Heterogeneous biocatalysis group, CIC biomaGUNE, Edificio Empresarial "C", Paseo de Miramón 182, 20009, Donostia, Spain.
IKERBASQUE, Basque Foundation for Science, Bilbao, Spain.
ChemSusChem. 2022 May 6;15(9):e202200397. doi: 10.1002/cssc.202200397. Epub 2022 Apr 11.
The activity orchestration of an unprecedented cell-free enzyme system with self-sufficient cofactor recycling enables the stepwise transformation of aliphatic diols into ω-hydroxy acids at the expense of molecular oxygen as electron acceptor. The efficiency of the biosynthetic route was maximized when two compatible alcohol dehydrogenases were selected as specialist biocatalysts for each one of the oxidative steps required for the oxidative lactonization of diols. The cell-free system reached up to 100 % conversion using 100 mM of linear C diols and performed the desymmetrization of prochiral branched diols into the corresponding ω-hydroxy acids with an exquisite enantioselectivity (ee>99 %). Green metrics demonstrate superior sustainability of this system compared to traditional metal catalysts and even to whole cells for the synthesis of 5-hydroxypetanoic acid. Finally, the cell-free system was assembled into a consortium of heterogeneous biocatalysts that allowed the enzyme reutilization. This cascade illustrates the potential of systems biocatalysis to access new heterofunctional molecules such as ω-hydroxy acids.
一种前所未有的无细胞酶体系的活性协调,具有自给自足的辅因子循环,使得可以在分子氧作为电子受体的情况下,逐步将脂肪二醇转化为ω-羟基酸。当选择两种相容的醇脱氢酶作为所需氧化步骤的专家生物催化剂时,生物合成途径的效率达到最大化,这些氧化步骤对于二醇的氧化内酯化是必需的。使用 100mM 的线性 C 二醇,无细胞体系达到了 100%的转化率,并对前手性支化二醇进行了不对称转化,得到了相应的ω-羟基酸,对映选择性极高(ee>99%)。绿色指标表明,与传统金属催化剂相比,甚至与用于合成 5-羟基戊酸的整个细胞相比,该系统具有更高的可持续性。最后,将无细胞体系组装成一个多相生物催化剂联合体,允许酶的再利用。该级联反应说明了系统生物催化在获得新的杂官能团分子(如ω-羟基酸)方面的潜力。