陆星

发布者:资源环境学院发布时间:2021-07-04浏览次数:3189

性  别:

职务职称:助研/硕士生导师

联系邮箱:xinglu@scau.edu.cn

办公电话:13600052226

办公地址:科技楼812室

教育背景

2003/09 -2009/06 中国农业大学,资源与环境学院,植物营养学专业,博士
2007/12 - 2008/02 德国Hohenheim大学,植物营养研究所,访问学生
2006/11 – 2007/01 德国Hohenheim大学,植物营养研究所,访问学生
2005/10 – 2006/01 德国Hohenheim大学和Göttingen大学,访问学生
2005/01 – 2005/03 德国Hohenheim大学,植物营养研究所,访问学生
1999/09 -2003/06 华南农业大学,资源环境学院,农业资源与环境专业,学士

工作履历

2011/04 – 至今 华南农业大学,资源环境学院,助理研究员
2014/06 -2014/09   美国康奈尔大学,植物科学系,访问学者
2013/12 - 2014/03  美国康奈尔大学,植物科学系,访问学者
2009/07 - 2011/03 中国农业大学,资源与环境学院,博士后

学术兼职

中国植物营养与肥料学会青年工作委员会委员(第八届、第九届),

中国植物营养与肥料学会第十届(2022-2027)养分循环专业委员会委员,

中国植物营养与肥料学会第十届(2022-2027)施肥技术专业委员会委员

植物营养与肥料学报、油料作物学报等期刊审稿人

研究领域


近年来主要研究领域包括大豆、玉米轮间作提高土壤养分利用效率的机制研究、作物根系表型的定量分析、农田氮循环及其环境效应、养分资源管理等。


奖励与荣誉


2020-2021、2021-2022学年优秀班主任

2019年广东省大学生志愿者”千乡万村环保科普行动”,优秀指导老师;
2018年华南农业大学校内十佳创新创业导师;
2010年年度考核优秀。


主持项目

1、国家自然科学基金青年科学基金项目,31601830,强化生物固氮减少豆田N2O排放,2017/01-2019/12,20万元,已结题,主持
2、 教育部博士点基金新教师类项目,20134404120021,大豆生物固氮减少N2O排放的生态效应及其调控途径,2014/01-2016/12,4万元,已结题,主持
3、中国博士后科学基金,典型农田土壤硝化反硝化产物比及N2O减排措施,2010/04-2011/4,3万元20100470413,已结题,主持

学术成果

一、发表论文:

1. Tian J, Lu X, Wang T, Zhu X, Zhou H, Tan J, Liang C, Tian J*. 2026. Maize/soybean intercropping improves soil macroaggregation and phosphorus dynamics: the role of root functional traits and phoC-harboring bacteria. Geoderma. 468: 117790.

2. Tian J, Lu X, Wang T, Zhu X, Zhou H, Tan J, He D, Liang C, Tian J*. 2026. Soybean genotypes regulate soil aggregation and associated phosphorus dynamics through maize/soybean root interactions. Plant Soil. 521: 583–599.

3. Tian C, Guo Q, Hu M, Lu X, Wang T, Liang C, Tian J*. 2026. Integrated metabolomic and transcriptomic analysis reveals mechanisms underlying increased nitrogen and protein concentrations by phosphorus deficiency in soybean seeds. Journal of Agricultural and Food Chemistry. 74(6): 5781-5795.

4. Zhang B, G Zheng, H. Jiang, Wang T, Liu G, Zhang Z, Lu X, Liang C, Tian J*. 2026. Flavonoid-Mediated Recruitment of Bradyrhizobium Enhances Maize Root Development and Nutrient Acquisition in Maize–Soybean Intercropping Systems. Plant, Cell & Environment 0: e70420. https://doi.org/10.1111/pce.70420.

5. Li J, Tian J, Liang C, Wang T* and Lu X*.2025. Characterization of the soybean (Glycine max) heavy-metal-associated isoprenylated plant protein (HIPP) gene family in response to aluminum. Plants. https://doi.org/10.3390/plants14233582.

6. Chen Q, Lu X, Liu G, Wang T, Zhou H, Tian J, Yao Q, He J, Tian J*, Liang C*. 2025. Low-phosphorus stress induces GmSTOP1-3-mediated organic acid exudation to recruit phosphate-solubilizing bacteria for organic phosphorus mineralization in soybean rhizosphere. Journal of Integrative Agriculture. Doi: 10.1016/j.jia.2025.08.015.

