Redox Biocatalysis (eBook, ePUB)
Fundamentals and Applications
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Redox Biocatalysis (eBook, ePUB)
Fundamentals and Applications
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Paves the way for new industrial applications using redox biocatalysis Increasingly, researchers rely on the use of enzymes to perform redox processes as they search for novel industrial synthetic routes. In order to support and advance their investigations, this book provides a comprehensive and current overview of the use of redox enzymes and enzyme-mediated oxidative processes, with an emphasis on the role of redox enzymes in chemical transformations. The authors examine the full range of topics in the field, from basic principles to new and emerging research and applications. Moreover,…mehr
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- Produktdetails
- Verlag: John Wiley & Sons
- Seitenzahl: 548
- Erscheinungstermin: 17. September 2012
- Englisch
- ISBN-13: 9781118409329
- Artikelnr.: 37360071
- Verlag: John Wiley & Sons
- Seitenzahl: 548
- Erscheinungstermin: 17. September 2012
- Englisch
- ISBN-13: 9781118409329
- Artikelnr.: 37360071
- Herstellerkennzeichnung Die Herstellerinformationen sind derzeit nicht verfügbar.
- and ß-keto Esters and Derivatives 119 3.2.3 Reduction of Diketones 126 3.2.4 Reduction of Aldehydes 128 3.3 Racemization and Deracemization Reactions 130 3.4 Preparation of Amines 135 3.5 Reduction of C-C Double Bonds 142 3.6 Oxidation Reactions 152 3.7 Dehydrogenase-Catalyzed Redox Reactions in Natural Products 159 3.8 Concluding Remarks 164 References 165 4. Reactions Involving Oxygenases 180 4.1 Monooxygenase-Catalyzed Reactions 180 4.1.1 Hydroxylation of Aliphatic Compounds 181 4.1.2 Hydroxylation of Aromatic Compounds 187 4.1.3 Baeyer-Villiger Reactions 189 4.1.3.1 Classification and Metabolic Role of BVMOs 192 4.1.3.2 Isolated Enzymes versus Whole-Cell Systems (Wild-Type and Recombinant Microorganisms) 194 4.1.3.3 Substrate Profile of Available Baeyer-Villiger Monooxygenases 195 4.1.3.4 Synthetic Applications of BVMOs 201 4.1.4 Epoxidation of Alkenes 240 4.2 Dioxygenase-Catalyzed Reactions 251 4.2.1 Aromatic Dioxygenases 251 4.2.1.1 Dihydroxylation of Aromatic Compounds 251 4.2.1.2 Other Oxidation Reactions Performed by Aromatic Dioxygenases 274 4.2.2 Miscellaneous Dioxygenases 279 4.2.2.1 Lipoxygenase 279 4.3 Concluding Remarks 285 References 286 5. Reactions Involving Oxidases and Peroxidases 303 5.1 Oxidase-Catalyzed Reactions 304 5.1.1 Oxidases Acting on C-O Bonds 304 5.1.1.1 Galactose Oxidase 304 5.1.1.2 Pyranose Oxidase 308 5.1.1.3 Alcohol Oxidase 311 5.1.1.4 Glucose Oxidase 313 5.1.1.5 Glycolate Oxidase 313 5.1.2 Laccases and Tyrosinases (Phenol Oxidases) 315 5.1.2.1 Laccase 315 5.1.2.2 Tyrosinase and Other Polyphenol Oxidases 352 5.1.3 Oxidases Acting on C-N Bonds 361 5.1.3.1 d-Amino Acid Oxidase 361 5.1.3.2 l-Amino Acid Oxidase 368 5.1.3.3 Monoamine Oxidase 368 5.1.3.4 Copper Amine Oxidases 371 5.1.4 Miscellaneous 371 5.1.4.1 Cholesterol Oxidase 372 5.1.4.2 Vanillyl Alcohol Oxidase 373 5.1.4.3 Alditol Oxidase 373 5.2 Peroxidase-Catalyzed Reactions 375 5.2.1 Peroxidase Mediated Transformations 379 5.2.1.1 Oxidative Dehydrogenation (2 RH + H2O2
2 R
+ 2 H2O
R-R) 379 5.2.1.2 Oxidative Halogenation (RH + H2O2 +X
+ H+
RX + 2 H2O) 385 5.2.1.3 Oxygen-Transfer Reactions (RH + H2O2
ROH + H2O) 390 5.3 Concluding Remarks 403 References 404 6. Hydrolase-Mediated Oxidations 433 6.1 Hydrolase Promiscuity and in situ Peracid Formation. Perhydrolases vs. Hydrolases. Other Promiscuous Hydrolase-Mediated Oxidations 433 6.2 Hydrolase-Mediated Bulk Oxidations in Aqueous Media (e.g., Bleaching, Disinfection, etc.) 436 6.3 Lipase-Mediated Oxidations: Prileshajev Epoxidations and Baeyer-Villiger Reactions 439 6.4 Hydrolase-Mediated Oxidation and Processing of Lignocellulosic Materials 445 6.5 Concluding Remarks 448 References 448 7. Bridging Gaps: From Enzyme Discovery to Bioprocesses 453 7.1 Context 453 7.2 Enzyme Directed Evolution and High-Throughput-Screening of Biocatalysts 454 7.3 Successful Case: Baker's Yeast Redox Enzymes, Their Cloning, and Separate Overexpression 467 7.4 Whole-Cells