The Organic Chemistry of Enzyme-Catalyzed Reactions .ppt
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1、The Organic Chemistry of Enzyme-Catalyzed Reactions Chapter 13 Rearrangements,Rearrangements,Pericyclic Reactions - concerted reactions in which bonding changes occur via reorganization of electrons within a loop of interacting orbitals,Scheme 13.1,3,3 sigmatropic rearrangement,General form of the C
2、laisen rearrangement,Sigmatropic Rearrangements,Scheme 13.2,chorismate,prephenate,Chorismate Mutase-catalyzed Conversion of Chorismate to Prephenate,A step in the biosynthesis of Tyr and Phe in bacteria, fungi, plants,Required conformer for Claisen rearrangement (10-40% observed in solution from NMR
3、 spectrum),Conformation of Chorismate in Solution,chair-like TS,Evidence for Chairlike Transition State,Scheme 13.3,Stereochemical outcome if chorismate mutase proceeds via chair and boat transition states, respectively, during reaction with (Z)-9-3Hchorismate,To Determine the Position of the 3H,Sch
4、eme 13.4,Z-9- 3Hchorismate 20% 3H release E-9- 3Hchorismate 67% 3H release,Therefore, chair TS,Chemoenzymatic degradation of the prephenate formed from the chorismate mutase-catalyzed conversion of (Z)-9-3Hchorismate to determine the position of the tritium,Figure 13.1,2 inverse isotope effect on C-
5、4 (sp2 sp3); therefore not 1-3 (sp3 sp2),Five Hypothetical Stepwise Mechanisms for the Reaction Catalyzed by Chorismate Mutase,4,mechanism 5 excluded,mechanisms 1, 2, 5 excluded,16 mutants made to show neither general acid-base catalysis (mechanisms 1-3, 5) nor nucleophilic catalysis (mechanism 4) i
6、s important,Both are substrates,Function of the enzyme is to stabilize the chair transition state geometry,Conclusion: pericyclic,Oxy-Cope Rearrangement,Scheme 13.5,Cope,oxy-Cope,Neither observed yet by an enzyme, but a catalytic antibody has been raised,General form of Cope (A) and oxy-Cope (B) rea
7、ctions,Scheme 13.6,Oxy-Cope Rearrangement Catalyzed by an Antibody,hapten to raise the antibody,Scheme 13.7,2,3 Sigmatropic Rearrangement Catalyzed by Cyclohexanone Oxygenase,Scheme 13.9,boat like TS,4+2 Cycloaddition (Diels-Alder) Reaction,Scheme 13.10,solanopyrones,enzymatic exo : endo is 53 : 47,
8、in aqueous solution exo : endo is 3 : 97 (nonenzymatic),An Intramolecular Diels-Alder Reaction Catalyzed by Alternaria solani,Scheme 13.11,An Antibody-Catalyzed Diels-Alder Reaction,Hapten used,This hapten gives an antibody that makes only endo product,This hapten gives an antibody that makes only e
9、xo product,Rearrangements via a Carbenium Ion,Scheme 13.14,acid-catalyzed,acyloins,1,2 alkyl migration,An acid-catalyzed acyloin-type rearrangement,Scheme 13.15,Reactions Catalyzed by Acetohydroxy Acid Isomeroreductase,substrate,Kinetically-competent intermediate,Scheme 13.16,Proposed Acyloin-type M
10、echanism for Acetohydroxy Acid Isomeroreductase,intermediate,Cyclizations Sterol biosynthesis,Scheme 13.17,cholesterol,squalene,lanosterol,Conversion of squalene to lanosterol,Scheme 13.18,2,3-oxidosqualene-lanosterol cyclase,not isolated,17,protosterol,7 stereogenic centers,squalene 2,3-epoxidase,s
11、qualene,anti-Markovnikov (to get 6-membered ring),Isotope labeling shows the 4 migrations are intramolecular Covalent catalysis proposed to control stereochemistry,Initial Mechanism Proposed for 2,3-Oxidosqualene-lanosterol Cyclase,(128 possible isomers),only isomer formed,lanosterol,Evidence for 17
12、 Configuration,Scheme 13.19,no covalent catalysis needed,17,isolated,Use of 20-oxa-2,3-oxidosqualene to determine the stereochemistry at C-17 of lanosterol from the reaction catalyzed by 2,3-oxidosqualene-lanosterol cyclase,O instead of CH2,17,Further Support for Structure of Protosterol,Scheme 13.2
13、0,17,Use of (20E)-20,21-dehydro-2,3-oxidosqualene to determine the stereochemistry at C-17 of lanosterol from the reaction catalyzed by 2,3-oxidosqualene-lanosterol cyclase,Model Study for Stereospecificity and Importance of 17 Configuration,Scheme 13.21,17,17,90%,With the 17 isomer a mixture of C-2
14、0 epimers is formed,Chemical model for the conversion of protosterol to lanosterol,Evidence that the Cyclization Is Not Concerted,Scheme 13.22,Markovnikov addition,not when X=CH2,ring expansion,Mechanism proposed for the formation of the minor product isolated in the 2,3-oxidosqualene cyclase-cataly
15、zed reaction with 20-oxa-2,3-oxidosqualene,does not come from a concerted reaction,Vmax/Km for R = CH3, H, Cl138, 9.4, 21.9 pmol g-1h-1M-1,correlates with carbocation stabilization (CH3 Cl H),Evidence for Carbocation Intermediate,no reaction without methyls - suggests initial epoxide opening,Squalen
16、e Biosynthesis,farnesyl diphosphate,presqualene diphosphate,squalene,Squalene synthase-catalyzed conversion of farnesyl diphosphate to squalene via presqualene diphosphate,Scheme 13.23,Rearrangement of Presqualene Diphosphate to Squalene,Scheme 13.24,squalene,Mechanism proposed for the conversion of
17、 presqualene to squalene by squalene synthase,In the Absence of NADPH there is a Slow Hydrolysis Evidence for 13.56 and 13.57,Scheme 13.25,Mechanisms proposed for the squalene synthase-catalyzed hydrolysis of presqualene diphosphate to several different products in the absence of NADPH,Support for I
18、ntermediate 13.57,Scheme 13.26,dihydro-NADPH,Use of dihydro-NADPH to provide evidence for the formation of intermediate 13.57 in the reaction catalyzed by squalene synthase,unreactive NADPH to mimic bound NADPH,DNA Photolyase UV light causes DNA damage Reactions catalyzed by DNA photolyase and (6-4)
19、 photolyase,Scheme 13.27,visible h used as a substrate for photoreactivation,cyclobutane pyrimidine dimer,(6-4) photoproduct,both types carcinogenic, mutagenic,Rearrangements Via Radical Intermediates,reduced FADH-,N5,N10-methenyl H4PteGlun,8-OH-7,8-didemethyl-5-deazariboflavin,These act as photoant
20、ennae to absorb blue light and transmit to the FADH-,Other Cofactors Used by Photolyases,Scheme 13.28,EPR evidence,Mechanism Proposed for DNA Photolyase,Scheme 13.29,Proposed Mechanism for the Formation of the (6-4) Photoproduct,Scheme 13.30,Mechanism Proposed for (6-4) Photolyase,adenosylcobalamin,
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