MacDonald M Jason, D'Cunha Godwin B
Department of Chemistry, Cape Breton University, 1250 Grand Lake Road, Sydney, NS B1P 6L2, Canada.
Biochem Cell Biol. 2007 Jun;85(3):273-82. doi: 10.1139/o07-018.
Phenylalanine ammonia lyase (PAL; E.C.4.3.1.5), which catalyses the biotransformation of L-phenylalanine to trans-cinnamic acid and ammonia, was first described in 1961 by Koukol and Conn. Since its discovery, much knowledge has been gathered with reference to the enzyme's catabolic role in microorganisms and its importance in the phenyl propanoid pathway of plants. The 3-dimensional structure of the enzyme has been characterized using X-ray crystallography. This has led to a greater understanding of the mechanism of PAL-catalyzed reactions, including the discovery of a recently described cofactor, 3,5-dihydro-5-methyldiene-4H-imidazol-4-one. In the past 3 decades, PAL has gained considerable significance in several clinical, industrial, and biotechnological applications. The reversal of the normal physiological reaction can be effectively employed in the production of optically pure L-phenylalanine, which is a precursor of the noncalorific sweetener aspartame (L-phenylalanyl-L-aspartyl methyl ester). The enzyme's natural ability to break down L-phenylalanine makes PAL a reliable treatment for the genetic condition phenylketonuria. In this mini-review, we discuss prominent details relating to the physiological role of PAL, the mechanism of catalysis, methods of determination and purification, enzyme kinetics, and enzyme activity in nonaqueous media. Two topics of current study on PAL, molecular biology and crystal structure, are also discussed.
苯丙氨酸解氨酶(PAL;E.C.4.3.1.5)催化L-苯丙氨酸生物转化为反式肉桂酸和氨,1961年由库科尔和康恩首次描述。自发现以来,关于该酶在微生物中的分解代谢作用及其在植物苯丙烷类途径中的重要性,人们已经积累了很多知识。该酶的三维结构已通过X射线晶体学进行了表征。这使得人们对PAL催化反应的机制有了更深入的理解,包括发现了一种最近描述的辅因子,3,5-二氢-5-甲基二烯-4H-咪唑-4-酮。在过去的30年里,PAL在多个临床、工业和生物技术应用中具有相当重要的意义。正常生理反应的逆转可有效地用于生产光学纯的L-苯丙氨酸,它是非热量甜味剂阿斯巴甜(L-苯丙氨酰-L-天冬氨酰甲酯)的前体。该酶分解L-苯丙氨酸的天然能力使PAL成为治疗苯丙酮尿症这种遗传疾病的可靠方法。在这篇综述中,我们讨论了与PAL的生理作用、催化机制、测定和纯化方法、酶动力学以及在非水介质中的酶活性相关的突出细节。还讨论了当前关于PAL研究的两个主题,即分子生物学和晶体结构。