7. Zhang B, Jiang H, Zheng G, Zhang Z, Wang T, Chen Q, Chen X, Lu X, Liang C, Tian J*. 2025. Genistein Exudation Drives Spatial Root Allocation and Heterogeneous Microbial Communities to Enhance Phosphorus Acquisition in Soybean‐Maize Intercropping. Plant Cell & Environment. Doi.org/10.1111/pce.70020.

8. Qin Y, Ruan H, Chen K, Lu X*, Wang T*, Tian J, Liang C. 2025. GmAIR12-5 governs soybean nodule development associated with phosphorus availability. Journal of Plant Physiology, 154585. Doi: 10.1016/j.jplph.2025.154585.

9. Wang T, Mu X, Ni E, Wang Q, Li S, Mao J, Qing D, Li B, Chen Y, Chen W, Liang C, Wu H, Lu X*, Tian J. Belowground Interaction in Tea/Soybean Intercropping Enhances Tea Quality by Improving Soil Nutrient Dynamics. Plants. 2025; 14(11):1691. Doi: 10.3390/plants14111691

10. Guo Q, Zhu S, Lai T, Tian C, Hu M, Lu X, Xue Y, Liang C*, Tian J*. 2025. A phosphate-starvation enhanced purple acid phosphatase, GmPAP23 mediates intracellular phosphorus recycling and yield in soybean. Plant, Cell & Environment. Doi: 10.1111/pce.15400.

11. Wang T, Tian J, Lu X(共同一作), Liu C, Ao J, Mai H, Tan J, Zhang B, Liang C*, Tian J*. 2024. Soybean variety influences the advantages of nutrient uptake and yield in soybean/maize intercropping via regulating root-root interaction and rhizobacterial composition. Journal of Integrative Agriculture. Doi: 10.1016/j.jia.2024.12.035.

12. Liu G, Chen Q, Li D, Mai H, Zhou Y, Lin M, Feng X, Lin X, Lu X, Chen K, Tian J*, Liang C*. 2025. GmSTOP1-3 Increases soybean manganese accumulation under phosphorus deficiency by regulating GmMATE2/13 and GmZIP6/GmIREG3. Plant, Cell & Environment. 48 (3): 1812-1828.

13. Lin Y, Liu G, Liu P, Chen Q, Guo X, Lu X, Cai Z, Sun L, Liu J, Chen K, Liu G, Tian J*, Liang C*. 2024. Border-like cell formation mediated by SgPG1 confers aluminum resistance in Stylosanthes guianensis. The Plant Journal. 120 (4): 1605-1624.

14. Liu G, Li D, Mai H, Lin X, Lu X, Chen K, Wang R, Riaz M, Tian J*, Liang C*. 2024. GmSTOP1-3 regulates flavonoid synthesis to reduce ROS accumulation and enhance aluminum tolerance in soybean. Journal of Hazardous Materials. 480: 136074.

15. Zhang Z, Mo X, Zhao H, Lu X, Fan S, Huang X, Mai H, Liao H, Zhang Y, Liang C*, Tian J*. 2024. Crystal structure and function of a phosphate starvation responsive protein phosphatase, GmHAD1-2 regulating soybean root development and flavonoid metabolism. New Phytologist. 244 (6): 2396-2412.

16. Wang T, Chen Q, Liang Q, Zhao Q, Lu X, Tian J, Guan Z, Liu L, Li J, Zhou M, Tian J*, Liang C. 2024. Bacillus suppresses nitrogen efficiency of soybean-rhizobium symbiosis through regulation of nitrogen-related transcriptional and microbial patterns. Plant Cell & Environment. Doi: 10.1111/pce.15023.

17. Guo X, Zhu S, Xue Y, Lin Y, Mao J, Li S, Liang C, Lu X*, Tian J. 2024. The Stylo Cysteine-Rich Peptide SgSnakin1 Is Involved in Aluminum Tolerance through Enhancing Reactive Oxygen Species Scavenging. International Journal of Molecular Sciences. Doi:10.3390/ijms25126672.

18. Zhu S, Guo Q, Xue Y, Lu X, Lai T, Liang C*, Tian J*. 2023. Impaired glycosylation of GmPAP15a, a root-associated purple acid phosphatase, inhibits extracellular phytate-P utilization in soybean. Plant Cell & Environment. Doi: 10.1111/pce.14715.

