Lehninger Principles of Biochemistry

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出版者:W. H. Freeman
作者:David L. Nelson
出品人:
页数:1100
译者:
出版时间:2008-2-1
价格:USD 256.75
装帧:Hardcover
isbn号码:9780716771081
丛书系列:
图书标签:
  • Biochemistry
  • 生物化学
  • 生命科学
  • Lehninger
  • 生物
  • 教科书
  • 教材
  • 学术
  • Lehninger
  • Biochemistry
  • Principles
  • Molecular
  • Biology
  • Cell
  • Metabolism
  • Enzymes
  • Genetics
  • Chemistry
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具体描述

In the Fifth Edition, authors Dave Nelson and Mike Cox combine the best of the laboratory and best of the classroom, introducing exciting new developments while communicating basic principles through a variety of new learning tools—from new in-text worked examples and data analysis problems to the breakthrough eBook, which seamlessly integrates the complete text and its media components.

《化学物质的结构与功能:生命现象的分子基础》 第一章:原子与分子——生命的基石 本书旨在深入探讨生命现象背后的化学原理。我们将从最基础的原子结构入手,解析化学键的形成,特别是生命体系中至关重要的共价键、氢键和范德华力。理解这些基础构建块如何结合,是揭示复杂生物大分子功能的关键。 本章将详细介绍不同类型的原子在生命体中的角色,例如碳、氢、氧、氮、磷和硫。我们将探讨它们的电子排布、轨道杂化,以及这些电子结构如何决定了它们在分子构建中的特定功能。例如,碳原子的四价性使其能够形成复杂多样的骨架结构,这是所有有机生命的基础。我们将分析水分子独特的极性及其在生命活动中的核心作用,包括作为溶剂、反应介质以及参与温度调节的机制。酸碱理论在生物化学中的应用也将被阐述,特别是pKa值如何影响生物分子在生理pH下的状态和功能。 第二章:生物大分子——结构的复杂性与多样性 生命体的复杂性源于其多样化的生物大分子。本章将聚焦于四大类核心分子:蛋白质、核酸、碳水化合物和脂质。 蛋白质的结构与功能: 蛋白质是执行生命活动的主要执行者。我们将从氨基酸的结构和肽键的形成开始,逐步深入到蛋白质的三级和四级结构。重点讨论α-螺旋、β-折叠等二级结构单元的形成机制,以及这些结构如何折叠成具有特定功能的精确三维构象。变性与复性的过程将作为案例,阐述结构对功能决定性的影响。此外,酶催化的分子机制,包括活性位点的设计、底物结合模式以及催化循环的每一步化学变化,将得到详尽的分析。我们将探讨各种酶抑制剂的工作原理及其在生物调控中的应用。 核酸的遗传信息存储与表达: DNA和RNA是生命信息的载体。本章将剖析核苷酸的结构,包括碱基、脱氧/核糖和磷酸基团。我们着重讲解DNA双螺旋的形成和稳定性,以及遗传信息的复制、转录和翻译过程中的分子事件。RNA的多样性——从信使RNA到转运RNA和核糖体RNA——及其在基因表达调控中的作用也将被系统梳理。 碳水化合物的能量供应与结构支持: 糖类不仅是主要的能量来源,也是重要的结构分子。从单糖(如葡萄糖和果糖)的环状结构异构体,到双糖和多糖(如淀粉、糖原和纤维素)的聚合方式,我们将分析不同糖苷键的化学特性。重点将放在糖代谢通路(如糖酵解和三羧酸循环)的酶促反应机理,以及它们如何连接能量的产生与生物合成。 脂质的膜结构与信号传导: 脂质构成了所有细胞的边界。本章详细探讨脂肪酸的结构、甘油三酯的形成,以及磷脂双分子层的自组装特性。我们将解析膜的流动性、选择性通透性及其调控机制。胆固醇在调节膜刚性中的作用,以及鞘脂和糖脂在细胞信号转导中的作用也将被介绍。 第三章:能量的转换与驱动——生物热力学与代谢 生命活动是一个持续进行能量转换的过程。本章将应用热力学原理来理解生物化学反应的方向性和效率。我们将探讨吉布斯自由能(ΔG)在判断反应自发性中的作用,以及高能磷酸键(如ATP)在驱动非自发反应中的桥梁作用。 氧化还原反应与电子传递: 代谢的核心是氧化还原过程。我们将深入分析电子传递链,解释线粒体内膜上四大复合体如何协同工作,通过逐步释放电子的能量来驱动质子泵,建立跨膜电化学梯度。ATP合酶的工作机制,即通过质子流驱动ADP磷酸化,将是本章的理论高潮。 宏观代谢网络的整合: 代谢不是孤立的反应,而是高度整合的网络。我们将系统地梳理三大营养物质(糖、脂肪、蛋白质)的分解和合成途径。重点在于解析这些通路如何相互交叉、互为原料和产物。例如,糖酵解的中间产物如何进入三羧酸循环,以及脂肪酸的β-氧化如何提供高能电子载体。调控机制,如反馈抑制和变构效应,将解释细胞如何根据能量需求精确控制代谢流向。 第四章:信息流动的精密调控——基因表达与信号转导 生命体必须能够感知环境变化并作出精确反应,这依赖于遗传信息的准确传递和细胞间/细胞内的信号网络。 基因表达的调控: 除了中心法则的基本流程,本章将关注真核生物中更为复杂的调控层次。染色质的结构修饰(如组蛋白乙酰化和甲基化)如何影响基因的可及性将作为焦点。转录因子如何识别特定的DNA序列并调控RNA聚合酶的活性,将通过具体的分子模型来展示。翻译过程中的核糖体装配、tRNA的氨酰化以及终止密码的识别,都体现了分子机器的精妙设计。 细胞信号转导通路: 细胞如何接收和解释来自外部环境的信号?本章将分解信号转导的三个基本步骤:信号的接收(受体结合)、信号的放大与传递(第二信使和级联反应)以及细胞的应答。我们将详细分析G蛋白偶联受体(GPCRs)的激活机制,酪氨酸激酶受体介导的信号通路,以及磷酸化/去磷酸化在通路开关中的关键作用。信号整合与交叉串扰是保证复杂生命活动有序进行的关键,我们将探讨这些网络如何避免“串扰”。 第五章:膜结构与物质转运 细胞膜是动态的、选择性的屏障。本章将超越脂质双分子层的描述,深入探讨膜蛋白的功能。 膜蛋白的分类与机制: 介绍跨膜运输蛋白的结构特征,特别是通道蛋白、载体蛋白和泵蛋白。我们将以钠钾泵(Na+/K+-ATPase)为例,详细解析主动运输如何利用ATP水解释放的能量来维持细胞内外离子梯度的建立,并讨论这些梯度如何被用于次级主动运输和信号传递。渗透压的调节、水通道蛋白(Aquaporins)的作用以及内吞作用和外排作用的分子机制也将被系统讲解。 本书的特点: 本书力求在严谨的化学基础上,建立清晰的生物学图景。每一章节都通过对具体生物大分子或代谢通路的结构分析,来解释其在生命体系中的宏观功能。我们避免了对特定生物体或疾病的过度关注,而是致力于揭示跨物种通用的分子机制。通过详尽的反应图示和结构模型,读者将能够掌握理解生命过程所必需的分子工具集。本书适合对生命科学的底层原理有深入探究兴趣的专业学生与研究人员。

