MTU Library Catalogue

Syndetics cover image
Image from Syndetics

Biochemistry / Donald Voet and Judith G. Voet.

By: Voet, Donald [author.].
Contributor(s): Voet, Judith G [author.].
Material type: materialTypeLabelBookPublisher: Hoboken, NJ : Wiley, [2004]Copyright date: ©2004Edition: 3rd edition.Description: xv, 1591 pages : color illustrations ; 29 cm.Content type: text Media type: unmediated Carrier type: volumeISBN: 047119350X (hardback); 0471392235 (paperback); 9780471193500 (paperback); 9780471392231 (hardback).Subject(s): BiochemistryDDC classification: 572
Contents:
Part I: Introduction and background -- Part II: Biomolecules -- Part III: Mechanisms of enzyme action -- Part IV: Metabolism -- Part V: Expression and transmission of genetic information.
Holdings
Item type Current library Call number Copy number Status Barcode
General lending MTU Bishopstown Library Lending 572 (Browse shelf(Opens below)) 1 Available 00156782
General lending MTU Bishopstown Library Lending 572 (Browse shelf(Opens below)) 1 Available 00113150
General lending MTU Bishopstown Library Lending 572 (Browse shelf(Opens below)) 1 Available 00113146
Total holds: 0

Enhanced descriptions from Syndetics:

Biochemistry 3rd edition DONALD VOET, University of Pennsylvania, USA and JUDITH G. VOET, Swarthmore College, USA Biochemistry is a modern classic that has been thoroughly revised. Don and Judy Voet explain biochemical concepts while offering a unified presentation of life and its variation through evolution. Incorporates both classical and current research to illustrate the historical source of much of our biochemical knowledge.
* This edition has been updated to reflect the enormous advances in molecular and protein structure
* Integrated Biochemical Interactions CD

Includes bibliographical references and index.

Part I: Introduction and background -- Part II: Biomolecules -- Part III: Mechanisms of enzyme action -- Part IV: Metabolism -- Part V: Expression and transmission of genetic information.

