Abstract
(S)-(+)-2,2-Dimethylcyclopropane carboxylic acid [(S)-(+)-DMCPA] is a key chiral intermediate for production of Cilastatin, an excellent renal dehydropeptidase-I inhibitor. In this study, a new method for preparation of (S)-(+)-DMCPA with microbial esterases was investigated. A microbial screening program obtained six esterase-producing isolates that could display relatively high activities and enantioselectivities using racemic ethyl 2,2-dimethylcyclopropane carboxylate (DMCPE) as screening substrate, aiming at forming optically pure (S)-(+)-DMCPA. Further selection was carried out with substrates having different alcohol moieties, including methyl, ethyl, and 2-chloroethyl esters. Finally, one of these strains, numbered ECU1013, with high enantioselectivity toward the hydrolytic resolution of methyl 2,2-dimethylcyclopropane carboxylate (DMCPM), afforded the (S)-product in 92 % ee, and was later identified as Rhodococcus sp. According to our research, there were several active esterases to DMCPM in cells of Rhodococcus sp. ECU1013; however, (S)-preferential esterase was selectively enriched based on the time-dependent profile of esterases biosynthesis, thereby the enantiomeric excess of biotransformation product (ee p) was constantly increased, finally maintained at 95 % (S). To improve the yield, various organic solvents were employed for better dispersion of the hydrophobic substrate. As a result, (±)-DMCPM of up to 400 mM in the organic phase of isooctane was enantioselectively hydrolyzed into (S)-(+)-DMCPA, with an isolation yield of 38 % and a further increase of ee p to 99 %.







Similar content being viewed by others
Explore related subjects
Discover the latest articles and news from researchers in related subjects, suggested using machine learning.References
Behrens GA, Hummel A, Padhi SK, Schätzle S, Bornscheuer UT (2011) Discovery and protein engineering of biocatalysts for organic synthesis. Adv Synth Catal 353:2191–2215
Bernhardt P, O'Connor SE (2009) Opportunities for enzyme engineering in natural product biosynthesis. Curr Opin Chem Biol 13:1–8
Chen CS, Fujimoto YF, Girdaukas G, Sih CJ (1982) Quantitative analyses of biochemical kinetic resolution of enantiomers. J Am Chem Soc 104:7294–7299
Clissold SP, Todd PA, Campoli–richands DM (1987) Imipenem/Cilastatin. A review of its antibacterial activity, pharmacokinetic properties and therapeutic efficacy. Drugs 33:183–241
Graham DW (1987) Measurement and correlation for solubility of (S)-(+)-2,2-dimethyl-cyclopropane carbox amide in different solvents. J Med Chem 30:1074–1089
Hupinder PS (2004) Pyrethroid insecticides. Pestic Outlook 4:49–54
Jin SJ, Zheng RC, Zheng YG, Shen YC (2008) (R)-enantioselective hydrolysis of 2, 2-dimethylcyclopropanecarboxamide by amidase from a newly isolated strain Brevibacterium epidermidis ZJB-07021. J Appl Microbiol 105:1150–1157
Ju X, Yu HL, Pan J, Wei DZ, Xu JH (2010) Bioproduction of chiral mandalate by enantioselective deacylation of α-acetoxyphenylacetic acid using whole cells of newly isolated Pseudomonas sp. ECU1011. Appl Microbiol Biotechnol 86:83–91
Kahan FM, Kropp H, Sundelof JG, Birnbaum J (1983) Thienamycin: development of imipenem-Cilastatin. J Antimicrob Chemother 12:S1–S35
Kang J, Lim GJ, Yoon SK, Kim MY (1995) Asymmetric cyclopropanation using new chiral auxilliaries derived from d-fructose. J Org Chem 60:564–577
Katsuda Y (1999) Development of and future prospects for pyrethroid chemistry. Pestic Sci 55:775–782
Li AT, Zhang JD, Xu JH, Lu WY, Lin GQ (2009) Isolation of Rhodococcus sp. strain ECU0066, a new sulfide monooxygenase-producing strain for asymmetric sulfoxidation. Appl Environ Microbiol 75:551–556
