑君,师恺*.番茄转录因子SlNAC29在调控植株衰老中的作用及机理.中国农业科学, 2021, 54:5266-5276.

17. 王安然#,史军营#,胡璋健,王娇,喻景权,师恺*.亚高温环境下番茄对细菌性斑点病病原菌的抗性变化及其机制研究.中国蔬菜, 2021, 11:37-44.

参编论著

1. Wang J, Ding ST, Shi K*. (2024) Speed germplasm generation and precision-designed breeding in tomato based on the CRISPR/Cas9 system.Plant Speed Breeding and High-throughput Technologies, CRC Press. eBook ISBN: 9781003434733.

获授权发明专利

1.朱佳妮,吴莹,崔富强,王娇。一种基因枪介导的越橘属植物高效转基因体系的建立方法,ZL202511248145.8,2025.12.16授权

联系方式

通讯地址:浙江省杭州市临安区武肃街666号,浙江农林大学东湖校区国重大楼436室

邮编:311300

邮箱:jiaowang@zafu.edu.cn