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3'-(Phenyl alkynyl) analogs of abscisic acid: synthesis and biological activity of potent ABA antagonists

机译:3' - (苯基炔基)脱落酸的类似物:有效的ABA拮抗剂的合成和生物活性

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摘要

We report here the synthesis and biological testing of 3'-(phenyl alkynyl) abscisic ABA analogs, a new class of potent ABA antagonists. These ABA analogs incorporate a rigid framework of eight carbon atoms attached at the 3'-carbon atom of ABA that prevents folding of the ABA analog-bound receptor required for ABA signalling. The two-step synthesis is based upon the optimized conversion of natural (S)-ABA to 3'-iodo ABA which can be coupled to phenyl acetylenes using Sonogashira conditions, or to styryl compounds through Suzuki chemistry. The parent 3'-(phenyl alkynyl) ABA analog 7 was obtained in 29% yield, 74% yield based on recovered starting material. In a lentil seed germination assay, compound 7 was found to have more potent activity than other known 3'-substituted ABA antagonists to date. In a structure activity study parasubstituted phenyl alkynyl analogs had comparable activity to the analog 7 while the 3'-styryl ABA 18 was only slightly less active. Analog 7 overcame ABA inhibition of germination and seedling growth in a wide range of mono and dicot plant species, including canola, lentil, soybean, rice, wheat, barley, cannabis and canary seed. 3'-(Phenyl alkynyl) ABA analogs have numerous potential practical agricultural applications including promoting ripening of crops, dormancy breaking of seeds and woody perennials, as well as promoting seed germination, and growth under stress conditions as demonstrated in this report.
机译:我们在此报告3' - (苯基炔基)Abscisic ABA类似物的合成和生物学检测,这是一种新的强效ABA拮抗剂。这些ABA类似物包含八个碳原子的刚性框架,其在ABA的3'-碳原子上,可防止ABA信号传导所需的ABA模拟受体的折叠。两步合成基于天然的优化转化为3'-Iodo ABA,其可以使用Sonogashira条件与苯基乙烯基酯,或通过Suzuki化学偶联至Styryl化合物。母体3' - (苯基炔基)ABA类似物7以29%的产率获得,基于回收的原料为74%产率。在扁豆种子萌发测定中,发现化合物7与其他迄今为止其他已知的3'-取代的ABA拮抗剂具有更高的活性活性。在结构活性研究中,寄生苯基炔基类似物与类似物7具有相当的活性,而3'-styryl ABA 18仅略低于略低。模拟7克服ABA抑制各种单声道和幼苗生长的萌发和幼苗生长,包括油菜,扁豆,大豆,米,小麦,大麦,大麻和金丝雀种子。 3' - (苯基炔基)ABA类似物具有许多潜在的实际农业应用,包括促进作物的成熟,种子和木质多年生植物的休眠,以及促进种子萌发,并在本报告中所证明的压力条件下的生长。

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  • 来源
    《Organic & biomolecular chemistry》 |2021年第13期|2978-2985|共8页
  • 作者单位

    Department of Chemistry University of Saskatchewan Saskatoon SK S7N SC9 Canada;

    Department of Chemistry University of Saskatchewan Saskatoon SK S7N SC9 Canada;

    Department of Cell & Systems Biology University of Toronto Toronto ON M5S 3B2 Canada;

    Department of Cell & Systems Biology University of Toronto Toronto ON M5S 3B2 Canada;

    Department of Cell & Systems Biology University of Toronto Toronto ON M5S 3B2 Canada;

    Department of Biology University of Saskatchewan Saskatoon SK S7N 5E2 Canada;

    Department of Biology University of Saskatchewan Saskatoon SK S7N 5E2 Canada;

    Department of Plant Sciences University of Saskatchewan Saskatoon SK S7N 5A8 Canada;

    Department of Plant Sciences University of Saskatchewan Saskatoon SK S7N 5A8 Canada;

    ZYUS Life Sciences Inc. Saskatoon SK S7N 4LS Canada;

    ZYUS Life Sciences Inc. Saskatoon SK S7N 4LS Canada;

    ZYUS Life Sciences Inc. Saskatoon SK S7N 4LS Canada;

    Aquatic and Crop Resource Development National Research Council Canada Ottawa ON K1A 0R6 Canada;

    Department of Agricultural Biology Colorado State University Fort Collins CO 80523 USA;

    Department of Agricultural Biology Colorado State University Fort Collins CO 80523 USA;

    Agriculture and Agri-Food Canada 107 Science Place Saskatoon SK S7N 0X2 Canada;

    Department of Chemistry University of Saskatchewan Saskatoon SK S7N SC9 Canada;

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