作者简介

DAVID L. NELSON is Professor in the Department of Biochemistry at the University of Wisconsin, Madison. He is also the Academic Program Director for university's Institute for Cross-college Biology Education.University of Wisconsin-Madison, USA. MICHAEL M. COX, University of Wisconsin-Madison, USA.

Michael M. Cox

Professor of Biochemistry University of Wisconsin-Madison。

目录信息

About the authors
A Note on the Nature of Science
Preface
1 The Foundations of Biochemistry
1.1 Cellular Foundations
1.2 Chemical Foundations
1.3 Physical Foundations
1.4 Genetic Foundations
1.5 Evolutionary Foundations Box 1–1 Molecular Weight, Molecular Mass, and Their Correct Units Box 1–2 Louis Pasteur and Optical Activity: In Vino, Veritas Box 1–3 Entropy: The Advantages of Being Disorganized
• Now introduces the concepts of proteomes and proteomics
• Updated section on how a new species evolves
• Increased emphasis on the interdependence of life forms in global cycles of energy I STRUCTURE AND CATALYSIS
2 Water
2.1 Weak Interactions in Aqueous Systems
2.2 Ionization of Water, Weak Acids, and Weak Bases
2.3 Buffering against pH Changes in Biological Systems
2.4 Water as a Reactant
2.5 The Fitness of the Aqueous Environment for Living Organisms Box 2–1 Medicine: On Being One’s Own Rabbit (Don’t Try This at Home!)
• Expanded discussion of blood pH buffering by the bicarbonate system,including a new box describing Haldane’s use of himself as a guinea pig in experiments aimed at changing the acidity of blood
• New section on ketoacidosis in diabetes 3 Amino Acids, Peptides, and Proteins
3.1 Amino Acids
3.2 Peptides and Proteins
3.3 Working with Proteins
3.4 The Structure of Proteins: Primary Structure Box 3–1 Methods: Absorption of Light by Molecules: The Lambert-Beer Law Box 3–2 Methods: Investigating Proteins with Mass Spectrometry Box 3–3 Medicine: Consensus Sequences and Sequence Logos
• Significant revision to bioinformatics
• More thorough explanation of consensus sequences, including an illustration of common ways to depict consensus sequences 4 The Three-Dimensional Structure of Proteins
4.1 Overview of Protein Structure
4.2 Protein Secondary Structure
4.3 Protein Tertiary and Quaternary Structures
4.4 Protein Denaturation and Folding Box 4–1 Methods: Knowing the Right Hand from the Left Box 4–2 Permanent Waving Is Biochemical Engineering Box 4–3 Medicine: Why Sailors, Explorers, and College Students Should Eat Their Fresh Fruits and Vegetables Box 4–4 The Protein Data Bank Box 4–5 Methods: Methods for Determining the Three-Dimensional Structure of a Protein Box 4–6 Medicine: Death by Misfolding: The Prion Diseases
• New section, Defects in protein folding may be the molecular basis for a wide range of human genetic disorders, discusses a variety of amyloid diseases
• New section on circular dichroism 5 Protein Function
5.1 Reversible Binding of a Protein to a Ligand: Oxygen-Binding Proteins
5.2 Complementary Interactions between Proteins and Ligands: The Immune System and Immunoglobulins
5.3 Protein Interactions Modulated by Chemical Energy: Actin, Myosin, and Molecular Motors Box 5–1 Medicine: Carbon Monoxide: A Stealthy Killer
6 Enzymes
6.1 An Introduction to Enzymes
6.2 How Enzymes Work
6.3 Enzyme Kinetics as an Approach to Understanding Mechanism
6.4 Examples of Enzymatic Reactions
6.5 Regulatory Enzymes Box 6–1 Transformations of the Michaelis-Menten Equation: The Double-Reciprocal Plot Box 6–2 Kinetic Tests for Determining Inhibition Mechanisms Box 6–3 Evidence for Enzyme–Transition State Complementarity
• More explanatory text added to the mechanisms for the enolase and lysozyme reactions
• New section on pharmaceuticals developed from an understanding of enzyme mechanism, using penicillin and HIV protease inhibitors as examples 7 Carbohydrates and Glycobiology
7.1 Monosaccharides and Disaccharides
7.2 Polysaccharides
7.3 Glycoconjugates: Proteoglycans, Glycoproteins, and Glycolipids
7.4 Carbohydrates as Informational Molecules: The Sugar Code
7.5 Working with Carbohydrates Box 7–1 Medicine: Blood Glucose Measurements in the Diagnosis and Treatment of Diabetes
• New medical box, introduces hemoglobin glycation and AGEs and their role in the pathology of advanced diabetes
• New section on sugar analogs as drugs that target viral neuraminidase
