Suppr超能文献

红菜薹子叶中 1-O-芥子酰-β-D-葡萄糖:L-苹果酸酯芥子酰基转移酶活性的发育。

Development of 1-O-sinapoyl-β-D-glucose: L-malate sinapoyltransferase activity in cotyledons of red radish (Raphanus sativus L. var. sativus).

机构信息

Botanisches Institut der Universität zu Köln, Gyrhofstrasse 15, D-5000, Köln 41, Federal Republic of Germany.

出版信息

Planta. 1982 Jun;155(1):31-6. doi: 10.1007/BF00402928.

Abstract

Protein preparations from cotyledons of red radish (Raphanus sativus L. var. sativus) catalyzed the the formation of depsides between cinnamic acids and L-malate, using 1-O-acyl glucose conjugates as the donors. This activity showed an absolute acceptor specificity towards L-malate and a pronounced donor specificity with 1-sinapoylglucose (1-O-sinapoyl-β-D-glucose). Maximal rate of sinapoyl-L-malate formation was found to be at pH 6.3, and there was no requirement for metal ions or sulfhydryl group reagents. The K m values were found to be 0.46 mM for 1-sinapoylglucose and 54 mM for L-malate. Protein extracts obtained from seedlings at different stages of seedling development did not significantly differ with respect to the properties of the enzymatic activity. Appearance and development of extractable activities correlated well with the in vivo transacylation kinetics of 1-sinapoylglucose to sinapoyl-L-malate during seedling growth. Maximal activity was extracted from 10-14-d-old seedlings and found to be at 67 pkat pair(-1) of cotyledons. This new enzymatic activity in phenylpropanoid metabolism refers to an enzyme which can be classified as 1-sinapoylglucose: L-malate sinapoyltransferase (SMT) (EC 2.3.1.-).

摘要

来自萝卜(Raphanus sativus L. var. sativus)子叶的蛋白质制剂,利用 1-O-酰基葡萄糖缀合物作为供体,催化肉桂酸与 L-苹果酸之间形成 depsides。这种活性对子叶具有绝对的受体特异性,对 1-芥子酰葡萄糖(1-O-芥子酰-β-D-葡萄糖)具有明显的供体特异性。发现芥子酰-L-苹果酸形成的最大速率在 pH6.3 时,不需要金属离子或巯基试剂。发现 1-芥子酰葡萄糖的 K m 值为 0.46mM,L-苹果酸的 K m 值为 54mM。从不同幼苗发育阶段的幼苗中获得的蛋白质提取物在酶活性的特性方面没有显著差异。可提取物活性的出现和发展与幼苗生长过程中 1-芥子酰葡萄糖向芥子酰-L-苹果酸的体内转酰基动力学密切相关。最大活性从 10-14 天龄的幼苗中提取,发现子叶的活性为 67pkat 对(-1)。苯丙烷代谢中的这种新的酶活性是指可以归类为 1-芥子酰葡萄糖:L-苹果酸芥子酰转移酶(SMT)(EC 2.3.1.-)的酶。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验