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Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings PowerPoint Lectures for Biology: Concepts and Connections, Fifth Edition – Campbell,

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Presentation on theme: "Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings PowerPoint Lectures for Biology: Concepts and Connections, Fifth Edition – Campbell,"— Presentation transcript:

1 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings PowerPoint Lectures for Biology: Concepts and Connections, Fifth Edition – Campbell, Reece, Taylor, and Simon Lectures by Chris Romero Chapter 6 How Cells Harvest Chemical Energy

2 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings How Is a Marathoner Different from a Sprinter? Muscles in human legs contain two different types of muscle fibers –Marathoners have more slow-twitch fibers, which perform better in endurance exercises –Sprinters have more fast-twitch fibers, which perform best in short bursts of intense activity –Chickens can relate

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4 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings The different types of muscle fibers use different processes for making ATP –Slow-twitch fibers undergo aerobic (in the presence of O 2 ) respiration –Fast-twitch fibers undergo anaerobic (in the absence of O 2 ) respiration Cellular respiration is the process by which cells produce energy aerobically

5 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings INTRODUCTION TO CELLULAR RESPIRATION 6.1 Photosynthesis and cellular respiration provide energy for life All living organisms require energy to maintain homeostasis, to move, and to reproduce Photosynthesis converts energy from the sun to glucose and O 2 Cellular respiration breaks down glucose and releases energy in ATP Energy flows through an ecosystem; chemicals are recycled

6 LE 6-1 Sunlight energy ECOSYSTEM Photosynthesis in chloroplasts Glucose CO 2 O2O2 H2OH2O Cellular respiration in mitochondria (for cellular work) Heat energy ATP

7 D. Energy and Exercise (refer to activity sheet) E. Comparing Photosynthesis and Cellular Respiration PhotosynthesisCellular Respiration Function Location Reactants Products Equation Energy Capture Energy Release ChloroplastsMitochondria H 2 O and CO 2 C 6 H 12 O 6 and O 2 H 2 O and CO 2 6H 2 O + 6CO 2 → C 6 H 12 O 6 + 6O 2 C 6 H 12 O 6 + 6O 2 → 6H 2 O + 6CO 2

8 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.2 Breathing supplies oxygen to our cells and removes carbon dioxide Breathing and cellular respiration are closely related –Breathing brings O 2 into the body from the environment –O 2 is distributed to cells in the bloodstream –In cellular respiration, mitochondria use O 2 to harvest energy and generate ATP –Breathing disposes of the CO 2 produced as a waste product of cellular respiration

9 LE 6-2 Breathing Lungs Muscle cells carrying out Cellular Respiration Bloodstream Glucose  O 2 CO 2  H 2 O  ATP O2O2 CO 2 O2O2

10 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.3 Cellular respiration banks energy in ATP molecules The reactants O 2 and glucose regroup to form the products CO 2 and H 2 O Energy from glucose is released and stored in ATP

11 LE 6-3 EnergyWaterCarbon dioxide Oxygen gasGlucose

12 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings CONNECTION 6.4 The human body uses energy from ATP for all its activities The body needs a continual supply of energy to maintain basic functioning In addition, ATP supplies energy (kilocalories) for voluntary activities An average adult human needs about 2,200 kcal of energy each day

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14 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.5 Cells tap energy from electrons “falling” from organic fuels to oxygen The energy available to a cell is contained in the arrangement of electrons in chemical bonds Electrons lose potential energy when they “fall” from organic compounds to oxygen during cellular respiration Each step of the “fall” involves paired oxidation–reduction (redox) reactions –Oxidation: loss of electrons (in atoms) –Reduction: addition of electrons

15 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings NADH delivers electrons to a series of electron carriers in an electron transport chain As electrons move from carrier to carrier, their energy is released in small quantities Energy released and now availble for making ATP ELECTRON CARRIERS of the electron transport chain Electron flow

16 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings The redox reactions of cellular respiration –Glucose loses electrons (in H atoms) and becomes oxidized –O 2 gains electrons (in H atoms) and becomes reduced –Along the way, the electrons lose potential energy, and energy is released

17 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Loss of hydrogen atoms Glucose Gain of hydrogen atoms Energy Figure 6.4 Glucose gives up energy as it is oxidized