• Introduction to the new field of glycomics, including methods for determining oligosaccharide structure using MALDI-MS 8 Nucleotides and Nucleic Acids
8.1 Some Basics
8.2 Nucleic Acid Structure
8.3 Nucleic Acid Chemistry
8.4 Other Functions of Nucleotides 9 DNA-Based Information Technologies
9.1 DNA Cloning: The Basics
9.2 From Genes to Genomes
9.3 From Genomes to Proteomes
9.4 Genome Alterations and New Products of Biotechnology Box 9–1 Medicine: A Potent Weapon in Forensic Medicine Box 9–2 Medicine: The Human Genome and Human Gene Therapy
• New material on the green fluorescent protein
• Thorough updating of genomics section 10 Lipids
10.1 Storage Lipids
10.2 Structural Lipids in Membranes
10.3 Lipids as Signals, Cofactors, and Pigments
10.4 Working with Lipids Box 10–1 Sperm Whales: Fatheads of the Deep Box 10–2 Medicine: Abnormal Accumulations of Membrane Lipids: Some Inherited Human Diseases
• New medical section on the role of polyunsaturated fatty acids and trans fatty acids in cardiovascular disease
• New section on lipidomics
• New descriptions of volatile lipids used as signals by plants, and pigments of bird feathers derived from colored lipids in plant foods
11 Biological Membranes and Transport
11.1 The Composition and Architecture of Membranes
11.2 Membrane Dynamics
11.3 Solute Transport across Membranes Box 11–1 Methods: Atomic Force Microscopy to Visualize Membrane Proteins Box 11–2 Medicine: Defective Glucose and Water Transport in Two Forms of Diabetes Box 11–3 Medicine: A Defective Ion Channel in Cystic Fibrosis
• Expanded section on bilayer dynamics covers flippases, floppases, scramblases, and bilayer asymmetry
• Expanded and updated section on lipid rafts and caveolae includes new material on membrane curvature and the proteins that influence it, and introduces amphitropic proteins and annular lipids
• New information on the structural basis for voltage gating in a K+ channel 12 Biosignaling
12.1 General Features of Signal Transduction
12.2 G Protein–Coupled Receptors and Second Messengers
12.3 Receptor Tyrosine Kinases
12.4 Receptor Guanylyl Cyclases, cGMP, and Protein Kinase G
12.5 Multivalent Scaffold Proteins and Membrane Rafts
12.6 Gated Ion Channels
12.7 Integrins: Bidirectional Cell Adhesion Receptors
12.8 Regulation of Transcription by Steroid Hormones
12.9 Signaling in Microorganisms and Plants
12.10 Sensory Transduction in Vision, Olfaction, and Gustation
12.11 Regulation of the Cell Cycle by Protein Kinases
12.12 Oncogenes, Tumor Suppressor Genes, and Programmed Cell Death Box 12–1 Methods: Scatchard Analysis Quantifies the Receptor-Ligand Interaction Box 12–2 Medicine: G Proteins: Binary Switches in Health and Disease Box 12–3 Methods: FRET: Biochemistry Visualized in a Living Cell Box 12–4 Medicine: Color Blindness: John Dalton’s Experiment from the Grave Box 12–5 Medicine: Development of Protein Kinase Inhibitors for Cancer Treatment
• New Medical section on G protein coupled receptors (GCPRs) discusses the range of diseases for which drugs target GPCRs
• New box on G proteins, proteins that regulate their GTPase activity, and the medical consequences of defective G protein function
• Expanded and integrated treatment of local signaling circuits, including AKAPs and signaling complexes that include protein kinase A, adenylyl cyclase, and phosphodiesterase, and localized puffs and waves of Ca2+
• New medical box on the use of protein kinase inhibitors in cancertherapy II BIOENERGETICS AND METABOLISM
13 Bioenergetics and Biochemical Reaction Types
13.1 Bioenergetics and Thermodynamics
13.2 Chemical Logic and Common Biochemical Reactions
13.3 Phosphoryl Group Transfers and ATP
13.4 Biological Oxidation-Reduction Reactions Box 13–1 Firefly Flashes: Glowing Reports of ATP
• New section, Chemical logic and common biochemical reactions, discusses common biochemical reaction types 14 Glycolysis, Gluconeogenesis, and the Pentose Phosphate Pathway
14.1 Glycolysis
14.2 Feeder Pathways for Glycolysis
14.3 Fates of Pyruvate under Anaerobic Conditions: Fermentation
14.4 Gluconeogenesis
14.5 Pentose Phosphate Pathway of Glucose Oxidation Box 14–1 Medicine: High Rate of Glycolysis in Tumors Suggests Targets for Chemotherapy and Facilitates Diagnosis Box 14–2 Athletes, Alligators, and Coelacanths: Glycolysis at Limiting Concentrations of Oxygen Box 14–3 Ethanol Fermentations: Brewing Beer and Producing Biofuels Box 14–4 Medicine: Why Pythagoras Wouldn’t Eat Falafel: Glucose 6-Phosphate Dehydrogenase Deficiency
