Division of Chemistry and Chemical Engineering 210-41, California Institute of Technology, 1200 East California Boulevard, Pasadena, California 91125, USA.
Chem Soc Rev. 2018 Dec 21;47(24):8980-8997. doi: 10.1039/c8cs00665b. Epub 2018 Oct 3.
The standard proteinogenic amino acids grant access to a myriad of chemistries that harmonize to create life. Outside of these twenty canonical protein building blocks are countless noncanonical amino acids (ncAAs), either found in nature or created by man. Interest in ncAAs has grown as research has unveiled their importance as precursors to natural products and pharmaceuticals, biological probes, and more. Despite their broad applications, synthesis of ncAAs remains a challenge, as poor stereoselectivity and low functional-group compatibility stymie effective preparative routes. The use of enzymes has emerged as a versatile approach to prepare ncAAs, and nature's enzymes can be engineered to synthesize ncAAs more efficiently and expand the amino acid alphabet. In this tutorial review, we briefly outline different enzyme engineering strategies and then discuss examples where engineering has generated new 'ncAA synthases' for efficient, environmentally benign production of a wide and growing collection of valuable ncAAs.
标准的蛋白质氨基酸赋予了无数种化学物质的可能性,这些化学物质协同作用创造了生命。除了这二十种典型的蛋白质构建块之外,还有无数种非典型氨基酸(ncAAs),它们要么存在于自然界中,要么由人类创造。随着研究揭示了它们作为天然产物和药物、生物探针等前体的重要性,人们对 ncAAs 的兴趣日益浓厚。尽管它们有广泛的应用,但 ncAAs 的合成仍然是一个挑战,因为立体选择性差和官能团兼容性低阻碍了有效的制备途径。酶的使用已成为制备 ncAAs 的一种通用方法,并且可以对天然酶进行工程改造,以更有效地合成 ncAAs 并扩展氨基酸字母表。在本教程综述中,我们简要概述了不同的酶工程策略,然后讨论了一些通过工程改造产生新的“ncAA 合酶”的例子,这些合酶可用于高效、环保地生产广泛且不断增长的有价值的 ncAAs。