中文    English

Journal of Library and Information Science in Agriculture ›› 2020, Vol. 32 ›› Issue (6): 49-57.doi: 10.13998/j.cnki.issn1002-1248.2019.10.30-0955

• Research paper • Previous Articles     Next Articles

Analysis of Research Trends in Brassinosteroid Based on Web of Science Database

LIU Shaojin1, XIAO Zhengqiang1, Wu Zhaoxiang2,*   

  1. 1. Institute of Strategy of Science & Technology, Jiangxi Academy of Sciences, Nanchang 330096;
    2. Institute of Biological Resources, Jiangxi Academy of Sciences, Nanchang 330096
  • Received:2019-10-30 Online:2020-06-05 Published:2020-06-05

Abstract: [Purpose / Significance] In order to objectively and comprehensively reveal research progress and knowledge structure of brassinosteroid to guide researchers to better promote the follow-up study. [Method/Process] This paper systematically analyzed the big data of international literature on brassinosteroid from 1970 to 2019 based on Web of Science database by CiteSpace software. [Results / Conclusions] (1) Since the discovery of brassinosteroid, the total number of research has been increasing year by year, especially for recent ten years China, the United States and Japan have published the most number of papers, among which, the RIKEN (Japan) and Chinese Academy of Sciences are the main force. (2) There are five core author groups formed around Japanese researchers, and the internal cooperation is close and gradually spreads out. (3) The study of brassinosteroid can be divided into four stages: germination stage (1970-1990), formation stage (1991-2000), development period (2001-2010) and mature stage (2011-2019). (4) The focus of future research is the molecular mechanism of brassinosteroid involved in stress response and its application.

Key words: brassinosteroid, Web of Science, CiteSpace, research trends

CLC Number: 