• New medical box on glucose uptake deficiency in type 1 diabetes
• New medical box on how the high rate of glycolysis in cancerous tissue aids cancer diagnosis and treatment 15 Principles of Metabolic Regulation
15.1 Regulation of Metabolic Pathways
15.2 Analysis of Metabolic Control
15.3 Coordinated Regulation of Glycolysis and Gluconeogenesis
15.4 The Metabolism of Glycogen in Animals
15.5 Coordinated Regulation of Glycogen Synthesis and Breakdown Box 15–1 Methods: Metabolic Control Analysis: Quantitative Aspects Box 15–2 Isozymes: Different Proteins That Catalyze the Same Reaction Box 15–3 Medicine: Genetic Mutations That Lead to Rare Forms of Diabetes Box 15–4 Carl and Gerty Cori: Pioneers in Glycogen Metabolism and Disease
• New section on emerging role of ribulose 5-phosphate as central regulator of glycolysis and gluconeogenesis
• Expanded discussion of phosphoprotein phosphatases in metabolic regulation
• Expanded coverage of the role of transcriptional regulators in metabolic regulation
• New medical box on mutations that lead to rare forms of diabetes regulation (MODY) 16 The Citric Acid Cycle
16.1 Production of Acetyl-CoA (Activated Acetate)
16.2 Reactions of the Citric Acid Cycle
16.3 Regulation of the Citric Acid Cycle
16.4 The Glyoxylate Cycle Box 16–1 Moonlighting Enzymes: Proteins with More Than One Job Box 16–2 Synthases and Synthetases; Ligases and Lyases; Kinases,Phosphatases, and Phosphorylases: Yes, the Names Are Confusing!
Box 16–3 Citrate: A Symmetric Molecule That Reacts Asymmetrically Box 16–4 Citrate Synthase, Soda Pop, and the World Food Supply
• New box on effect of diabetes on the citric acid cycle and ketone body formation
• Expanded discussion of substrate channeling
• New section on mutations in citric acid cycle that lead to cancer
• New box on moonlighting enzymes 17 Fatty Acid Catabolism
17.1 Digestion, Mobilization, and Transport of Fats
17.2 Oxidation of Fatty Acids
17.3 Ketone Bodies Box 17–1 Fat Bears Carry Out b Oxidation in Their Sleep Box 17–2 Coenzyme B12: A Radical Solution to a Perplexing Problem
• New section on the role of transcription factors (PPARs) in regulation of lipid catabolism 18 Amino Acid Oxidation and the Production of Urea
18.1 Metabolic Fates of Amino Groups
18.2 Nitrogen Excretion and the Urea Cycle
18.3 Pathways of Amino Acid Degradation Box 18–1 Medicine: Assays for Tissue Damage Box 18–2 Medicine: Scientific Sleuths Solve a Murder Mystery
• New section on pernicious anemia and associated problems in strict vegetarians.
19 Oxidative Phosphorylation and Photophosphorylation Oxidative Phosphorylation
19.1 Electron-Transfer Reactions in Mitochondria
19.2 ATP Synthesis
19.3 Regulation of Oxidative Phosphorylation
19.4 Mitochondria in Thermogenesis, Steroid Synthesis, and Apoptosis
19.5 Mitochondrial Genes: Their Origin and the Effects of MutationsPhotosynthesis: Harvesting Light Energy
19.6 General Features of Photophosphorylation
19.7 Light Absorption
19.8 The Central Photochemical Event: Light-Driven Electron Flow
19.9 ATP Synthesis by Photophosphorylation
19.10 The Evolution of Oxygenic Photosynthesis Box 19–1 Hot, Stinking Plants and Alternative Respiratory Pathways
• Updated discussion of the structure of the electron transfer complexes of mitochondria and chloroplasts, and of the Fo complex
• Updated description of the water-splitting complex’s structure in chloroplasts
• Expanded description of mitochondrial diseases and mitochondrial role in diabetes 20 Carbohydrate Biosynthesis in Plants and Bacteria
20.1 Photosynthetic Carbohydrate Synthesis
20.2 Photorespiration and the C4 and CAM Pathways
20.3 Biosynthesis of Starch and Sucrose
20.4 Synthesis of Cell Wall Polysaccharides: Plant Cellulose and Bacterial Peptidoglycan
20.5 Integration of Carbohydrate Metabolism in the Plant Cell
21 Lipid Biosynthesis
21.1 Biosynthesis of Fatty Acids and Eicosanoids
21.2 Biosynthesis of Triacylglycerols
21.3 Biosynthesis of Membrane Phospholipids
21.4 Biosynthesis of Cholesterol, Steroids, and Isoprenoids Box 21–1 Mixed-Function Oxidases, Oxygenases, and Cytochrome P-450
• Revised and updated section on fatty acid synthase includes new structural information on FAS I