19. Chen Q, Zhao Q, Xie B, Lu X, Guo Q, Liu G, Zhou M, Tian J, Lu W, Chen K, Tian J*, Liang C*. 2023. Soybean (Glycine max) rhizosphere organic phosphorus recycling relies on acid phosphatase activity and specific phosphorus-mineralizing-related bacteria in phosphate deficient acidic soils. Journal of Integrative Agriculture. Doi: 10.1016/j.jia.2023.09.002.

20. Zhou M, Li YX, Lu X, He PM, Liang CY, Tian J. Diverse functions of GmNLA1 members in controlling phosphorus homeostasis highlight coordinate response of soybean to nitrogen and phosphorus availability. The Crop Journal, 2023, https://doi.org/10.1016/j.cj.2022.12.003

21. Xie BX, Chen QQ, Lu X, Chen K, Yang YS, Tian J, and Liang CY. Proton exudation mediated by GmVP2 has widespread effects on plant growth, remobilization of soil phosphorus,and the structure of the rhizosphere microbial community. Journal of Experimental Botany, 2023,74 (3): 1140–1156.

22. Chen Q, Li J, Liu G, Lu X, Chen K, Tian J and Liang C. A Berberine Bridge Enzyme-Like Protein,GmBBE-like43, Confers Soybean’s Coordinated Adaptation to Aluminum Toxicity and Phosphorus Deficiency.Front. Plant Sci.,2022, 13:947986.doi: 10.3389/fpls.2022.947986

23. Mo XH, Liu GX, Zhang ZY, Lu X, Liang YC*, Tian J. Mechanisms Underlying Soybean Response to Phosphorus Deficiency through Integration of Omics Analysis.Int. J. Mol. Sci. 2022, 23, 4592. https://doi.org/10.3390/ijms23094592

24. Mo XH, Zhang MK, Zhang ZY, Lu X, Liang CY*, Tian T. Phosphate (Pi) Starvation Up-Regulated GmCSN5A/B Participates in Anthocyanin Synthesis in Soybean (Glycine max) Dependent on Pi Availability. Int. J. Mol. Sci., 2021, 22, 12348. https://doi.org/10.3390/ijms222212348

25. Jiang WZ, He PM, Zhou M, Lu X, Chen K, Liang CY*,Tian J.Soybean responds to phosphate starvation through reversible protein phosphorylation.Plant Physiology and Biochemistry, 2021, 167: 222–234

26. Liu Y, Xue Y, Xie B, Zhu S, Lu X, Liang C*, Tian J*. Complex gene regulation between young and old soybean leaves in responses to manganese toxicity. Plant Physiology and Biochemistry, 2020, 155: 231-242, Doi:10.1016/ j.plaphy.2020.07.002

27. Tian JH#, Lu X#, Chen QQ, Kuang XZ , Liang CY*, Deng LS, Lin DJ, Cai KZ, Tian J*.Phosphorus fertilization affects soybean rhizosphere phosphorus dynamics and the bacterial community in karst soils. Plant Soil, 2020, DOI: 10.1007/s11104-020-04662-6.

28. Huang X, Zheng CY, Liu F, Yang C, Zheng P, Lu X, Tian J, Chung T, Otegui MS, Shi X, Gao CJ, Vierstra RD * and Li FQ *. Genetic Analyses of the Arabidopsis ATG1 Kinase Complex Reveal Both Kinase-Dependent and Independent Autophagic Routes during Fixed-Carbon Starvation. Plant Cell. 2019, doi:10.1105/tpc.19.00066.

29. Qin L, Walk TC, Han PP, Chen LY, Zhang S, Li YS, Hu XJ, Xie LH, Yang Y, Liu JP, Lu X, Yu CB, Tian J, Shaff JE, Kochian LV, Liao X* and Liao H*. Adaption of Roots to Nitrogen Deficiency Revealed by 3D Quantification and Proteomic Analysis. Plant Physiology, 2019, 179: 329–347.

30. Yu L, Yu MJ, Lu X, Tang CX, Liu XM, Brookes PC, Xu JM*. Combined application of biochar and nitrogen fertilizer benefits nitrogen retention in the rhizosphere of soybean by increasing microbial biomass but not altering microbial community structure. Science of The Total Environment, 2018, 640–641: 1221-1230

31. Zheng M, Li D, Lu X, Zhu X, Zhang W, Huang J, Fu S, Lu X, Mo J*. Effects of phosphorus addition with and without nitrogen addition on biological nitrogen fixation in tropical legume and non-legume tree plantations. Biogeochemistry, 2016,131(1):65-76. DOI 10.1007/s10533-016-0265-x.

