Isaacson Tal, Ohad Itzhak, Beyer Peter, Hirschberg Joseph
Departments of Genetics , The Hebrew University of Jerusalem, Jerusalem 91904, Israel.
Plant Physiol. 2004 Dec;136(4):4246-55. doi: 10.1104/pp.104.052092. Epub 2004 Nov 19.
Most enzymes in the central pathway of carotenoid biosynthesis in plants have been identified and studied at the molecular level. However, the specificity and role of cis-trans-isomerization of carotenoids, which occurs in vivo during carotene biosynthesis, remained unresolved. We have previously cloned from tomato (Solanum lycopersicum) the CrtISO gene, which encodes a carotene cis-trans-isomerase. To study the biochemical properties of the enzyme, we developed an enzymatic in vitro assay in which a purified tomato CRTISO polypeptide overexpressed in Escherichia coli cells is active in the presence of an E. coli lysate that includes membranes. We show that CRTISO is an authentic carotene isomerase. Its catalytic activity of cis-to-trans isomerization requires redox-active components, suggesting that isomerization is achieved by a reversible redox reaction acting at specific double bonds. Our data demonstrate that CRTISO isomerizes adjacent cis-double bonds at C7 and C9 pairwise into the trans-configuration, but is incapable of isomerizing single cis-double bonds at C9 and C9'. We conclude that CRTISO functions in the carotenoid biosynthesis pathway in parallel with zeta-carotene desaturation, by converting 7,9,9'-tri-cis-neurosporene to 9'-cis-neurosporene and 7'9'-di-cis-lycopene into all-trans-lycopene. These results establish that in plants carotene desaturation to lycopene proceeds via cis-carotene intermediates.
植物类胡萝卜素生物合成中心途径中的大多数酶已在分子水平上得到鉴定和研究。然而,类胡萝卜素在体内胡萝卜素生物合成过程中发生的顺反异构化的特异性和作用仍未得到解决。我们之前从番茄(Solanum lycopersicum)中克隆了CrtISO基因,该基因编码一种胡萝卜素顺反异构酶。为了研究该酶的生化特性,我们开发了一种体外酶促测定法,其中在大肠杆菌细胞中过表达的纯化番茄CRTISO多肽在含有膜的大肠杆菌裂解物存在下具有活性。我们表明CRTISO是一种真正的胡萝卜素异构酶。其顺反异构化的催化活性需要氧化还原活性成分,这表明异构化是通过作用于特定双键的可逆氧化还原反应实现的。我们的数据表明,CRTISO将C7和C9处相邻的顺式双键成对异构化为反式构型,但无法异构化C9和C9'处的单个顺式双键。我们得出结论,CRTISO在类胡萝卜素生物合成途径中与ζ-胡萝卜素去饱和作用并行发挥作用,通过将7,9,9'-三顺式神经孢烯转化为9'-顺式神经孢烯以及将7',9'-二顺式番茄红素转化为全反式番茄红素。这些结果表明,在植物中,胡萝卜素向番茄红素的去饱和过程是通过顺式胡萝卜素中间体进行的。