• Updated information on cyclooxygenase inhibitors (pain relievers Vioxx, Celebrex, Bextra)
• New information on HMG-CoA reductase and new medical box on statins 22 Biosynthesis of Amino Acids, Nucleotides, and Related Molecules
22.1 Overview of Nitrogen Metabolism
22.2 Biosynthesis of Amino Acids
22.3 Molecules Derived from Amino Acids
22.4 Biosynthesis and Degradation of Nucleotides Box 22–1 Unusual lifestyles of the obscure but abundant Box 22–2 Medicine: On Kings and Vampires Box 22–3 Medicine: Curing African Sleeping Sickness with a Biochemical Trojan Horse
• Updated coverage of nitrogen cycle section includes a new box on anammox bacteria
• New information on therapy for acute lymphoblastic leukemia
• New information on folic acid deficiency 23 Hormonal Regulation and Integration of Mammalian Metabolism
23.1 Hormones: Diverse Structures for Diverse Functions
23.2 Tissue-Specific Metabolism: The Division of Labor
23.3 Hormonal Regulation of Fuel Metabolism
23.4 Obesity and the Regulation of Body Mass
23.5 Obesity, the Metabolic Syndrome, and Type 2 Diabetes Box 23–1 Medicine: How Is a Hormone Discovered? The Arduous Path to Purified Insulin
• Expanded coverage and updating of the biochemical connections between obesity, metabolic syndrome, and type 2 diabetes
• Updated discussion of the integration of fuel metabolism in fed and starved states in diabetes III INFORMATION PATHWAYS
24 Genes and Chromosomes
24.1 Chromosomal Elements
24.2 DNA Supercoiling
24.3 The Structure of Chromosomes Box 24–1 Medicine: Curing Disease by Inhibiting Topoisomerases Box 24–2 Medicine: Epigenetics, Nucleosome Structure, and Histone Variants
• New material on histone modification, histone variants, and nucleosome deposition
• New medical box on the use of topoisomerase inhibitors in the treatment of bacterial infections and cancer, includes material on ciprofloxacin (the antibiotic effective for anthrax)
• New box on the role of histone modification and nucleosome deposition in the transmission of epigenetic information in heredity 25 DNA Metabolism
25.1 DNA Replication
25.2 DNA Repair
25.3 DNA Recombination Box 25–1 Medicine: DNA Repair and Cancer
• New information on the initiation of replication and the dynamics at the replication fork, introducing AAA+ ATPases and their functions in replication and other aspects of DNA metabolism 26 RNA Metabolism
26.1 DNA-Dependent Synthesis of RNA
26.2 RNA Processing
26.3 RNA-Dependent Synthesis of RNA and DNA Box 26–1 Methods: RNA Polymerase Leaves Its Footprint on a Promoter Box 26–2 Fighting AIDS with Inhibitors of HIV Reverse Transcriptase Box 26–3 Methods: The SELEX Method for Generating RNA Polymers with New Functions Box 26–4 An Expanding RNA Universe Filled with TUF RNAs
• New section on the expanding roles of RNA in cells 27 Protein Metabolism
27.1 The Genetic Code
27.2 Protein Synthesis
27.3 Protein Targeting and Degradation Box 27–1 Exceptions That Prove the Rule: Natural Variations in the Genetic Code Box 27–2 From an RNA World to a Protein World Box 27–3 Natural and Unnatural Expansion of the Genetic Code Box 27–4 Induced Variation in the Genetic Code: Nonsense Suppression
• Expanded section on protein synthesis coupled to the advances in ribosome structure
• New information on the roles of RNA in protein biosynthesis 28 Regulation of Gene Expression
28.1 Principles of Gene Regulation
28.2 Regulation of Gene Expression in Bacteria
28.3 Regulation of Gene Expression in Eukaryotes Box 28–1 Of Fins, Wings, Beaks, and Things
• New information about roles of RNA in gene regulation
• New box on the connections between evolution and development
Appendix A Common Abbreviations in the Biochemical Research Literature Appendix B Abbreviated Solutions to Problems Glossary Credits Index
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哇,这本书简直就是生化领域的“圣经”!从我第一次翻开它,就被它严谨的逻辑和详实的讲解深深吸引。它不是那种枯燥乏味的教科书,而是像一位循循善诱的导师,带领你一步步探索生命最深处的奥秘。我尤其喜欢它在介绍每个概念时,都能够追溯到其历史发展脉络,让你理解为什么这些理论是这样形成的,而不是死记硬背。比如,在讲解酶动力学时,它不仅清晰地阐述了米氏方程的推导和意义,还深入探讨了抑制剂和激活剂如何影响酶活性,并通过大量的实验案例来佐证这些理论。读这本书,就像在进行一场精彩的推理游戏,每一个分子、每一个反应都扮演着至关重要的角色,而Lehninger则为你提供了破解谜题的钥匙。我常常被书中那些精妙的分子结构图和清晰的反应机理图所折服,它们不仅美观,更是理解复杂过程的关键。即使是像糖酵解或三羧酸循环这样看似庞杂的代谢途径,在Lehninger的笔下也变得条理清晰,每个步骤的能量变化、关键酶以及调控机制都一目了然。我还会时不时地回顾书中关于DNA复制、转录和翻译的部分,每一次都能有新的体会,对基因表达的精妙调控有了更深刻的认识。这本书不仅教会了我知识,更重要的是,它教会了我如何思考,如何将零散的生物化学知识融会贯通,形成一个完整的知识体系。我强烈推荐给所有对生命科学充满好奇的人,无论你是初学者还是有一定基础的研究者,都能在这本书中受益匪浅。