  • G258.6
[1] Mitchell J W, Mandava N, Worley J F, et al.Brassins-a new family of plant hormones from rape pollen[J]. Nature,1970,225(5237):1065-1066.
[2] Grove M D, Spencer G F, Rohwedder W K, et al.Brassinolide, a plant growth-promoting steroid isolated from Brassica napus pollen[J]. Nature,1979,281(5728):216-217.
[3] Clouse S D, Sasse J M.Brassinosteroids: essential regulators of plant growth and development[J]. Annual Review of Plant Biology,1998,49(1):427-451.
[4] Li J, Nagpal P, Vitart V, et al.A role for brassinosteroids in light-dependent development of Arabidopsis[J]. Science,1996,272(5260):398-401.
[5] Fariduddin Q, Yusuf M, Ahmad I, et al.Brassinosteroids and their role in response of plants to abiotic stresses[J]. Biologia Plantarum,2014,58(1):9-17.
[6] 周增亮,胡冬南,刘爽等.油茶研究文献计量分析[J].经济林研究,2019,37(2):204-214.
[7] 郭起荣,胡亚平,汪贵斌,等.世界银杏研究主题分析[J].江西农业大学学报,2018,40(6):1117-1124.
[8] 石旺鹏,谭树乾.蝗虫生物防治文献计量分析[J].中国生物防治学报,2019,35(3):325-334.
[9] 杨雨寒,靳炜,刘俐媛,等.基于SCI论文的汞污染防治领域的文献计量分析[J].环境工程学报,2019,13(6):1488-1501.
[10] 万洪秀,吴昊,郭娅.基于文献计量的长江洪水研究态势分析[J].长江科学院院报,2019,36(7):153-158.
[11] 郑江平,程焕,傅天珍,等.从文献计量看中外食品科学研究[J].中国食品学报,2018,18(11):253-267.
[12] 林志健,王雨,郭凡帆,等.菊苣研究进展的CiteSpace知识图谱分析[J/OL].中国中药杂志:1-12.[2020-03-10].https://doi.org/10.19540/j.cnki.cjcmm.20200227.501.
[13] 陈若卉,贾昊男,尹航,等.基于CiteSpace的疫苗及其相关态度研究的热点与前沿趋势分析[J].中国公共卫生, 2019:1-4.
[14] 王玉芳,郭辰星.中国林业生物质能源研究综述—基于文献计量工具的可视化分析[J].林业经济,2019,41(9):118-122.
[15] 柯懿. 基于CiteSpace的可视化对比的教育与地方经济增长实证研究[J].科技通报,2019,35(8):208-215.
[16] 陈悦,陈超美,刘则渊,等.CiteSpace知识图谱的方法论功能[J].科学学研究,2015,33(2):242-253.
[17] 李杰,陈超美.CiteSpace科技文本挖掘及可视化[M].首都经济贸易大学出版社,2016.
[18] 付健,丁敬达.CiteSpace和VOSviewer软件的可视化原理比较[J].农业图书情报,2019,31(10):31-37.
[19] Hothorn M, Belkhadir Y, Dreux M, et al.Structural basis of steroid hormone perception by the receptor kinase BRI1[J]. Nature,2011,474(7352):467-471.
[20] She J, Han Z, Kim T W, et al.Structural insight into brassinosteroid perception by BRI1[J]. Nature,2011,474(7352):472-476.
[21] 胡泽文,孙建军,武夷山.国内知识图谱应用研究综述[J].图书情报工作,2013,57(3):131-137+84.
[22] Hirsch J E, Buela-Casal G.The meaning of the h-index[J]. International Journal of Clinical and Health Psychology,2014,14(2):161-164.
[23] 曹梦,勾宇轩,黄元仿.基于CiteSpace的金花茶研究知识图谱分析[J/OL].广西植物:1-9[2019-10-12].http://kns.cnki.net/kcms/detail/45.1134.Q.20181227.1738.006.html.
[24] 刘少金. 基于Bikinin的油菜素内酯功能类似物设计、合成及其生物活性[D].中国农业大学,2018.
[25] Andersen D L, Back T G, Janzen L, et al.Design, synthesis, and bioactivity of the first nonsteroidal mimetics of brassinolide[J]. The Journal of Organic Chemistry,2001,66(21):7129-7141.
[26] Kurepin L V, Bey M A, Back T G, et al.Structure-function relationships of four stereoisomers of a brassinolide mimetic on hypocotyl and root elongation of the brassinosteroid-deficient det2-1 mutant of Arabidopsis[J]. Journal of Plant Growth Regulation,2016,35:215-221.
[27] De Rybel B, Audenaert D, Vert G, et al.Chemical inhibition of a subset of Arabidopsis thaliana GSK3-like kinases activates brassinosteroid signaling[J]. Chemistry&Biology,2009,16(6):594-604.
[28] Rozhon W, Wang W, Berthiller F, et al.Bikinin-like inhibitors targeting GSK3/Shaggy-like kinases: characterisation of novel compounds and elucidation of their catabolism in planta[J]. BMC Plant Biology,2014,14(1):172.
[29] Takimoto S, Sugiura A, Minami S, et al.In silico exploration for agonists/antagonists of brassinolide[J]. Bioorganic & Medicinal Chemistry Letters,2016,26(7):1709-1714.
[30] Lei B, Heng N, Dang X, et al.Structure based in silico identification of potentially non-steroidal brassinosteroids mimics[J]. Molecular BioSystems,2017,13(7):1364-1369.
[31] Zhang S, Wei Y, Lu Y, et al.Mechanisms of brassinosteroids interacting with multiple hormones[J]. Plant Signaling & Behavior,2009,4(12):1117-1120.
[32] Eremina M, Unterholzner S J, Rathnayake A I, et al.Brassinosteroids participate in the control of basal and acquired freezing tolerance of plants[J]. Proceedings of the National Academy of Sciences of the United States of America,2016,113(40):E5982-E5991.
[33] Sahni S, Prasad B D, Liu Q, et al.Overexpression of the brassinosteroid biosynthetic gene DWF4 in Brassica napus simultaneously increases seed yield and stress tolerance[J].Scientific Repports,2016,6.
[34] Janeczko A, Gruszka D, Pociecha E, et al.Physiological and biochemical characterisation of watered and drought-stressed barley mutants in the HvDWARF gene encoding C6-oxidase involved in brassinosteroid biosynthesis[J]. Plant Physiology and Biochemistry,2016,99:126-141.
[35] Zhu T, Deng X G, Tan W R, et al.Nitric oxide is involved in brassinosteroid-induced alternative respiratory pathway in Nicotiana benthamiana seedlings response to salt stress[J]. Physiologia Plantarum,2016,156(2):150-163.
