产品封面图
文献支持

赤霉素GA3

收藏
  • ¥350
  • YOYOBIO
  • 上海
  • YJ-B20187-250mg
  • 2025年09月12日
    avatar
  • 企业认证

    点击 QQ 联系

  • 万千商家帮你免费找货

    0 人在求购买到急需产品
    • 详细信息
    • 文献和实验
    • 技术资料
    • 保存条件

      2-8℃

    • 保质期

      见包装

    • 英文名

      Gibberellin A3

    • 库存

      大量现货

    • 供应商

      上海研谨生物

    • CAS号

      77-06-5

    • 规格

      250mg

    赤霉素GA3

    分析标准品,HPLC≥90%

    Gibberellin A3

    CAS号:77-06-5

    分子式:C19H22O6

    分子量:346.37

    MDLMFCD00079329

    货号

    规格/参数/品牌

    价格

    货期

    YJ-B20187-250mg

    分析标准品,HPLC≥90%

    350.00

    现货

    YJ-B62616-1.2ml

    分析标准品,100μg/ml in acetonitrile

    280.00

    2-3

    YJ-B62617-1.2ml

    分析标准品,1000μg/ml in acetonitrile

    590.00

    2-3

    JS18001-5g

    BR90%

    140.00

    现货

    JS18001-25g

    BR90%

    300.00

    现货

    JS18001-50g

    BR90%

    480.00

    现货

    JS18001-100g

    BR90%

    700.00

    现货

    JS18001-500g

    BR90%

    2500.00

    现货

    JS28506-5g

    高纯,98%

    270.00

    现货

    JS28506-25g

    高纯,98%

    560.00

    现货

    JS28506-100g

    高纯,98%

    1280.00

    现货

    JV34540-1g

    用于植物细胞培养, ≥95%(HPLC)

    610.00

    现货

    JV34540-5g

    用于植物细胞培养, ≥95%(HPLC)

    2144.00

    现货

    JV34540-25g

    用于植物细胞培养, ≥95%(HPLC)

    8300.00

    现货

    JV34540-50g

    用于植物细胞培养, ≥95%(HPLC)

    13000.00

    现货

     

    产品介绍

    Gibberellic Acid 由真菌 Gibberella fujikuroi 命名而来。Gibberellic Acid 调节植物发育和生长的过程,包括种子发育和发芽,茎和根的生长,细胞分裂和开花时间。

    熔点:227℃

    沸点:628.595℃ at 760 mmHg

    比旋光度:(EtOH)+92

    外观:白色结晶

    溶解性:DMSO  :  100  mg/mL  (288.71  mM;  Need  ultrasonic)

    敏感性:对光敏感

    储存条件:2-8℃

    注意:部分产品我司仅能提供部分信息,我司不保证所提供信息的权威性,仅供客户参考交流研究之用。

    风险提示:丁香通仅作为第三方平台,为商家信息发布提供平台空间。用户咨询产品时请注意保护个人信息及财产安全,合理判断,谨慎选购商品,商家和用户对交易行为负责。对于医疗器械类产品,请先查证核实企业经营资质和医疗器械产品注册证情况。

    图标文献和实验
    该产品被引用文献

    参考文献(48)

    48. [IF=6.8] Kai-Ping Cong et al."Plasma-activated water: A novel approach to modulating main pectin, hemicellulose and cellulose metabolism in goji berry cell walls."POSTHARVEST BIOLOGY AND TECHNOLOGY.2025 Nov;229:113727

    47. [IF=4.8] Zeeshan Muhammad et al."Nano-selenium mitigates arsenate toxicity in soybean roots by modulating phenylalanine and salicylic acid pathways."BMC PLANT BIOLOGY.2025 Dec;25(1):1-17

    46. [IF=8.5] Ziheng Cui et al."The ethylene responsive factor TaERF-2 A activates gibberellin 2-oxidase gene TaGA2ox2-3B expression to enhance seed dormancy in wheat."INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES.2025 Jun;314:144483

    45. [IF=4.8] Lu Han et al."Magnetic field improvement of the germination of brown rice in the absence/presence of gibberellin: Changes in α-amylase activity and starch structural and physicochemical properties."Food Bioscience.2024 Nov;:105510