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这本书给我带来的震撼是难以言喻的。它以一种前所未有的广度和深度,揭示了生命的化学基础。我尤其喜欢它对分子遗传学和基因表达调控的讲解,从DNA的结构和复制,到RNA的合成和翻译,再到各种转录因子和表观遗传修饰,都讲解得鞭辟入里。书中对基因组学和蛋白质组学等前沿领域的介绍,也让我对生命科学的未来发展有了更清晰的认识。我常常会因为书中对某个生化过程的精妙调控而感到惊叹,例如,基因表达的时空特异性调控,它如何确保细胞在正确的时间、正确的地点合成正确的蛋白质。这本书不仅仅是知识的传递,它更是一种对科学探索精神的赞颂。书中对许多前沿研究的介绍,让我能够了解到科学家们是如何不断挑战认知边界,揭示生命奥秘的。我感觉自己通过阅读这本书,不仅仅是学习了知识,更是培养了一种严谨的科学思维和创新能力。

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我必须说,Lehninger是一本真正能够点燃你对生物化学热情的书。它不仅仅是知识的传递,更是一种对生命奇迹的探索。书中对每一个概念的解释都力求详尽,并且追根溯源,让你理解其背后的科学逻辑。我印象最深刻的是关于信号转导的部分,它将细胞内外复杂的信号交流过程描绘得栩栩如生,让我理解了细胞是如何感知环境、做出反应的。书中对各种信号分子、受体以及下游效应器的详细介绍,以及它们之间精妙的相互作用,都让我惊叹于生命的复杂性和协调性。我常常会因为书中对某个生化分子功能的详细阐述而感到兴奋,例如,那些在细胞凋亡、免疫反应中发挥关键作用的蛋白质。这本书不仅仅是理论的堆砌,它还融入了大量的实验证据和研究方法,让我能够了解到科学家们是如何一步步揭示这些生命奥秘的。我尤其喜欢书中对一些经典实验的介绍,比如DNA半保留复制的证明,让我对科学探索的严谨性和创造力有了更深的体会。这本书就像一位引路人,指引我穿越生物化学的迷宫,发现其中隐藏的精彩。