32. Yu L, Lu X, He Y, Brookes PC, Liao H*, Xu JM*. Combined biochar and nitrogen fertilizer reduces soil acidity and promotes nutrient use efficiency by soybean crop. Journal of Soils and Sediments, 2016, DOI: 10.1007/s11368-016-1447-9.

33. Ao J, Chen Z, Wu M, Lu X, Huang Z, Liao H*. Phosphorus fractions of red soils in Guangdong Province of South China and their bioavailability for 5 crop species. Soil Science ,2014, 179(10): 514–521.

34. Huang T, Gao B, X Hu, Lu X, Well R, Christie P, Bakken L, Ju X*. Ammonia-oxidation as an engine to generate nitrous oxide in an intensively managed calcareous Fluvo-aquic soil. Scientific Reports, 2014, 4, 3950; DOI:10.1038/srep03950.

35. Qin L, Zhao J, Tian J, Chen L, Sun ZA, Guo Y, Lu X, Gu M, Xu G, Liao H*.The high-affinity phosphate transporter GmPT5 regulates phosphate transport to nodules and nodulation in soybean. Plant Physiology, 2012,159(4): 1634-1643.

36. Gao X, Lu X, Wu M, Zhang H, Pan R, Tian J, Li S, Liao H*. Co-inoculation with Rhizobia and AMF inhibited soybean red crown rot: from field study to plant defense-related gene expression analysis. PLoS One ,2012, 7(3): e33977.

37. Qiu S, Ju X, Lu X, Ingwersen J, Li L, Streck T, Christie P, Zhang F*. Improved nitrogen management for an intensive winter wheat / summer maize double-cropping system. Soil Science Society of America Journal ,2012, 76(1): 286-297.

38. Ju X#, Lu X#, Gao Z, Chen X, Su F, Kogge M, Römheld V, Christie P, Zhang F*. Processes and factors controlling N2O production in an intensively managed low carbon calcareous soil under sub-humid monsoon conditions. Environmental Pollution,2011, 159(4): 1007-1016.  

39. Well R*, Flessa H, Lu X, Ju X, Römheld V. Isotopologue ratios of N2O emitted from microcosms with NH4+ fertilized arable soils under conditions favoring nitrification. Soil Biology & Biochemistry ,2008, 40(9): 2416-2426. 2008.


中文核心期刊

1.      王沁雯,陈文杰,毛婧莹,李书悦,王天琪,梁翠月,陈渊,陆星*,田江(2025)广西黄姚豆豉特色发酵过程中矿物质与植酸动态变化规律,食品与发酵工业,https://doi.org/10.13995/j.cnki.11-1802/ts.045104.

2.      毛婧莹,李书悦,王沁雯,牟晓煜,陆星*,梁翠月,田江(2025)长期不同施磷水平下甜玉米生长和养分吸收规律研究,安徽农业科学,53(16):153-159,163. Doi:10.3969/i.issn.0517-6611.2025.16.034

3.      阮淮康,陈倩倩,陆星*,梁翠月,田江(2025)磷水平对酸性土壤中大豆生长及养分吸收的影响,应用生态学报,10.13287/j.1001-9332.202510.011

4.      彭松,祝晓慧,黄焯芹,阮文亮,陆星,林东教,邓兰生,梁翠月,田江,田纪辉*(2024)赤红壤和石灰土四种绿肥根际磷转化过程,生态学杂志,https://link.cnki.net/urlid/21.1148.Q.20240815.1840.002

5.      祝晓慧,谭婧琳,周慧颖,王天琪,张兵兵,陆星,田纪辉*,梁翠月,田江(2024)不同基因型大豆与玉米间作对土壤磷组分与作物磷吸收的影响,应用生态学报. 10.13287/j.1001-9332.202406.013

6.      周慧颖,祝晓慧,谭婧琳,田纪辉,王天琪,张兵兵,陆星*,梁翠月,田江. 不同根构型大豆与甜玉米间作对作物生长与磷吸收的影响. 华南农业大学学报, 2024. , 45(4): 505-515. doi: 10.7671/j.issn.1001-411X.202312002.

7.      刘昭阳, 李书悦, 毛婧莹, 燕涵, 梁翠月,陆星*,田江. 镁营养对大豆生长及根系形态构型的影响. 华南农业大学学报, 2024, 45(3): 321-328. DOI: 10.7671/j.issn.1001-411X.202311009.

