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Large-scale preparation of the phytoalexin elicitor glucohexatose and its application as a green pesticide

机译:植保毒素诱导剂葡萄糖己糖的大规模制备及其作为绿色农药的应用

摘要

Large-scale preparation of the phytoalexin elicitor was achieved through a highly regio- and sterereoselective synthesis using 2,3,4,6-tetra-O-benzoyl-D-glucopyranosyl trichloroacetimidate (1), 1,2:5,6-di-O-isopropylidene-alpha-D-glucofuranose (2), and 6-O-acetyl-2,3,4-tri-O-benzoyl-alpha-D-glucopyranosyl trichloroacetimidate (3) as the synthons. Coupling of 1 with 2 gave the 1-->3-linked disaccharide; subsequent selective removal of 5,6-O-isopropylidene to give 5 followed by selective 6-O-glycosylation with 1 afforded the trisaccharide 6. Hydrolysis to remove the 1,2-O-isopropylidene was accompanied by ring expansion, giving 3,6-branched pyranosyl trisaccharide. Acetylation, selective 1-O-deacetylation, and activation with trichloroacetonitrile gave the trisaccharide donor 7. The trisaccharide acceptor 9 was prepared from condensation of the disaccharide 5 with 3 and subsequent 6-O-deacetylation. Coupling of the trisaccharide donor 7 with the trisaccharide acceptor 9 and subsequent deprotection afforded the glucohexatose elicitor. The cost of the produced glucohexatose should be low enough to allow its applications in agriculture as a green pesticide. At a concentration of 5-10 mg/L, the resultant elicitor was used to treat growing orange trees and harvested oranges, giving very encouraging results, comparable with those obtained using commercial pesticides at a concentration of 1400 mg/L (Topsin-M) for growing trees and 900 mg/L (Tecto) for harvested oranges, respectively. Treatment of tomato leaves against Botrytis cinerea with the synthetic elicitor at a concentration of 10 mg/L gave 82% inhibition, comparable with the inhibition of 84% by Wanmeiling at a concentration of 1000 mg/L. Treatment of tea leaves also showed promising results.
机译:通过使用2,3,4,6-四-O-苯甲酰基-D-吡喃葡萄糖基三氯乙酰亚氨酸盐(1),1,2:5,6-di的高度区域选择性和立体选择性合成来实现大规模制备植物抗毒素-O-异亚丙基-α-D-呋喃葡萄糖(2)和6-O-乙酰基-2,3,4-三-O-苯甲酰基-α-D-吡喃葡萄糖基三氯乙酰亚氨酸盐(3)作为合成子。 1与2偶联得到1→3连接的二糖;随后选择性除去5,6-O-异亚丙基得到5,然后用1选择性进行6-O-糖基化,得到三糖6。水解除去1,2-O-异亚丙基伴随有环的扩展,得到3,6 -支链吡喃糖基三糖。乙酰化,选择性的1-O-脱乙酰基和用三氯乙腈活化得到三糖供体7。三糖受体9由二糖5与3的缩合和随后的6-O-脱乙酰化制备。将三糖供体7与三糖受体9偶联并随后脱保护,得到葡糖六糖引发剂。所生产的葡萄糖己糖的成本应足够低,以使其可以作为绿色农药用于农业。在5-10 mg / L的浓度下,所得引发剂用于处理正在生长的橘子树和收获的橘子,与使用1400 mg / L的商业杀虫剂(Topsin-M)获得的结果相当,结果令人鼓舞。分别用于种植树木和900 mg / L(Tecto)的收获桔子。用浓度为10 mg / L的合成引发剂处理番茄灰霉病对番茄灰霉病的抑制作用为82%,相当于用1000 mg / L的Wanmeiling抑制84%。茶叶的处理也显示出令人鼓舞的结果。

著录项

  • 作者

    Ning J; Kong FZ; Lin BM; Lei HD;

  • 作者单位
  • 年度 2003
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  • 原文格式 PDF
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  • 入库时间 2022-08-20 20:32:04

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