18 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings The redox reactions that break down glucose involve an enzyme and a coenzyme –The enzyme dehydrogenase removes electrons (in H atoms) from fuel molecules (oxidation) –The electrons are transferred to the coenzyme NAD +, which is converted to NADH (reduction)

19 Oxidation Dehydrogenase Reduction (carries 2 electrons) NAD  NADH HH 2H2H 2H  2 e  

20 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings –NADH passes electrons to an electron transport chain As electrons “fall” from carrier to carrier and finally to O 2, energy is released in small quantities The energy released is used by the cell to make ATP

21 LE 6-5c NADH NAD  Electron transport chain 2e  Controlled release of energy for synthesis of ATP ATP HH 2 HH 2e  H2OH2O O2O2 2 1

22 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Cells use the energy released by “falling” electrons to pump H + ions across a membrane The energy of the gradient is harnessed to make ATP by the process of chemiosmosis Two mechanisms generate ATP Figure 6.7A High H+ concentration ATP synthase uses gradient energy to make ATP Membrane Energy from Low H+ concentration ATP synthase Electron transport chain http://www.sp.uconn.edu/~terry/Common/respiration.html

23 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings ATP can also be made by transferring phosphate groups from organic molecules to ADP Figure 6.7B -This process is called substrate-level phosphorylation Organic molecule (substrate) New organic molecule (product) Enzyme Adenosine

24 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Overview of Glucose Breakdown The overall equation for the complete breakdown of glucose is: C 6 H 12 O 6 + 6O 2  6CO 2 + 6H 2 O + ATP The main stages of glucose metabolism are: Glycolysis Cellular respiration

25 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings

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27 An overview of cellular respiration Figure 6.8 High-energy electrons carried by NADH GLYCOLYSIS GlucosePyruvic acid KREBS CYCLE ELECTRON TRANSPORT CHAIN AND CHEMIOSMOSIS Mitochondrion Cytoplasmic fluid

28 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Flowchart Section 9-2 Glucose (C 6 H 12 0 6 ) + Oxygen (0 2 ) Glycolysis Krebs Cycle Electron Transport Chain Carbon Dioxide (CO 2 ) + Water (H 2 O) Cellular Respiration

29 STAGES OF CELLULAR RESPIRATION AND FERMENTATION 6.6 Overview: Cellular respiration occurs in three main stages Stage 1: Glycolysis Occurs in the cytoplasm Breaks down glucose into pyruvate, producing a small amount of ATP Glucose Pyruvic acid

30 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Stage 2: The citric acid cycle KREBS CYCLE –Takes place in the mitochondria –Completes the breakdown of glucose, producing CO 2 and a small amount of ATP –Supplies the third stage of cellular respiration with electrons KREBS CYCLE 2 CO 2 Acetyl CoA

31 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Stage 3: Oxidative phosphorylation –Occurs in the mitochondria –Uses the energy released by electrons “falling” down the electron transport chain to pump H + across a membrane –Harnesses the energy of the H + gradient through chemiosmosis, producing ATP Animation: Cellular Respiration Overview Animation: Cellular Respiration Overview

32 LE 6-6 NADH High-energy electrons carried by NADH GLYCOLYSIS GlucosePyruvate Cytoplasm ATP Substrate-level phosphorylation Substrate-level phosphorylation CITRIC ACID CYCLE CO 2 ATP NADH FADH 2 and ATP Mitochondrion Oxidative phosphorylation OXIDATIVE PHOSPHORYLATION ( Electron Transport and Chemiosmosis)

33 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.7 Glycolysis harvests chemical energy by oxidizing glucose to pyruvate Glycolysis splits sugar molecules in the cytoplasm –Starts with a single 6-carbon molecule of glucose –Ends with two 3-carbon molecules of pyruvate –Produces two molecules of ATP in the process Animation: Glycolysis Animation: Glycolysis

34 LE 6-7a Glucose NAD  NADH HH 22 2 2 2 ADP ATP P 2 2 Pyruvate

35 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Glycolysis produces ATP by substrate-level phosphorylation –An enzyme transfers a phosphate group from an organic molecule to ADP –A small amount of ATP is produced

