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编码菊芋肉桂酸4-羟化酶的cDNA的分离与测序,该酶是参与苯丙烷类通用途径的一种主要植物细胞色素P450。

Isolation and sequence of a cDNA encoding the Jerusalem artichoke cinnamate 4-hydroxylase, a major plant cytochrome P450 involved in the general phenylpropanoid pathway.

作者信息

Teutsch H G, Hasenfratz M P, Lesot A, Stoltz C, Garnier J M, Jeltsch J M, Durst F, Werck-Reichhart D

机构信息

Department of Molecular and Cellular Enzymology, Centre National de la Recherche Scientifique, Unité Propre 406, Strasbourg, France.

出版信息

Proc Natl Acad Sci U S A. 1993 May 1;90(9):4102-6. doi: 10.1073/pnas.90.9.4102.

DOI:10.1073/pnas.90.9.4102
PMID:8097885
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC46454/
Abstract

Cinnamate 4-hydroxylase [CA4H; trans-cinnamate,NADPH:oxygen oxidoreductase (4-hydroxylating), EC 1.14.13.11] is a cytochrome P450 that catalyzes the first oxygenation step of the general phenylpropanoid metabolism in higher plants. The compounds formed are essential for lignification and defense against predators and pathogens. We recently reported the purification of this enzyme from Mn(2+)-induced Jerusalem artichoke (Helianthus tuberosus L.) tuber tissues. Highly selective polyclonal antibodies raised against the purified protein were used to screen a lambda gt11 cDNA expression library from wound-induced Jerusalem artichoke, allowing isolation of a 1130-base-pair insert. Typical P450 domains were identified in this incomplete sequence, which was used as a probe for the isolation of a 1.7-kilobase clone in a lambda gt10 library. A full-length open reading frame of 1515 base pairs, encoding a P450 protein of 505 residues (M(r) = 57,927), was sequenced. The N terminus, essentially composed of hydrophobic residues, matches perfectly the microsequenced N terminus of the purified protein. The calculated pI is 9.78, in agreement with the chromatographic behavior and two-dimensional electrophoretic analysis of CA4H. Synthesis of the corresponding mRNA is induced in wounded plant tissues, in correlation with CA4H enzymatic activity. This P450 protein exhibits the most similarity (28% amino acid identity) with avocado CYP71, but also good similarity with CYP17 and CYP21, or with CYP1 and CYP2 families. According to current criteria, it qualifies as a member of a new P450 family.

摘要

肉桂酸4-羟化酶[CA4H;反式肉桂酸,NADPH:氧氧化还原酶(4-羟化),EC 1.14.13.11]是一种细胞色素P450,催化高等植物中一般苯丙烷类代谢的第一步氧化反应。所形成的化合物对于木质化以及抵御捕食者和病原体至关重要。我们最近报道了从锰离子诱导的菊芋(Helianthus tuberosus L.)块茎组织中纯化该酶。用针对纯化蛋白产生的高度选择性多克隆抗体筛选来自伤口诱导的菊芋的λgt11 cDNA表达文库,从而分离出一个1130碱基对的插入片段。在这个不完整序列中鉴定出了典型的P450结构域,该序列被用作探针在λgt10文库中分离一个1.7千碱基的克隆。对一个1515个碱基对的全长开放阅读框进行了测序,其编码一个由505个残基组成的P450蛋白(M(r)=57,927)。其N端主要由疏水残基组成,与纯化蛋白的微量测序N端完美匹配。计算得到的pI为9.78,与CA4H的色谱行为和二维电泳分析结果一致。相应mRNA的合成在受伤的植物组织中被诱导,与CA4H酶活性相关。这种P450蛋白与鳄梨CYP71的相似性最高(氨基酸同一性为28%),但与CYP17和CYP21,或与CYP1和CYP2家族也有较好的相似性。根据目前的标准,它可被认定为一个新的P450家族的成员。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa75/46454/482d14444b7e/pnas01468-0339-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa75/46454/482d14444b7e/pnas01468-0339-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa75/46454/482d14444b7e/pnas01468-0339-a.jpg

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