Liu ZQ, Sun ZH (2004) Cloning and expression of d-lactonohydrolase cDNA from Fusarium moniliforme in Saccharomyces cerevisiae. Biotechnol Lett 26:1861–1865
Liu ZQ, Li Y, Ping LF, Xu YY, Cui FF, Xue YP, Zheng YG (2007) Isolation and identification of a novel Rhodococcus sp. ML-0004 producing epoxide hydrolase and optimization of enzyme production. Process Biochem 42:889–894
Meul T (1992) Process for resolution of racemates of 2,2-dimethylcyclopropanecarboxylic acid. US patent, US5166417
Meul T (1994) Process for the resolution of 2,2-dimethylcyclopropanecarboxylic acid racemates. European patent, EP0461541
Mori A, Arai I, Yamamoto H, Nakai H, Arai Y (1986) Asymmetric Simmons-Smith reactions using homochiral protecting groups. Tetrahedron 42:6447–6458
Norrby SR, Alestig K, Björnegård B, Burman LÅ, Ferber F, Huber JL, Jones KH, Kahan FM, Kahan JS, Kroop H, Meisinger MAP, Sundelof JG (1983) Urinary recovery of N-forminidoyl thienamycin (MK0787) as affected by coadministration of N-formimidoyl thienamycin dehydropeptidase inhibitors. Antimicrob Agents Chemother 23:300–307
Shaw NM, Robins KT, Kiener A (2003) Lonza: 20 years of biotransformations. Adv Synth Catal 345:425–435
Thompson JD, Higgins DG, Gibson TJ (1994) CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position speicific gap penalties and weight matrix choice. Nucleic Acids Res 22:4673–4680
Wang MX, Feng GQ (2002) Enzymatic synthesis of optically active 2-methyl- and 2,2-dimethylcyclopropanecarboxylic acids and their derivatives. J Mol Catal B: Enzymatic 18:267–272
Wang QW, Yang FK, Du H, Hossain MM, Bennett D, Grubisha DS (1998) The synthesis of S-(+)-2,2-dimethylcyclopropane carboxylic acid: a precursor for Cilastatin. Tetrahedron-Asymmetry 9:3971–3977
Wang P, Zhu JA, He JY (2010) Enantioselective synthesis of S-(+)-2,2-dimethylcyclopropanecarboxylic acid from ethyl-2,2-dimethylcyclopropa-necarboxylate catalyzed by lipase Novozyme 435. Chin J Catal 31:651–655
Yeom SJ, Kim HJ, Oh DK (2007) Enantioselective production of 2,2-dimethylcyclopropane carboxylic acid from 2,2-dimethylcyclopropane carbonitrile using the nitrile hydratase and amidase of Rhodococcus erythropolis ATCC 25544. Enzyme Microb Technol 41:842–848
Zheng GW, Yu HL, Zhang JD, Xu JH (2009) Enzymatic production of l-menthol by a high substrate concentration tolerable esterase from newly isolated Bacillus subtilis ECU0054. Adv Synth Catal 351:405–414
Zheng RC, Wang YS, Zheng YG (2010) Enantioselective hydrolysis of (R)-2,2-dimethylcyclopropane carboxamide by immobilized cells of an R-amidase-producing bacterium, Delftia tsuruhatensis CCTCC M 205114, on an alginate capsule carrier. J Ind Microbiol Biotechnol 37:503–510
Acknowledgments
This work was financially supported by the National Natural Science Foundation of China (No. 21276082), Ministry of Science and Technology, People's Republic of China (Nos. 2011CB710800 and 2011AA02A210), Ministry of Education (No. 20090074120014), and the Innovation Program of Shanghai Municipal Education Commission (No. 11CXY24).
Author information
Authors and Affiliations
Corresponding author
Additional information
Chao-Hong Liu and Jiang Pan contributed equally to this paper.
Rights and permissions
About this article
Cite this article
Liu, CH., Pan, J., Ye, Q. et al. Enzymatic production of Cilastatin intermediate via highly enantioselective hydrolysis of methyl (±)-2,2-dimethylcyclopropane carboxylate using newly isolated Rhodococcus sp. ECU1013. Appl Microbiol Biotechnol 97, 7659–7667 (2013). https://doi.org/10.1007/s00253-013-5038-z
Received:
Revised:
Accepted:
Published:
Issue Date:
DOI: https://doi.org/10.1007/s00253-013-5038-z