36 LE 6-7b Enzyme Organic molecule (substrate) PP P ADP P ATP P Adenosine

37 Copyright © 2003 Pearson Education, Inc. publishing as Benjamin Cummings Details of glycolysis Figure 6.9B Steps – A fuel molecule is energized, using ATP. 13 1 Glucose PREPARATORY PHASE (energy investment) Step 2 3 4 Glucose-6-phosphate Fructose-6-phosphate Glyceraldehyde-3-phosphate (G3P) Step A six-carbon intermediate splits into two three-carbon intermediates. 4 Step A redox reaction generates NADH. 5 5 ENERGY PAYOFF PHASE 1,3-Diphosphoglyceric acid (2 molecules) 6 Steps – ATP and pyruvic acid are produced. 69 3-Phosphoglyceric acid (2 molecules) 7 2-Phosphoglyceric acid (2 molecules) 8 9 (2 molecules per glucose molecule) Pyruvic acid Fructose-1,6-diphosphate

38 6.10 Pyruvic acid is chemically groomed for the Krebs cycle Acetyl CoA (acetyl coenzyme A) Coenzyme A Pyruvate CO 2 NAD  NADH HH CoA  Each pyruvic acid molecule is broken down to form CO 2 and a two-carbon acetyl group, which enters the Krebs cycle

39 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.11 The citric acid cycle completes the oxidation of organic fuel, generating many NADH and FADH 2 molecules For each turn of the citric acid cycle –Two CO 2 molecules are released –The energy yield is one ATP, three NADH, and one FADH 2 Animation: Citric Acid Cycle Animation: Citric Acid Cycle

40 LE 6-9a Acetyl CoA CoA CO 2 2 C ITRIC A CID C YCLE ATP NADH NAD  ADP P   3 H  FAD FADH 2 3 3

41 LE 6-9b Acetyl CoA CoA Oxaloacetate C ITRIC A CID C YCLE Citrate 2 carbons enter cycle leaves cycle Alpha-ketoglutarate leaves cycle CO 2 NAD  NADH  H  ADP ATP P  CO 2 NADH  H  NAD  NADH NAD   H  Malate FADH 2 FAD Succinate

42 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Details of the citric acid cycle –The 2-carbon acetyl part of acetyl CoA is oxidized –The two carbons are added to a 4-compound, forming citrate –Through a series of redox reactions, two carbons are removed from citrate as CO 2 and the 4-carbon compound is regenerated –The energy-rich molecules ATP, NADH, and FADH 2 are produced

43 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings ETC/chemiosmosis Oxidative phosphorylation

44 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Chemiosmosis Flow of hydrogen ions provides energy to link 32-34 molecules of ADP with phosphate, forming 32-34 ATP ATP then diffuses out of mitochondrion and used for energy-requiring activities in the cell Link: ETC and chemiosmosis

45 LE 6-10 Intermembrane space Inner mitochondrial membrane Mitochondrial matrix Protein complex Electron carrier Electron flow NADH NAD  FADFADH 2 HH HH HH HH H2OH2O HH HH ATP synthase 2  O2O2 1212 HH P  ADPATP Electron Transport Chain Chemiosmosis O XIDATIVE P HOSPHORYLATION HH HH HH HH HH HH HH

46 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings CONNECTION 6.11 Certain poisons interrupt critical events in cellular respiration Rotenone, cyanide, and carbon monoxide block parts of the electron transport chain Oligomycin blocks the passage of H + through ATP synthase Uncouplers such as DNP destroy the H + gradient by making the membrane leaky to H +

47 LE 6-11 NADH FAD FADH 2 NAD + Electron Transport Chain Chemiosmosis ATP ADP P + H2OH2O O2O2 + 1212 H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ H+H+ Cyanide, carbon monoxide Rotenone Oligomycin DNP ATP synthase 2

48 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.12 Review: Each molecule of glucose yields many molecules of ATP Glycolysis and the citric acid cycle together yield four ATP per glucose molecule Oxidative phosphorylation, using electron transport and chemiosmosis, yields 34 ATP per glucose These numbers are maximums –Some cells may lose a few ATP to NAD + or FAD shuttles

49 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings

50 LE 6-12 Cytoplasm Electron shuttle across membrane 2 G LYCOLYSIS NADH 2 6 2 (or 2 FADH 2 ) 2 Acetyl CoA Maximum per glucose: 2 Pyruvate C ITRIC A CID C YCLE Mitochondrion FADH 2 2 O XIDATIVE P HOSPHORYLATION (Electron Transport and Chemiosmosis)  about 34 ATP  2 ATP by oxidative phosphorylation by substrate-level phosphorylation About 38 ATP  2 ATP by substrate-level phosphorylation Glucose LINK:CELLULAR RESPIRATION VIDEO-CALIFORNICATION