8.      李雅雪,盘耀亮,彭光粉, 田江, 陆星*, 梁翠月. GmNTLs调控大豆根系响应低磷胁迫的功能研究. 华南农业大学学报,2023, 44(2): 221-229.

9.      罗莎莉,王幼娟, 陆星,陈康,王秀荣*. 耐镉促生菌株的分离鉴定及对大豆的促生效应. 微生物学通报, 2022, 49(8): 3137−3149.

10.   郭真, 陈倩倩, 陆星, 田江, 彭桂香*, 梁翠月.3株芽孢杆菌的分离鉴定及其促生效果研究. 安徽农业科学, 2022, 50 (18).

11.   罗莎莉,王幼娟, 陆星,陈康,王秀荣*. 耐镉促生菌株的分离鉴定及对大豆的促生效应. 微生物学通报, 2022, 49(8): 3137−3149.

12.   邓兰生,涂攀峰,陆星,田江,沈宏,田纪辉,姬静华. 新农科背景下的产教融合实践教学模式探索与实践.安徽农业科学,2022,50(5):252-254,257.

13.   刘国选,陈康,陆星,田江,梁翠月*. 大豆 GmPIN2b 调控根系响应低磷胁迫的功能研究. 华南农业大学学报,  2021, 42(4): 33-41.

14.   邓兰生, 涂攀峰, 沈汉洲, 田江, 陆星, 姬静华.校企合作实践教学基地的建设与实践——以华南农业大学东莞一翔液体肥料有限公司实践教学基地为例, 安徽农学通报, 2020, 26(21), DOI:10.16377/j.cnki.issn1007-7731.2020.21.059.

15.   田江*,梁翠月,陆星,陈倩倩. 根系分泌物调控植物适应低磷胁迫的机制.华南农业大学学报,2019, 40(5): 175-185.

16.   余常兵,陆星*,廖星,廖红. 油菜高通量根系构型定量分析与三维重建系统. 中国油料作物学报,2016, 38 (5): 681-690.

17.   李凯,郭宇琦,刘楚楠,陆星*,廖红. 铵硝配比对大豆生长及结瘤固氮的影响. 中国油料作物学报,2014, 36 (3): 349-356.

18.   季加敏,喻瑶,陆星,巨晓棠*.肥料添加剂降低N2O排放的效果与机理. 植物营养与肥料学报, 2012, 18 (6): 1434-1440.

19.   陆星,巨晓棠*,张福锁,Volker Römheld. 硅胶管气样原位采集技术研究土壤N2O浓度及通量变化. 植物营养与肥料学报, 2010,16 (2): 457-464.

二、授权专利:

1.      一种大豆天冬酰胺合成酶类似基因及其应用。发明人:田江、许静怡、杨兴齐、庄庆礼、梁翠月、陆星。专利号:ZL202310376006.8。授权日期:2024-05-10

2.      GmBBE-like43基因在调控植物适应低磷和酸铝胁迫及促生长中的应用。发明人:梁翠月、陈倩倩、田江、李季肤、刘国选、陆星、陈康。专利号:ZL202210609252.9。授权日期:2023-06-09

3.      一株耐盐碱地固氮大豆根瘤菌及其应用。发明人:梁翠月、陈倩倩、陆星、谢宝星、刘国选、管子迪、田江、田纪辉。专利号:ZL202210193179.1。授权日期:2023-04-14。

4.      一株耐镉促生嗜油不动杆菌菌株及其应用,王秀荣、王幼娟、罗莎莉、陆星,2023, 专利号:ZL 202110606574.3

5.      一株高效固氮慢生根瘤菌菌株及其应用,梁翠月、管子迪、陆星、田江、刘国选、陈倩倩、陈康,2022,专利号: ZL 202110502433.7

6.      一株耐镉促生微小杆菌菌株及其应用,王秀荣、王幼娟、罗莎莉、陆星,2022,专利号:ZL 202110531112.X

7.      一种简易的稳定同位素气体标记装置,王秀荣、赵少鹏、曹华元、陆星、王桂花,2020,专利号:ZL 201921927737.2

8.      植物根系三维固定培养装置,余常兵,陆星,李银水,秦璐, 廖红,廖星,胡小加,谢立华,2015,专利号ZL 201520262377.4

三、出版著作:
欧盟水肥一体化技术.(澳)罗德尼.汤普森(Rodney Thompson)等主编;邹国元,杨俊刚 主译.北京:中国农业出版社. 2020.12


招生专业

资源利用与植物保护(专硕)



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