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这本书给我最大的感受是它的系统性和全面性。它将庞大的生物化学知识体系梳理得井井有条,让你能够在一个完整的框架下学习和理解。我特别喜欢它对能量代谢的讲解,从ATP的合成到利用,再到各种代谢途径的能量平衡,都讲解得非常清晰透彻。书中对光合作用和呼吸作用的详细介绍,让我对生命体如何获取和转化能量有了更深刻的认识。而且,这本书非常注重概念之间的逻辑联系,它不会孤立地讲解某个知识点,而是将其置于更广阔的生化背景中。例如,在讲解基因表达时,它会同时提及DNA复制、RNA转录和蛋白质翻译,并阐述它们之间的相互调控关系。我常常会在书中找到一些我之前学习中遗漏的细节,或者对一些模糊的概念有了更清晰的理解。这本书的语言风格也非常独特,既有学术的严谨性,又不失清晰易懂的特点。作者善于用比喻和类比来解释复杂的概念,让抽象的分子过程变得生动形象。我感觉自己通过阅读这本书,不仅仅是学习了知识,更是培养了一种严谨的科学思维和解决问题的能力。

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这本书的厚重感和信息量让我一开始有些畏惧,但随着阅读的深入,我逐渐被它深深吸引。它以一种非常系统化的方式,将生命体内的各种生化过程串联起来,形成一个完整的知识体系。我尤其欣赏它对酶催化机理的深入剖析,从活性中心的结构到底物的结合,再到产物的释放,每一个环节都讲解得清晰透彻。书中对不同类型酶的分类和功能的介绍,让我对酶在生命活动中的重要作用有了更深刻的认识。而且,这本书非常注重概念之间的联系,它不会孤立地讲解某个知识点,而是将其置于更广阔的生化背景中。例如,在讲解糖代谢时,它会同时提及脂肪代谢和蛋白质代谢,并阐述它们之间的相互调控关系。我常常会在书中找到一些我之前学习中遗漏的细节,或者对一些模糊的概念有了更清晰的理解。这本书的图文并茂也极大地提升了阅读体验,那些精美的分子结构图和反应机理图,让我能够更直观地理解复杂的生化过程。我感觉自己通过阅读这本书,不仅仅是学习了知识,更是培养了一种科学的思维方式和解决问题的能力。

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作为一名在生物化学领域摸爬滚打多年的学生,我不得不说,Lehninger绝对是我最得力的助手之一。它不是那种“速成”的读物,而是需要沉下心来,细细品味才能领略其精髓。书中对实验证据的引用和解读,让我对许多经典生化发现的来龙去脉有了更清晰的认识。它不会回避那些复杂的实验设计和数据分析,而是将其作为理解生化原理的重要组成部分。我记得在学习DNA结构时,书中对沃森和克里克模型发现过程中关键实验的介绍,让我对科学探索的严谨和创造力有了更深的理解。而且,这本书的案例分析非常出色,无论是关于疾病机理的阐述,还是关于药物研发的介绍,都紧密结合了最新的科研进展,让我能够感受到生物化学的活力和应用价值。阅读过程中,我常常会停下来思考,作者是如何将如此海量的知识体系化、结构化的。这种严谨的组织结构,让我能够轻松地在各个知识点之间建立联系,形成一个立体的知识网络。我个人非常喜欢书中关于核酸化学的部分,它深入浅出地解释了核酸的结构、性质以及在遗传信息传递中的关键作用,让我对生命的“代码”有了更深刻的敬畏。这本书不仅仅是知识的宝库,更是一个学习科学方法、培养科研思维的绝佳范例。