51 C. The Totals Per Glucose molecule ***note: each NADH produces __ ATP each FADH2 produces __ ATP LOCATIONATPNADHFADH2BYPRODUCTS GLYCOLYSIS KREBS CYCLE: Pyruvate oxidation → Energy Extraction → ELECTRON TRANSPORT CHAIN TOTALS (net) 3 2 0 Carbon dioxide matrix262 Carbon dioxide Inner Membrane (Cristae) 34 0 0 water 36 10 2 0------ matrix02 cytoplasm22 -2 ATP (transport of pyruvic acid into mitochondria) http://www.wiley.com/legacy/college/boyer/0470003790/animations/electron_transport/electron_transport.htmwww.wiley.com/legacy/college/boyer/0470003790/animations/electron_transport/electron_transport.htm Click on ATP synthesis and play the first one only

52 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.13 Fermentation is an anaerobic alternative to cellular respiration Fermentation –Generates two ATP molecules from glycolysis in the absence of oxygen –Recycles NADH to NAD + anaerobically Muscle cells use lactic acid fermentation –NADH is oxidized to NAD + as pyruvate is reduced to lactate

53 LE 6-13a GLYCOLYSIS Glucose 22 2 2 NAD  NADH ATP P 2 ADP  2 Pyruvate NADH NAD  2 2 2 Lactate

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57 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Alcohol fermentation occurs in brewing, wine making, and baking –NADH is oxidized to NAD + while converting pyruvate to CO 2 and ethanol Animation: Fermentation Overview Animation: Fermentation Overview

58 LE 6-13b GLYCOLYSIS Glucose 2 2 22 NAD  NADH 2 ADP  PATP 2 2 NADH NAD  2 Pyruvate 2 CO 2 released 2 Ethanol 2

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60 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings

61 Strict anaerobes –Require anaerobic conditions to generate ATP by fermentation –Are poisoned by oxygen Facultative anaerobes –Can make ATP by fermentation or oxidative phosphorylation depending on whether O 2 is available

62 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Lactic AcidAlcoholicCellular respiration glucose glycolysis (pyruvic acid) lactic acid 2 ATP glucose glycolysis (pyruvic acid) carbon dioxide alcohol 2 ATP38 ATP water carbon dioxide COMPARISON OF FERMENTATION TO CELLULAR REPIRATION

63 INTERCONNECTIONS BETWEEN MOLECULAR BREAKDOWN AND SYNTHESIS 6.14 Cells use many kinds of organic molecules as fuel for cellular respiration Cells use three main kinds of food molecules to make ATP Carbohydrates –Hydrolyzed by enzymes to glucose, which enters glycolysis

64 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Proteins –Digested to constituent amino acids, which are transformed into various compounds –Become intermediates in glycolysis or the citric acid cycle

65 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings Fats –Digested to glycerol and free fatty acids Glycerol becomes an intermediate in glycolysis Fatty acids are broken into 2-carbon fragments that enter the citric acid cycle as acetyl CoA

66 LE 6-14 Food, such as peanuts Sugars Glycerol Fatty acids Amino acids Amino groups Proteins Fats Carbohydrates Glucose Pyruvate G3P GLYCOLYSIS Acetyl CoA CITRIC ACID CYCLE OXIDATIVE PHOSPHORYLATION (Electron Transport and Chemiosmosis ) ATP

67 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.15 Food molecules provide raw materials for biosynthesis Some raw materials from food can be incorporated directly into an organism’s molecules Cells can also make molecules not found in food –Intermediate compounds of glycolysis and the citric acid cycle act as raw materials –Biosynthetic pathways consume ATP rather than generate it –Biosynthesis is not always the direct reverse of breakdown pathways

68 LE 6-15 ATP needed to drive biosynthesis ATP CITRIC ACID CYCLE Acetyl CoA Amino groups Proteins Amino acidsFatty acidsGlycerol Fats Cells, tissues, organisms Carbohydrates Sugars GLUCOSE SYNTHESIS PyruvateG3PGlucose

69 Copyright © 2005 Pearson Education, Inc. Publishing as Benjamin Cummings 6.16 The fuel for respiration ultimately comes from photosynthesis All organisms can harvest energy from organic molecules Plants can also make molecules from inorganic sources by photosynthesis

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