    44. [IF=4] Han Liu et al."Physiological Mechanism of EBR for Grain-Filling and Yield Formation of Tartary Buckwheat."Plants-Basel.2024 Jan;13(23):3336

    43. [IF=4.3] Shah Kamran et al."Gibberellin-3 induced dormancy and suppression of flower bud formation in pitaya (Hylocereus polyrhizus)."BMC PLANT BIOLOGY.2025 Dec;25(1):1-15

    42. [IF=4.9] Kamran Shah et al."Transcriptome Analysis Reveals Sugar and Hormone Signaling Pathways Mediating Flower Induction in Pitaya (Hylocereus polyrhizus)."INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES.2025 Jan;26(3):1250

    41. [IF=6.8] Ting Zheng et al."Optimal rooting substrates and hormonal regulation via a multi-omics analysis during Vitis davidii cutting rooting."Plant Stress.2025 Jun;16:100851

    40. [IF=3.1] Qinqin He et al."Role of BraSWEET12 in Regulating Flowering through Sucrose Transport in Flowering Chinese Cabbage."Horticulturae.2024 Oct;10(10):1037

    39. [IF=4.4] Ma Yufan et al."PmLBD3 links auxin and brassinosteroid signalling pathways on dwarfism in Prunus mume."BMC BIOLOGY.2024 Dec;22(1):1-21

    38. [IF=2.9] Yang Ai et al."The Impacts of Plant Growth Regulators on the Rapid Propagation of Gardenia jasminoides Ellis. in Tissue Culture."Forests".2024 Mar;15(3):446

    37. [IF=2.6] Wang Wenhao et al."Simultaneous determination of five plant hormones in cotton leaves using QuEChERS combined with HPLC‒MS/MS."Journal of Cotton Research".2024 Dec;7(1):1-14

    36. [IF=4.5] Luhong Zhang et al."Methodological and Physiological Study during Seed Dormancy Release of Symplocos paniculata."Plants-Basel".2024 Jan;13(11):1459

    35. [IF=3.7] Honglin Zhang et al."ZmGRAS46 Negatively Regulates Flowering Time in Arabidopsis thaliana."Agronomy-Basel.2024 Jan;14(1):155

    34. [IF=4.5] Yuhe Wang et al."Physiological Mechanisms Underlying Tassel Symptom Formation in Maize Infected with Sporisorium reilianum."Plants-Basel.2024 Jan;13(2):238

    33. [IF=6.1] Yu Lin et al."Production of Gibberellins via a Non-Natural Pathway Using Steviol as a Substrate."JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY.2024;72(1):540–548

    32. [IF=4.5] Tiandi Zhu et al."The Postharvest Application of Carvone, Abscisic Acid, Gibberellin, and Variable Temperature for Regulating the Dormancy Release and Sprouting Commencement of Mini-Tuber Potato Seeds Produced under Aeroponics."Plants-Basel.2023 Jan;12(23)

    31. [IF=8.2] Huan He et al."Comprehensive analysis of NAC transcription factors in Scutellaria baicalensis and their response to exogenous ABA and GA3."INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES.2023 Jul;244:125290

    30. [IF=6.627] Xiaoqiang Zhao et al."New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination."Frontiers in Plant Science.2023 Mar 15;14:1152399

    29. [IF=5.26] Zeng Danqi et al."Uncovering the involvement of DoDELLA1-interacting proteins in development by characterizing the DoDELLA gene family in Dendrobium officinale."BMC PLANT BIOLOGY.2023 Dec;23(1):1-17

    28. [IF=3.251] Ming Yang et al."ABA and SA Participate in the Regulation of Terpenoid Metabolic Flux Induced by Low-Temperature within Conyza blinii."Life-Basel.2023 Feb;13(2):371

    27. [IF=5.363] Kamran Shah et al."Transcriptome analysis reveals dual action of salicylic acid application in the induction of flowering in Malus domestica."PLANT SCIENCE.2022 Nov;324:111433

    26. [IF=4.116] Zhang  Hongliang et al."Role of gibberellin and its three GID1 receptors in Jasminum sambac stem elongation and flowering."Planta. 2022 Jan;255(1):1-16

