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氨基酸生物合成的除草抑制剂与耐除草剂作物

Herbicidal inhibitors of amino acid biosynthesis and herbicide-tolerant crops.

作者信息

Tan S, Evans R, Singh B

机构信息

BASF Corporation, Research Triangle Park, North Carolina 27709, USA.

出版信息

Amino Acids. 2006 Mar;30(2):195-204. doi: 10.1007/s00726-005-0254-1. Epub 2006 Mar 20.

Abstract

Acetohydroxyacid synthase (AHAS) inhibitors interfere with branched-chain amino acid biosynthesis by inhibiting AHAS. Glyphosate affects aromatic amino acid biosynthesis by inhibiting 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS). Glufosinate inhibits glutamine synthetase and blocks biosynthesis of glutamine. AHAS gene variants that confer tolerance to AHAS inhibitors have been discovered in plants through selection or mutagenesis. Imidazolinone-tolerant crops have been commercialized based on these AHAS gene variants. A modified maize EPSPS gene and CP4-EPSPS gene from Agrobacterium sp. have been used to transform plants for target-based tolerance to glyphosate. A gox gene isolated from Ochrobactrum anthropi has also been employed to encode glyphosate oxidoreductase to detoxify glyphosate in plants. Glyphosate-tolerant crops with EPSPS transgene alone or both EPSPS and gox transgenes have been commercialized. Similarly, bar and pat genes isolated from Streptomyces hygroscopicus and S. viridochromogenes, respectively, have been inserted into plants to encode phosphinothricin N-acetyltransferase to detoxify glufosinate. Glufosinate-tolerant crops have been commercialized using one of these two transgenes.

摘要

乙酰羟酸合酶(AHAS)抑制剂通过抑制AHAS来干扰支链氨基酸的生物合成。草甘膦通过抑制5-烯醇丙酮酰莽草酸-3-磷酸合酶(EPSPS)影响芳香族氨基酸的生物合成。草铵膦抑制谷氨酰胺合成酶并阻断谷氨酰胺的生物合成。通过选择或诱变在植物中发现了赋予对AHAS抑制剂耐受性的AHAS基因变体。基于这些AHAS基因变体,耐咪唑啉酮作物已实现商业化。来自土壤杆菌属的修饰玉米EPSPS基因和CP4-EPSPS基因已用于转化植物,使其对草甘膦具有基于靶点的耐受性。从嗜水气单胞菌中分离出的gox基因也已被用于编码草甘膦氧化还原酶,以在植物中使草甘膦解毒。仅具有EPSPS转基因或同时具有EPSPS和gox转基因的耐草甘膦作物已实现商业化。同样,分别从吸水链霉菌和绿色产色链霉菌中分离出的bar和pat基因已被插入植物中,以编码膦丝菌素N-乙酰转移酶,使草铵膦解毒。使用这两种转基因之一,耐草铵膦作物已实现商业化。

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