[36] Li M, Ahammed G J, Li C, et al.Brassinosteroid ameliorates zinc oxide nanoparticles-induced oxidative stress by improving antioxidant potential and redox homeostasis in tomato seedling[J]. Frontiers in Plant Science,2016,7:615.
[37] Sharma A, Thakur S, Kumar V, et al.24-epibrassinolide stimulates imidacloprid detoxification by modulating the gene expression of Brassica juncea L[J]. BMC Plant Biology,2017,17:56.
[38] Belkhadir Y, Jaillais Y, Epple P, et al.Brassinosteroids modulate the efficiency of plant immune responses to microbe-associated molecular patterns[J]. Proceedings of the National Academy of Sciences of the United States of America,2012,109(1):297-302.
[39] Gruszka D.Genetic and molecular bases of brassinosteroid metabolism and interactions with other phytohormones[M]. Brassinosteroids: Plant Growth and Development. Springer,Singapore,2019:219-249.
[40] Lincoln T, Eduardo Z (宋纯鹏,王学路等译).植物生理学 (第四版)[M].科学出版社,2009:520-521.
[41] Xia X J, Zhang Y, Wu J X, et al.Brassinosteroids promote metabolism of pesticides in cucumber[J]. Journal of Agricultural and Food Chemistry,2009,57(18):8406-8413.
[42] Sharma A, Thakur S, Kumar V, et al.Pre-sowing seed treatment with 24-epibrassinolide ameliorates pesticide stress in Brassica juncea L. through the modulation of stress markers[J]. Frontiers in Plant Science,2016,7:1569.
[43] Ahammed G J, Choudhary S P, Chen S, et al.Role of brassinosteroids in alleviation of phenanthrene-cadmium co-contamination-induced photosynthetic inhibition and oxidative stress in tomato[J]. Journal of Experimental Botany,2013,64(1):199-213.
[44] Liu S, He Y, Tian H, et al.Application of brassinosteroid mimetics improves growth and tolerance of maize to nicosulfuron toxicity[J]. Journal of Plant Growth Regulation,2019,38(2):701-712.
[1] ZHAO Lili, ZHANG Xinmin. Analysis of Research Status and Frontier Hotspots in Soil Microorganism Field [J]. Journal of Library and Information Science in Agriculture, 2022, 34(2): 75-87.
[2] SHANG Lina, SONG Xiaolin. Research Progress in Digital Publishing of Academic Journals in China [J]. Journal of Library and Information Science in Agriculture, 2021, 33(7): 72-80.
[3] LI Jihong, CHEN Ninghui, XU Guizhen, JIANG Shan, WANG Hongjiang. A Visualization Analysis of Library, Information and Documentation Science from the Perspective of the National Social Science Fund Programs [J]. Journal of Library and Information Science in Agriculture, 2021, 33(5): 83-92.
[4] LIANG Jingxuan, SONG Huiqi, CHEN Youcheng, ZHENG Qionge. Research Hotspots and Trends of Knowledge Transfer in China Based on Visualization Analysis [J]. Journal of Library and Information Science in Agriculture, 2021, 33(3): 38-55.
[5] XU Yongle, CHEN Yuanyuan, YANG Tingting, WAN Xiangli. Comparative Analysis of the Research on the Influence of Chinese and International Think Tanks [J]. Journal of Library and Information Science in Agriculture, 2021, 33(11): 50-62.
[6] LI Guangli, BAI Xue, ZHANG Meiqi. Analysis of Gold Open Access in China Based on Web of Science [J]. Journal of Library and Information Science in Agriculture, 2020, 32(1): 40-46.
[7] CAO Jing, ZHANG Peili, ZHOU Yali. Analysis of Central Asia Research In Foreign Countries Based on CiteSpaceIII [J]. , 2018, 30(9): 19-26.
[8] DAI Ying. Research on Discipline Development of University based on ESI and InCites [J]. , 2018, 30(9): 68-74.
[9] LIU Feng, LI Xianglan, NAN Hong, TANG Yan. Bibliometric and Visual Analysis on Soybean Breeding for Pest Resistance in China [J]. , 2018, 30(5): 70-74.
[10] ZHONG Yuqi. A Visual Analysis of Knowledge Service of Library in China Based on CiteSpace [J]. , 2018, 30(4): 79-85.
[11] LIU Zhongkai. Visualized Analysis on Domestic Library Wechat Research [J]. , 2018, 30(3): 71-75.
[12] WANG Caihong, WANG Lei, RUAN Liuqing. Evaluation of Funding Effect on Young Scientist Fund Program of the NSFC in Rice, Wheat and Corn [J]. , 2018, 30(2): 92-98.
[13] YU Dengke, PENG Jing, LIU Yanhong, XIAO Huan, ZHOU Rong. The Trend and Hotspots of Agricultural Technology Diffusion in Domestic and Foreign Areas [J]. , 2018, 30(2): 6-17.
[14] GUAN Zhiyuan. The Automated Records Analysis and Generation of Database Retrieving and Data Processing Reports [J]. Agricultural Library and Information, 2018, 30(12): 38-43.
[15] Fu Rongxin, Li Xuanjing, Huang liuxin, Liang yu, Yuan Zhenli, Yang Xiaohua. A Visual Analysis on Research in Wetland Biodiversity Besed on CiteSpace [J]. Agricultural Library and Information, 2018, 30(12): 52-60.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!