    25. [IF=8.34] Li Ying et al."Transcriptome and miRNAome analysis reveals components regulating tissue differentiation of bamboo shoots."Plant Physiol. 2022 Mar;188(4):2182-2198

    24. [IF=2.848] Hong-jiu LIU et al."Response of axillary bud development in garlic (Allium sativum L.) to seed cloves soaked in gibberellic acid (GA3) solution."J Integr Agr. 2020 Apr;19:1044

    23. [IF=3.276] Lu Juanjuan et al."Dormancy and germination of the trimorphic achenes of a cold desert annual: spreading the risk over time."Aob Plants. 2020 Dec;12(6):

    22. [IF=3.463] Hongjiu Liu et al."Effect of the mode and time of gibberellic acid treatment on plant architecture and bulb structure in garlic (Allium sativum L.)."Sci Hortic-Amsterdam. 2019 Nov;257:108723

    21. [IF=4.215] Ahmad  Husain et al."Impact of water deficit on the development and senescence of tomato roots grown under various soil textures of Shaanxi, China."Bmc Plant Biol. 2021 Dec;21(1):1-16

    20. [IF=4.411] Jian-Hui Ye et al."Effects of Light Intensity and Spectral Composition on the Transcriptome Profiles of Leaves in Shade Grown Tea Plants (Camellia sinensis L.) and Regulatory Network of Flavonoid Biosynthesis."Molecules. 2021 Jan;26(19):5836

    19. [IF=4.729] Muhammad Jawaad Atif et al."Transcriptomic analysis of Allium sativum uncovers putative genes involved in photoperiodic pathway and hormone signaling under long day and short day conditions."Plant Sci. 2021 Dec;313:111095

    18. [IF=5.537] Hui Liu et al."Mechanism of early germination inhibition of fresh walnuts (Juglans regia) with gamma radiation uncovered by transcriptomic profiling of embryos during storage."Postharvest Biol Tec. 2021 Feb;172:111380

    17. [IF=3.687] Jiaqi You et al."Multiple criteria-based screening of Trichoderma isolates for biological control of Botrytis cinerea on tomato."Biol Control. 2016 Oct;101:31

    16.  Yao, Yaming, et al. "Effect of 2, 4-epibrassinolide treatment on the postharvest quality and physiological metabolism of fresh daylily flower buds during storage." Scientia Horticulturae 226 (2017): 110-116.https:##doi.org/10.1016/j.scienta.2017.08.039

    15.  Zhang, De-Jian, et al. "Auxin modulates root-hair growth through its signaling pathway in citrus." Scientia Horticulturae 236 (2018): 73-78.https:##doi.org/10.1016/j.scienta.2018.03.038

    14.  Zhu, Congming, et al. "Cytokinin is an effective stimulator for turion sprouting of Potamogeton crispus." Fundamental and Applied Limnology (2015): 271-278.

    13.  Jiaqi You, Jing Zhang, Mingde Wu, Long Yang, Weidong Chen, Guoqing Li, Multiple criteria-based screening of Trichoderma isolates for biological control of Botrytis cinerea on tomato, Biological Control, Volume 101, 2016, Pages 31-38, ISSN 1049-9644, https:

    12.  姜雨昕,姜大成,翁丽丽,孙金,肖春萍.北苍术种子的萌发特性及其生态适应性研究[J].种子,2020,39(08):158-163.

    11.  吴进东,尹亚楠,袁束彪.GA_3对霍山石斛生长及高温胁迫的调控效应[J].滁州学院学报,2020,22(05):1-5.

    10.  汪瑾,戴琳,王安琦,卢亚萍.超高效液相色谱-高分辨质谱测定10种植物内源激素[J].分析科学学报,2021,37(01):81-87.

    9.  张丹,孙萍,陈思瑾,幸华,芮仕立,牛早霞,栗孟飞.液相色谱-串联质谱联用法同时测定6种植物激素[J].甘肃农业大学学报,2020,55(04):98-103.