Table of contents provided by Syndetics

  • Part I Introduction and Background (p. 1)
  • Chapter 1 Life (p. 3)
  • 1. Prokaryotes (p. 3)
  • 2. Eukaryotes (p. 7)
  • 3. Biochemistry: A Prologue (p. 14)
  • 4. Genetics: A Review (p. 19)
  • 5. The Origin of Life (p. 28)
  • 6. The Biochemical Literature (p. 34)
  • Chapter 2 Aqueous Solutions (p. 39)
  • 1. Properties of Water (p. 39)
  • 2. Acids, Bases, and Buffers (p. 44)
  • Chapter 3 Thermodynamic Principles: A Review (p. 51)
  • 1. First Law of Thermodynamics: Energy Is Conserved (p. 52)
  • 2. Second Law of Thermodynamics: The Universe Tends toward Maximum Disorder (p. 53)
  • 3. Free Energy: The Indicator of Spontaneity (p. 56)
  • 4. Chemical Equilibria (p. 57)
  • Appendix Concentration Dependence of Free Energy (p. 60)
  • Part II Biomolecules (p. 63)
  • Chapter 4 Amino Acids (p. 65)
  • 1. The Amino Acids of Proteins (p. 65)
  • 2. Optical Activity (p. 71)
  • 3. "Nonstandard" Amino Acids (p. 76)
  • Chapter 5 Nucleic Acids, Gene Expression, and Recombinant DNA Technology (p. 80)
  • 1. Nucleotides and Nucleic Acids (p. 80)
  • 2. DNA Is the Carrier of Genetic Information (p. 82)
  • 3. Double Helical DNA (p. 85)
  • 4. Gene Expression and Replication: An Overview (p. 92)
  • 5. Molecular Cloning (p. 101)
  • Chapter 6 Techniques of Protein and Nucleic Acid Purification (p. 127)
  • 1. Protein Isolation (p. 127)
  • 2. Solubilities of Proteins (p. 131)
  • 3. Chromatographic Separations (p. 133)
  • 4. Electrophoresis (p. 144)
  • 5. Ultracentrifugation (p. 151)
  • 6. Nucleic Acid Fractionation (p. 155)
  • Chapter 7 Covalent Structures of Proteins and Nucleic Acids (p. 161)
  • 1. Primary Structure Determination of Proteins (p. 162)
  • 2. Nucleic Acid Sequencing (p. 175)
  • 3. Chemical Evolution (p. 182)
  • 4. Bioinformatics: An Introduction (p. 191)
  • 5. Chemical Synthesis of Polypeptides (p. 203)
  • 6. Chemical Synthesis of Oligonucleotides (p. 207)
  • Chapter 8 Three-Dimensional Structures of Proteins (p. 219)
  • 1. Secondary Structure (p. 219)
  • 2. Fibrous Proteins (p. 231)
  • 3. Globular Proteins (p. 240)
  • 4. Protein Stability (p. 258)
  • 5. Quaternary Structure (p. 265)
  • Appendix Viewing Stereo Pictures (p. 269)
  • Chapter 9 Protein Folding, Dynamics, and Structural Evolution (p. 276)
  • 1. Protein Folding: Theory and Experiment (p. 276)
  • 2. Folding Accessory Proteins (p. 288)
  • 3. Protein Structure Prediction and Design (p. 299)
  • 4. Protein Dynamics (p. 302)
  • 5. Conformational Diseases: Amyloids and Prions (p. 306)
  • 6. Structural Evolution (p. 312)
  • Chapter 10 Hemoglobin: Protein Function in Microcosm (p. 320)
  • 1. Hemoglobin Function (p. 320)
  • 2. Structure and Mechanism (p. 327)
  • 3. Abnormal Hemoglobins (p. 339)
  • 4. Allosteric Regulation (p. 345)
  • Appendix Derivation of Symmetry Model Equations (p. 352)
  • Chapter 11 Sugars and Polysaccharides (p. 356)
  • 1. Monosaccharides (p. 356)
  • 2. Polysaccharides (p. 362)
  • 3. Glycoproteins (p. 369)
  • Chapter 12 Lipids and Membranes (p. 382)
  • 1. Lipid Classification (p. 382)
  • 2. Properties of Lipid Aggregates (p. 389)
  • 3. Biological Membranes (p. 394)
  • 4. Membrane Assembly and protein Targeting (p. 414)
  • 5. Lipoproteins (p. 439)
  • Part III Mechanisms of Enzyme Action (p. 457)
  • Chapter 13 Introduction to Enzymes (p. 459)
  • 1. Historical Perspective (p. 459)
  • 2. Substrate Specificity (p. 460)
  • 3. Coenzymes (p. 463)
  • 4. Regulation of Enzymatic Activity (p. 465)
  • 5. A Primer of Enzyme Nomenclature (p. 470)
  • Chapter 14 Rates of Enzymatic Reactions (p. 472)
  • 1. Chemical Kinetics (p. 473)
  • 2. Enzyme Kinetics (p. 477)
  • 3. Inhibition (p. 482)
  • 4. Effects of pH (p. 486)
  • 5. Bisubstrate Reactions (p. 487)
  • Appendix Derivations of Michaelis-Menten Equation Variants (p. 491)
  • Chapter 15 Enzymatic Catalysis (p. 496)
  • 1. Catalytic Mechanisms (p. 496)
  • 2. Lysozyme (p. 507)
  • 3. Serine Proteases (p. 515)
  • 4. Drug Design (p. 528)
  • Part IV Metabolism (p. 547)
  • Chapter 16 Introduction to Metabolism (p. 549)
  • 1. Metabolic Pathways (p. 549)
  • 2. Organic Reaction Mechanisms (p. 552)
  • 3. Experimental Approaches to the Study of Metabolism (p. 559)
  • 4. Thermodynamics of Phosphate Compounds (p. 566)
  • 5. Oxidation-Reduction Reactions (p. 571)
  • 6. Thermodynamics of Life (p. 574)
  • Chapter 17 Glycolysis (p. 581)
  • 1. The Glycolytic Pathway (p. 582)
  • 2. The Reactions of Glycolysis (p. 585)
  • 3. Fermentation: The Anaerobic Fate of Pyruvate (p. 602)
  • 4. Metabolic Regulation and Control (p. 607)
  • 5. Metabolism of Hexoses Other than Glucose (p. 618)
  • Chapter 18 Glycogen Metabolism (p. 626)
  • 1. Glycogen Breakdown (p. 626)
