Institute of Molecular Biotechnology, Graz University of Technology, Petersgasse 14, 8010, Graz, Austria.
Henkel AG & Co. KGaA, Adhesive Research/Bioconjugates, Henkelstr. 67, 40191, Düsseldorf, Germany.
Chembiochem. 2021 Oct 13;22(20):2951-2956. doi: 10.1002/cbic.202100187. Epub 2021 Jun 15.
Racemic camphor and isoborneol are readily available as industrial side products, whereas (1R)-camphor is available from natural sources. Optically pure (1S)-camphor, however, is much more difficult to obtain. The synthesis of racemic camphor from α-pinene proceeds via an intermediary racemic isobornyl ester, which is then hydrolyzed and oxidized to give camphor. We reasoned that enantioselective hydrolysis of isobornyl esters would give facile access to optically pure isoborneol and camphor isomers, respectively. While screening of a set of commercial lipases and esterases in the kinetic resolution of racemic monoterpenols did not lead to the identification of any enantioselective enzymes, the cephalosporin Esterase B from Burkholderia gladioli (EstB) and Esterase C (EstC) from Rhodococcus rhodochrous showed outstanding enantioselectivity (E>100) towards the butyryl esters of isoborneol, borneol and fenchol. The enantioselectivity was higher with increasing chain length of the acyl moiety of the substrate. The kinetic resolution of isobornyl butyrate can be easily integrated into the production of camphor from α-pinene and thus allows the facile synthesis of optically pure monoterpenols from a renewable side-product.
外消旋樟脑和异龙脑是现成的工业副产物,而(1R)-樟脑可从天然资源中获得。然而,光学纯的(1S)-樟脑则更难获得。从α-蒎烯合成外消旋樟脑是通过中间的外消旋异莰基酯进行的,然后将其水解和氧化得到樟脑。我们推断,异莰基酯的对映选择性水解将分别容易得到光学纯的异龙脑和樟脑异构体。虽然在对映选择性水解外消旋单萜醇的动力学拆分中筛选了一组商业脂肪酶和酯酶,但没有鉴定出任何对映选择性酶,来自恶臭假单胞菌(Burkholderia gladioli)的头孢菌素酯酶 B(EstB)和来自红球菌(Rhodococcus rhodochrous)的酯酶 C(EstC)对异龙脑、龙脑和非醇的丁酰酯表现出出色的对映选择性(E>100)。随着底物酰基部分链长的增加,对映选择性更高。异莰基丁酸酯的动力学拆分可以很容易地整合到从α-蒎烯生产樟脑中,从而可以从可再生的副产物中轻松合成光学纯的单萜醇。