2nw6 Citations

Combined X-ray diffraction and QM/MM study of the Burkholderia cepacia lipase-catalyzed secondary alcohol esterification.

J Phys Chem B 112 4876-83 (2008)
Cited: 7 times
EuropePMC logo PMID: 18386861

Abstract

To understand the origin of high enantioselectivity of Burkholderia cepacia lipase (BCL) toward secondary alcohol, (R,S)-1-phenoxy-2-hydroxybutane (1), and its ester (E1), we determined the crystal structure of BCL complexed with phosphonate analogue of S-E1 and accomplished a series of MM, MC, and QM/MM studies. We have found that the inhibitor in the S configuration binds into the BCL active site in the same manner as the R isomer, with an important difference: while in case of the R-inhibitor the H-bond between its alcohol oxygen and catalytic His286 can be formed, in the case of the S-inhibitor this is not possible. Molecular modeling for both E1 enantiomers revealed orientations in which all hydrogen bonds characteristic of productive binding are formed. To check the possibility of chemical transformation, four different orientations of the substrate (two for each enantiomer) were chosen, and a series of ab initio QM/MM calculations were accomplished. Starting from the covalent complex, we modeled the ester (E1) hydrolysis and the alcohol (1) esterification. The calculations revealed that ester release is possible starting with all four covalent complexes. Alcohol release from the BCL-E1 complex in which the S-substrate is bound in the same manner as the S-inhibitor in the crystal structure however is not possible. These results show that the crystallographically determined binding modes should be taken with caution when modeling chemical reactions.

Articles - 2nw6 mentioned but not cited (5)

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  2. Theoretical Design of Biodegradable Phthalic Acid Ester Derivatives in Marine and Freshwater Environments. Zhang H, Zhao C, Na H. ChemistryOpen 9 1033-1045 (2020)
  3. In Silico Evaluation of Enzymatic Tunnels in the Biotransformation of α-Tocopherol Esters. Azevedo TSM, Silva LKB, Lima ÁS, Pereira MM, Franceschi E, Faria Soares CM. Front Bioeng Biotechnol 9 805059 (2021)
  4. Experimental and Computational Analysis of Synthesis Conditions of Hybrid Nanoflowers for Lipase Immobilization. Souza DES, Santos LMF, Freitas JPA, Almeida LC, Santos JCB, Souza RL, Pereira MM, Lima ÁS, Soares CMF. Molecules 29 628 (2024)
  5. Green biosynthesis of rare DHA-phospholipids by lipase-catalyzed transesterification with edible algal oil in solvent-free system and catalytic mechanism study. Zhang T, Li B, Wang Z, Hu D, Zhang X, Zhao B, Wang J. Front Bioeng Biotechnol 11 1158348 (2023)


Reviews citing this publication (1)

  1. The Lid Domain in Lipases: Structural and Functional Determinant of Enzymatic Properties. Khan FI, Lan D, Durrani R, Huan W, Zhao Z, Wang Y. Front Bioeng Biotechnol 5 16 (2017)

Articles citing this publication (1)