  • 2. Glycogen Synthesis (p. 632)
  • 3. Control of Glycogen Metabolism (p. 635)
  • 4. Glycogen Storage Diseases (p. 651)
  • Chapter 19 Signal Transduction (p. 657)
  • 1. Hormones (p. 657)
  • 2. Heterotrimeric G Proteins (p. 673)
  • 3. Tyrosine Kinase-Based Signaling (p. 683)
  • 4. The Phosphoinositide Cascade (p. 707)
  • Chapter 20 Transport through Membranes (p. 726)
  • 1. Thermodynamics of Transport (p. 726)
  • 2. Kinetics and Mechanisms of Transport (p. 727)
  • 3. ATP-Driven Active Transport (p. 738)
  • 4. Ion Gradient-Driven Active Transport (p. 746)
  • 5. Neurotransmission (p. 750)
  • Chapter 21 Citric Acid Cycle (p. 765)
  • 1. Cycle Overview (p. 765)
  • 2. Metabolic Sources of Acetyl-Coenzyme A (p. 768)
  • 3. Enzymes of the Citric Acid Cycle (p. 781)
  • 4. Regulation of the Citric Acid Cycle (p. 790)
  • 5. The Amphibolic Nature of the Citric Acid Cycle (p. 792)
  • Chapter 22 Electron Transport and Oxidative Phosphorylation (p. 797)
  • 1. The Mitochondrion (p. 798)
  • 2. Electron Transport (p. 802)
  • 3. Oxidative Phosphorylation (p. 820)
  • 4. Control of ATP Production (p. 836)
  • Chapter 23 Other Pathways of Carbohydrate Metabolism (p. 843)
  • 1. Gluconeogenesis (p. 843)
  • 2. The Glyoxylate Cycle (p. 850)
  • 3. Biosynthesis of Oligosaccharides and Glycoproteins (p. 852)
  • 4. The Pentose Phosphate Pathway (p. 862)
  • Chapter 24 Photosynthesis (p. 871)
  • 1. Chloroplasts (p. 871)
  • 2. Light Reactions (p. 873)
  • 3. Dark Reactions (p. 896)
  • Chapter 25 Lipid Metabolism (p. 909)
  • 1. Lipid Digestion, Absorption, and Transport (p. 909)
  • 2. Fatty Acid Oxidation (p. 914)
  • 3. Ketone Bodies (p. 928)
  • 4. Fatty Acid Biosynthesis (p. 930)
  • 5. Regulation of Fatty Acid Metabolism (p. 940)
  • 6. Cholesterol Metabolism (p. 942)
  • 7. Eicosanoid Metabolism: Prostaglandins, Prostacyclins, Thromboxanes, Leukotrienes, and Lipoxins (p. 959)
  • 8. Phospholipid and Glycolipid Metabolism (p. 969)
  • Chapter 26 Amino Acid Metabolism (p. 985)
  • 1. Amino Acid Deamination (p. 985)
  • 2. The Urea Cycle (p. 991)
  • 3. Metabolic Breakdown of Individual Amino Acids (p. 995)
  • 4. Amino Acids as Biosynthetic Precursors (p. 1013)
  • 5. Amino Acid Biosynthesis (p. 1030)
  • 6. Nitrogen Fixation (p. 1044)
  • Chapter 27 Energy Metabolism: Integration and Organ Specialization (p. 1054)
  • 1. Major Pathways and Strategies of Energy Metabolism: A Summary (p. 1054)
  • 2. Organ Specialization (p. 1057)
  • 3. Metabolic Homeostasis: Regulation of Appetite, Energy Expenditure, and Body Weight (p. 1061)
  • 4. Metabolic Adaptation (p. 1065)
  • Chapter 28 Nucleotide Metabolism (p. 1069)
  • 1. Synthesis of Purine Ribonucleotides (p. 1069)
  • 2. Synthesis of Pyrimidine Ribonucleotides (p. 1076)
  • 3. Formation of Deoxyribonucleotides (p. 1080)
  • 4. Nucleotide Degradation (p. 1092)
  • 5. Biosynthesis of Nucleotide Coenzymes (p. 1098)
  • Part V Expression and Transmission of Genetic Information (p. 1105)
  • Chapter 29 Nucleic Acid Structures (p. 1107)
  • 1. Double Helical Structures (p. 1107)
  • 2. Forces Stabilizing Nucleic Acid Structures (p. 1115)
  • 3. Supercoiled DNA (p. 1122)
  • Chapter 30 DNA Replication, Repair, and Recombination (p. 1136)
  • 1. DNA Replication: An Overview (p. 1136)
  • 2. Enzymes of Replication (p. 1139)
  • 3. Prokaryotic Replication (p. 1152)
  • 4. Eukaryotic Replication (p. 1162)
  • 5. Repair of DNA (p. 1173)
  • 6. Recombination and Mobile Genetic Elements (p. 1184)
  • 7. DNA Methylation and Trinucleotide Repeat Expansions (p. 1204)
  • Chapter 31 Transcription (p. 1216)
  • 1. The Role of RNA in Protein Synthesis (p. 1216)
  • 2. RNA Polymerase (p. 1221)
  • 3. Control of Transcription in Prokaryotes (p. 1237)
  • 4. Posttranscriptional Processing (p. 1254)
  • Chapter 32 Translation (p. 1285)
  • 1. The Genetic Code (p. 1285)
  • 2. Transfer RNA and Its Aminoacylation (p. 1292)
  • 3. Ribosomes and Polypeptide Synthesis (p. 1309)
  • 4. Control of Eukaryotic Translation (p. 1342)
  • 5. Posttranslational Modification (p. 1347)
  • 6. Protein Degradation (p. 1352)
  • Chapter 33 Viruses: Paradigms for Cellular Function (p. 1372)
  • 1. Tobacco Mosaic Virus (p. 1374)
  • 2. Icosahedral Viruses (p. 1379)
  • 3. Bacteriophage [lambda] (p. 1390)
  • 4. Influenza Virus (p. 1408)
  • Chapter 34 Eukaryotic Gene Expression (p. 1422)
  • 1. Chromosome Structure (p. 1422)
  • 2. Genomic Organization (p. 1432)
  • 3. Control of Expression (p. 1446)
  • 4. Cell Differentiation and Growth (p. 1482)
  • Chapter 35 Molecular Physiology
  • 1. Blood Clotting
  • 2. Immunity
  • 3. Motility: Muscles, Cilia, and Flagella
  • Index (p. 1527)

Author notes provided by Syndetics

Donald Voet: University of Pennsylvania
Judith G. Voet: Swarthmore College