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这本书给我的感觉非常震撼,它彻底改变了我对生物化学的理解。它不像其他教材那样,只是罗列一堆概念和公式,而是从更宏观的角度,将生物化学置于整个生命科学的框架中来讲解。我特别欣赏它在讨论某个生化过程时,总是会联系到其在生物体内的生理功能,以及它在疾病发生发展中的作用。例如,在讲述脂质代谢时,它不仅详细介绍了脂肪酸的合成与分解,还深入探讨了胆固醇的代谢途径及其与动脉粥样硬化的关系。这种“知其然,更知其所以然”的讲解方式,极大地激发了我的学习兴趣,让我觉得生物化学不再是抽象的理论,而是与我们生活息息相关的科学。我经常会在遇到一些复杂的生化问题时,翻阅这本书,总能找到启发性的解答。书中对各个分子相互作用的详细描述,以及对信号转导通路中关键蛋白的解析,都让我对生命活动的精妙之处赞叹不已。我尤其喜欢它关于蛋白质结构与功能关系的探讨,从一级结构到高级结构,再到蛋白质的折叠和修饰,都讲解得鞭辟入里,让我理解了为什么蛋白质的精确三维结构对其功能至关重要。这本书的逻辑性非常强,章节之间的过渡自然流畅,仿佛在讲述一个宏大的故事,而每个生化反应就是其中的一个精彩情节。我感觉自己通过阅读这本书,不仅仅是学习了知识,更是提升了自己的科学素养和批判性思维能力。

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这本书给我带来的不仅仅是知识的增长,更是一种思维方式的重塑。它以一种非常系统化的方式,将生命体内的各种生化过程整合在一起,让我能够从全局的角度理解生命活动。我尤其欣赏书中对代谢途径之间相互联系的阐述,它们不是孤立存在的,而是相互影响、相互调控,共同维持着生命的稳态。例如,在讲解ATP的产生时,书中清晰地展示了糖酵解、三羧酸循环和氧化磷酸化之间的紧密联系,以及它们如何协同作用来为细胞提供能量。阅读这本书,就像是在构建一个精密的生命蓝图,每一个分子、每一个反应都是这个蓝图上的重要元素。我会被书中那些精妙的调控机制所吸引,比如反馈抑制、变构效应等,它们是如何确保细胞在适宜的环境下高效运转的。这本书的语言风格也非常独特,既有学术的严谨性,又不失清晰易懂的特点。作者善于用比喻和类比来解释复杂的概念,让抽象的分子过程变得生动形象。我常常会因为书中对某个生化反应机理的生动描述而产生“恍然大悟”的感觉。总而言之,这本书为我打开了一扇通往生命奥秘的大门,让我对生命有了更深刻的认识和更广泛的兴趣。

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Lehninger是一本真正能够让你“爱上”生物化学的书。它不像一些枯燥的教材,而是用一种非常引人入胜的方式,将生命最深层的奥秘展现在你面前。我尤其喜欢它对分子相互作用的细致描绘,从弱相互作用到共价键,它们是如何共同塑造了生物大分子的三维结构和功能,都讲解得鞭辟入里。书中对蛋白质、核酸、脂质等重要生物大分子的详细介绍,以及它们在生命活动中的多样化作用,都让我惊叹于生命的精巧设计。我常常会因为书中对某个生化过程的生动描述而产生“灵光一闪”的感觉,例如,蛋白质的折叠过程,它就像一个精密的机械装置,在一步步构建出具有特定功能的蛋白质。这本书不仅仅是知识的传递,它更是一种对科学探索精神的赞颂。书中对许多经典生化实验的介绍,让我能够了解到科学家们是如何通过严谨的实验设计和巧妙的推理,一步步揭示生命奥秘的。我感觉自己通过阅读这本书,不仅仅是学习了知识,更是培养了一种严谨的科学态度和探索未知的勇气。

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Lehninger这本书,简直就是一本开启生命之门的“钥匙”。它以一种非常系统化的方式,将细胞内的各种生化过程描绘得活灵活现,让你仿佛能够亲眼目睹生命的运作。我尤其欣赏它对分子识别和信号传递的详细讲解,从细胞膜上的受体,到细胞内的信号级联反应,都展现了生命体内部沟通的精妙之处。书中对不同信号通路在生理和病理过程中的作用的分析,让我对许多疾病的发生机制有了更深的理解。我常常会因为书中对某个生化分子功能的深入剖析而感到兴奋,例如,那些在细胞生长、分化和凋亡中发挥关键作用的调控蛋白。这本书不仅仅是知识的宝库,它更是一个学习科学方法、培养科研思维的绝佳范例。书中对许多经典生化实验的介绍,让我能够了解到科学家们是如何通过严谨的实验设计和巧妙的推理,一步步揭示生命奥秘的。我感觉自己通过阅读这本书,不仅仅是学习了知识,更是培养了一种严谨的科学态度和探索未知的勇气。

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....从标记为在读到今天,差不多刚好一年吧...后面的几章是借着参考书挑着看的.赞自己一下..

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只读了前半部分,

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The coolest and best textbook ever seen!...

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一切的开始

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The coolest and best textbook ever seen!...

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