Literature DB >> 11735520

Preparation of (R)- and (S)-N-protected 3-hydroxypyrrolidines by hydroxylation with Sphingomonas sp. HXN-200, a highly active, regio- and stereoselective, and easy to handle biocatalyst.

Z Li1, H J Feiten, D Chang, W A Duetz, J B van Beilen, B Witholt.   

Abstract

Hydroxylation of N-benzylpyrrolidine 8 with resting cells of Sphingomonas sp. HXN-200 gave N-benzyl-3-hydroxypyrrolidine 15 in 53% ee (S) with an activity of 5.8 U/g CDW. By changing the "docking/protecting group" in pyrrolidines, hydroxylation activity and enantioselectivity were further improved and the enantiocomplementary formation of 3-hydroxypyrrolidines was achieved: hydroxylation of N-benzoyl-, N-benzyloxycarbonyl-, N-phenoxycarbonyl-, and N-tert-butoxycarbonyl-pyrrolidines 9-12 gave the corresponding 3-hydroxypyrrolidines 16-19 in ee of 52% (R), 75% (R), 39% (S), and 23% (R), respectively, with an activity of 2.2, 16, 14, and 24 U/g CDW, respectively. Simple crystallizations increased the ee of 16-18 to 95% (R), 98% (R), and 96% (S), respectively. Hydroxylation of pyrrolidines 8-12 with soluble cell-free extracts of Sphingomonas sp. HXN-200 and equimolar NADH gave 3-hydroxypyrrolidines 15-19 in nearly the same ee as the products generated by whole cell transformation, suggesting that this strain possesses a novel soluble alkane monooxygenase. Cells of Sphingomonas sp. HXN-200 were produced in large amounts and could be stored at -80 degrees C for 2 years without significant loss of activity. The frozen cells can be thawed and resuspended for biohydroxylation, providing a highly active and easy to handle biocatalyst for the regio- and stereoselective hydroxylation of nonactivated carbon atoms. These cells were used to prepare 1.0-3.2 g (66.4-93.5% yield) of 3-hydroxypyrrolidines 16-19 by hydroxylation of pyrrolidines 9-12 on 0.9-2 L scale. Preparative hydroxylation was also achieved with growing cells as biocatalysts; hydroxylation of pyrrolidine 11 on 1 L scale gave 1.970 g (79.7% yield) of 3-hydroxypyrrolidine 18.

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Year:  2001        PMID: 11735520     DOI: 10.1021/jo015826d

Source DB:  PubMed          Journal:  J Org Chem        ISSN: 0022-3263            Impact factor:   4.354


  6 in total

1.  Cytochrome P450 alkane hydroxylases of the CYP153 family are common in alkane-degrading eubacteria lacking integral membrane alkane hydroxylases.

Authors:  Jan B van Beilen; Enrico G Funhoff; Alexander van Loon; Andrea Just; Leo Kaysser; Manuel Bouza; René Holtackers; Martina Röthlisberger; Zhi Li; Bernard Witholt
Journal:  Appl Environ Microbiol       Date:  2006-01       Impact factor: 4.792

2.  Intracellular Metabolic Changes of Rhodococcus sp. LH During the Biodegradation of Diesel Oil.

Authors:  Ze Chen; Zhou Zheng; Feng-Lian Wang; Yuan-Pu Niu; Jin-Lai Miao; Hao Li
Journal:  Mar Biotechnol (NY)       Date:  2018-09-14       Impact factor: 3.619

3.  Biocatalytic production of perillyl alcohol from limonene by using a novel Mycobacterium sp. cytochrome P450 alkane hydroxylase expressed in Pseudomonas putida.

Authors:  Jan B van Beilen; René Holtackers; Daniel Lüscher; Ulrich Bauer; Bernard Witholt; Wouter A Duetz
Journal:  Appl Environ Microbiol       Date:  2005-04       Impact factor: 4.792

4.  Isolation and characterization of alkane hydroxylases from a metagenomic library of Pacific deep-sea sediment.

Authors:  Meixiang Xu; Xiang Xiao; Fengping Wang
Journal:  Extremophiles       Date:  2007-12-18       Impact factor: 2.395

Review 5.  Enzymatic synthesis of enantiopure alcohols: current state and perspectives.

Authors:  Bi-Shuang Chen; Fayene Zeferino Ribeiro de Souza
Journal:  RSC Adv       Date:  2019-01-15       Impact factor: 4.036

6.  Crystal Structure of a Putative Cytochrome P450 Alkane Hydroxylase (CYP153D17) from Sphingomonas sp. PAMC 26605 and Its Conformational Substrate Binding.

Authors:  Chang Woo Lee; Sang-Cheol Yu; Joo-Ho Lee; Sun-Ha Park; Hyun Park; Tae-Jin Oh; Jun Hyuck Lee
Journal:  Int J Mol Sci       Date:  2016-12-09       Impact factor: 5.923

  6 in total

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