    8.  龙云树,杨荣萍,张应华,刘自贵,张国平,吴兴恩.野生中华猕猴桃种子萌发的最佳条件[J].贵州农业科学,2020,48(09):93-96.

    7.  赵露  周新芳  孙天尊 等. 人参多越冬芽发育的生理解析--基于HPLC-MS/MS法的内源植物激素分析[J]. 东北师大学报:自然科学版  2020(1):127-135.

    6.  王兆龙  王义菊  于强 等. 不同授粉措施对三季梨果实品质及内源激素的影响[J]. 山西果树  2019  189(03):1-4.

    5.  何学青  沙亚·海拉提  张依凡 等. 不同外源植物生长物质对柳枝稷种子萌发特性的影响[J]. 草地学报  2018(3):684-690.

    4.  王楚, 顾宸瑞, 姜静,. 赤霉素对盆栽白桦无性系早期生长及结实的影响[J]. 南京林业大学学报:自然科学版, 2019, 43(05):16-22.

    3.  商桑, 王健, 丁晓雯. 赤霉素GA3急性毒性和遗传毒性[J]. 食品科学, 2015(17):236-239.

    2.  荣涛, 宁云芬, 朱杨帆,. 种皮处理、温度及赤霉素处理对跳舞草种子萌发的影响[J]. 农业研究与应用, 2019, 32(01):36-39.

    1.  王健, 任雪梅, 丁晓雯. 正交试验优化超声波辅助提取果蔬中赤霉素GA_3残留量的测定条件[J]. 食品研究与开发, 2020.

    相关实验
    • 结合型赤霉素 bound gibberellin

          几乎所有的赤霉素,在提取时,从乙酸乙酯的酸可溶性部分中所得到的都是游离型赤霉素。也有一些赤霉素是以与其他分子相结合的形态而存在,对这种类型的赤霉素,总称为结合型赤霉素( bound或 conjugated gibberellin)。对葡糖配糖体(例如 3-O-β -葡糖基 GA3 )和葡糖酯( GA4 葡糖酯)可以进行分离鉴定。前者为极性大的水溶性物质,可用 n-丁醇提取;后者被认为是中性赤霉素( neutral gibberellin

    • 赤霉素

      结实等,对不同的赤霉素也表现出不同的敏感性。 GA3 (即赤霉酸)具有很高活性,是我国在生产上广泛应用的一种。它的纯品为白色结晶,难溶于水,易溶于乙醇、丙酮和酯类。一般植物体内至少有两种或两种以上的赤霉素,不同赤霉素之间可以相互转变。高等植物中的赤霉素主要在未成熟种子、营养芽、幼叶、根尖等部位合成。合成后在体内降解很慢,但易与糖、蛋白质相结合成为结合态,它是赤霉素的一种贮藏形式。赤霉素能刺激茎的伸长生长,特别对遗传上矮化型效果更为显著。此外,还有打破休眠,促进发芽,诱导开花,促进果实生长,诱导α -淀粉

    • 赤霉素 gibberellin

      为 Fusarium moniliforme Sheldon〕的培养液中分离出来的,是一种能引起稻苗徒长的物质,由黑泽英一在 1926年发现的,后经薮田贞治郎和住木谕介( 1928)获得结晶并命名。这种结晶的有效成分后来查明为 GA1 、 GA2 和 GA3 的混合物。有 J. MacMilan和 J. Suter( 1958)从高等植物中分离得到 GA1 以来,到现在已得到 20种以上,含有赤霉素的低等植物,在植物界也广泛存在。在高等植物中,赤霉素是在未成熟种子、顶芽和根等器官中合成的。 GA的典型生理

    图标技术资料

    暂无技术资料 索取技术资料

    同类产品报价

    产品名称
    产品价格
    公司名称
    报价日期
    ¥200
    上海源叶生物科技有限公司
    2025年07月14日询价
    ¥200
    上海博尔森生物科技有限公司
    2025年07月13日询价
    ¥200
    上海联迈生物工程有限公司
    2025年06月24日询价
    ¥240
    上海研谨生物科技有限公司
    2025年07月16日询价
    ¥144
    合肥博美生物科技有限责任公司
    2026年03月19日询价
    文献支持
    赤霉素GA3
    ¥350