piperidines and octane

piperidines has been researched along with octane* in 2 studies

Other Studies

2 other study(ies) available for piperidines and octane

ArticleYear
Evolving P450pyr Monooxygenase for Regio- and Stereoselective Hydroxylations.
    Chimia, 2015, Volume: 69, Issue:3

    P450pyr monooxygenase from Sphingomonas sp. HXN-200 catalysed the regio- and stereoselective hydroxylation at a non-activated carbon atom, a useful but challenging reaction in classic chemistry, with unique substrate specificity for a number of alicyclic compounds. New P450pyr mutants were developed by directed evolution with improved catalytic performance, thus significantly extending the application of the P450pyr monooxygenase family in biohydroxylation to prepare useful and valuable chiral alcohols. Directed evolution of P450pyr created new enzymes with improved S-enantioselectivity or R-enantioselectivity for the hydroxylation of N-benzyl pyrrolidine, enhanced regioselectivity for the hydroxylation of N-benzyl pyrrolidinone, and increased enantioselectivity for the hydroxylation of N-benzyl piperidinone, respectively. Directed evolution of P450pyr generated also mutants with fully altered regioselectivity (from terminal to subterminal) and newly created excellent S-enantioselectivity for the biohydroxylation of n-octane and propylbenzene, respectively, providing new opportunities for the regio- and enantioselective alkane functionalization. New P450pyr mutants were engineered as the first catalyst for highly selective terminal hydroxylation of n-butanol to 1,4-butanediol. Several novel, accurate, sensitive, simple, and HTS assays based on colorimetric or MS detection for measuring the enantio- and/or regioselectivity of hydroxylation were developed and proven to be practical in directed evolution. The P450pyr X-ray structure was obtained and used to guide the evolution. In silico modelling and substrate docking provided some insight into the influence of several important amino acid mutations of the engineered P450pyr mutants on the altered or enhanced regio- and enantioselectivity as well as new substrate acceptance. The obtained information and knowledge is useful for further engineering of P450pyr for other hydroxylations and oxidations.

    Topics: Bacterial Proteins; Benzene Derivatives; Biocatalysis; Butylene Glycols; Crystallography, X-Ray; Cytochrome P-450 Enzyme System; Directed Molecular Evolution; Gene Expression; Hydroxylation; Mutation; Octanes; Oxidation-Reduction; Piperidines; Protein Engineering; Pyrrolidines; Sphingomonas; Stereoisomerism; Substrate Specificity

2015
Tork: Conformational analysis method for molecules and complexes.
    Journal of computational chemistry, 2003, Volume: 24, Issue:16

    A conformational search method for organic molecules and bimolecular complexes is presented. The method, termed Tork, uses normal-mode analysis in bond-angle-torsion coordinates and focuses on a key subset of torsional coordinates to identify natural molecular motions that lead the initial conformation to new energy minima. New conformations are generated via distortion along these modes and their pairwise combinations, followed by energy minimization. For complexes, special treatment is accorded to the six coordinates that specify the position and orientation of one molecule relative to the other. Tests described here show that Tork is highly efficient for cyclic, acyclic, and mixed single molecules, as well as for host-guest complexes.

    Topics: Algorithms; Chemical Phenomena; Chemistry, Physical; Computer Simulation; Cycloparaffins; Ethers, Cyclic; Mathematical Computing; Menthol; Methods; Models, Chemical; Models, Molecular; Molecular Conformation; Octanes; Organic Chemicals; Piperidines; Thermodynamics

2003