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III类老黄色酶及其半胱氨酸变体的催化性能

Catalytic Performance of a Class III Old Yellow Enzyme and Its Cysteine Variants.

作者信息

Scholtissek Anika, Gädke Eric, Paul Caroline E, Westphal Adrie H, van Berkel Willem J H, Tischler Dirk

机构信息

Environmental Microbiology Group, Interdisciplinary Ecological Center, Institute of Biosciences, Technical University Bergakademie Freiberg, Freiberg, Germany.

Microbial Biotechnology, Department of Biology and Biotechnology, Ruhr-University Bochum, Bochum, Germany.

出版信息

Front Microbiol. 2018 Oct 12;9:2410. doi: 10.3389/fmicb.2018.02410. eCollection 2018.

Abstract

Class III old yellow enzymes (OYEs) contain a conserved cysteine in their active sites. To address the role of this cysteine in OYE-mediated asymmetric synthesis, we have studied the biocatalytic properties of OYERo2a from 1CP (WT) as well as its engineered variants C25A, C25S and C25G. OYERo2a in its redox resting state (oxidized form) is irreversibly inactivated by -methylmaleimide. As anticipated, inactivation does not occur with the Cys variants. Steady-state kinetics with this maleimide substrate revealed that C25S and C25G doubled the turnover frequency ( ) while showing increased values compared to WT, and that C25A performed more similar to WT. Applying the substrate 2-cyclohexen-1-one, the Cys variants were less active and less efficient than WT. OYERo2a and its Cys variants showed different activities with NADPH, the natural reductant. The variants did bind NADPH less well but was significantly increased. The most efficient variant was C25G. Replacement of NADPH with the cost-effective synthetic cofactor 1-benzyl-1,4-dihydronicotinamide (BNAH) drastically changed the catalytic behavior. Again C25G was most active and showed a similar efficiency as WT. Biocatalysis experiments showed that OYERo2a, C25S, and C25G converted -phenyl-2-methylmaleimide equally well (81-84%) with an enantiomeric excess () of more than 99% for the -product. With cyclic ketones, the highest conversion (89%) and (>99%) was observed for the reaction of WT with -carvone. A remarkable poor conversion of cyclic ketones occurred with C25G. In summary, we established that the generation of a cysteine-free enzyme and cofactor optimization allows the development of more robust class III OYEs.

摘要

III类老黄色酶(OYEs)在其活性位点含有一个保守的半胱氨酸。为了研究该半胱氨酸在OYE介导的不对称合成中的作用,我们研究了来自1CP的OYERo2a(野生型,WT)及其工程变体C25A、C25S和C25G的生物催化特性。处于氧化还原静止状态(氧化形式)的OYERo2a会被甲基马来酰亚胺不可逆地失活。正如预期的那样,半胱氨酸变体不会发生失活。使用这种马来酰亚胺底物进行的稳态动力学研究表明,与野生型相比,C25S和C25G的周转频率()翻倍,同时表现出更高的 值,而C25A的表现与野生型更相似。使用底物2-环己烯-1-酮时,半胱氨酸变体的活性和效率均低于野生型。OYERo2a及其半胱氨酸变体对天然还原剂NADPH表现出不同的活性。这些变体与NADPH的结合能力较差,但 值显著增加。最有效的变体是C25G。用具有成本效益的合成辅因子1-苄基-1,4-二氢烟酰胺(BNAH)替代NADPH会极大地改变催化行为。同样,C25G最具活性,并且表现出与野生型相似的效率。生物催化实验表明,OYERo2a、C25S和C25G对α-苯基-2-甲基马来酰亚胺的转化率相同(81-84%),α-产物的对映体过量(ee)超过99%。对于环状酮,野生型与香芹酮反应的转化率最高(89%),ee值(>99%)。C25G对环状酮的转化率明显较低。总之,我们确定生成无半胱氨酸的酶和辅因子优化能够开发出更稳定的III类OYEs。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d776/6194350/0e390e7709ca/fmicb-09-02410-g0006.jpg

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