vs. Isolated Enzymes: Medium Engineering 473 7.5 Beyond: Multistep Domino Biocatalytic Processes 477 7.6 Concluding Remarks 482 References 483 8. Industrial Applications of Biocatalytic Redox Reactions: From Academic Curiosities to Robust Processes 487 8.1 Motivation: Drivers for Industrial Biocatalytic Processes 487 8.2 Key Aspects in Industrial Biocatalytic Processes 488 8.3 Industrial Biocatalytic Redox Processes: Free Enzymes 492 8.4 Industrial Biocatalytic Redox Processes-Whole-Cells: The "Designer Bug" Concept and Beyond (Metabolic Engineering) 500 8.5 Concluding Remarks and Future Perspectives 511 References 516 INDEX 521
- and ß-keto Esters and Derivatives 119 3.2.3 Reduction of Diketones 126 3.2.4 Reduction of Aldehydes 128 3.3 Racemization and Deracemization Reactions 130 3.4 Preparation of Amines 135 3.5 Reduction of C-C Double Bonds 142 3.6 Oxidation Reactions 152 3.7 Dehydrogenase-Catalyzed Redox Reactions in Natural Products 159 3.8 Concluding Remarks 164 References 165 4. Reactions Involving Oxygenases 180 4.1 Monooxygenase-Catalyzed Reactions 180 4.1.1 Hydroxylation of Aliphatic Compounds 181 4.1.2 Hydroxylation of Aromatic Compounds 187 4.1.3 Baeyer-Villiger Reactions 189 4.1.3.1 Classification and Metabolic Role of BVMOs 192 4.1.3.2 Isolated Enzymes versus Whole-Cell Systems (Wild-Type and Recombinant Microorganisms) 194 4.1.3.3 Substrate Profile of Available Baeyer-Villiger Monooxygenases 195 4.1.3.4 Synthetic Applications of BVMOs 201 4.1.4 Epoxidation of Alkenes 240 4.2 Dioxygenase-Catalyzed Reactions 251 4.2.1 Aromatic Dioxygenases 251 4.2.1.1 Dihydroxylation of Aromatic Compounds 251 4.2.1.2 Other Oxidation Reactions Performed by Aromatic Dioxygenases 274 4.2.2 Miscellaneous Dioxygenases 279 4.2.2.1 Lipoxygenase 279 4.3 Concluding Remarks 285 References 286 5. Reactions Involving Oxidases and Peroxidases 303 5.1 Oxidase-Catalyzed Reactions 304 5.1.1 Oxidases Acting on C-O Bonds 304 5.1.1.1 Galactose Oxidase 304 5.1.1.2 Pyranose Oxidase 308 5.1.1.3 Alcohol Oxidase 311 5.1.1.4 Glucose Oxidase 313 5.1.1.5 Glycolate Oxidase 313 5.1.2 Laccases and Tyrosinases (Phenol Oxidases) 315 5.1.2.1 Laccase 315 5.1.2.2 Tyrosinase and Other Polyphenol Oxidases 352 5.1.3 Oxidases Acting on C-N Bonds 361 5.1.3.1 d-Amino Acid Oxidase 361 5.1.3.2 l-Amino Acid Oxidase 368 5.1.3.3 Monoamine Oxidase 368 5.1.3.4 Copper Amine Oxidases 371 5.1.4 Miscellaneous 371 5.1.4.1 Cholesterol Oxidase 372 5.1.4.2 Vanillyl Alcohol Oxidase 373 5.1.4.3 Alditol Oxidase 373 5.2 Peroxidase-Catalyzed Reactions 375 5.2.1 Peroxidase Mediated Transformations 379 5.2.1.1 Oxidative Dehydrogenation (2 RH + H2O2
2 R
+ 2 H2O
R-R) 379 5.2.1.2 Oxidative Halogenation (RH + H2O2 +X
+ H+
RX + 2 H2O) 385 5.2.1.3 Oxygen-Transfer Reactions (RH + H2O2
ROH + H2O) 390 5.3 Concluding Remarks 403 References 404 6. Hydrolase-Mediated Oxidations 433 6.1 Hydrolase Promiscuity and in situ Peracid Formation. Perhydrolases vs. Hydrolases. Other Promiscuous Hydrolase-Mediated Oxidations 433 6.2 Hydrolase-Mediated Bulk Oxidations in Aqueous Media (e.g., Bleaching, Disinfection, etc.) 436 6.3 Lipase-Mediated Oxidations: Prileshajev Epoxidations and Baeyer-Villiger Reactions 439 6.4 Hydrolase-Mediated Oxidation and Processing of Lignocellulosic Materials 445 6.5 Concluding Remarks 448 References 448 7. Bridging Gaps: From Enzyme Discovery to Bioprocesses 453 7.1 Context 453 7.2 Enzyme Directed Evolution and High-Throughput-Screening of Biocatalysts 454 7.3 Successful Case: Baker's Yeast Redox Enzymes, Their Cloning, and Separate Overexpression 467 7.4 Whole-Cells vs. Isolated Enzymes: Medium Engineering 473 7.5 Beyond: Multistep Domino Biocatalytic Processes 477 7.6 Concluding Remarks 482 References 483 8. Industrial Applications of Biocatalytic Redox Reactions: From Academic Curiosities to Robust Processes 487 8.1 Motivation: Drivers for Industrial Biocatalytic Processes 487 8.2 Key Aspects in Industrial Biocatalytic Processes 488 8.3 Industrial Biocatalytic Redox Processes: Free Enzymes 492 8.4 Industrial Biocatalytic Redox Processes-Whole-Cells: The "Designer Bug" Concept and Beyond (Metabolic Engineering) 500 8.5 Concluding Remarks and Future Perspectives 511 References 516 INDEX 521