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Chapter 8 An Introduction To Metabolism. Metabolism u The totality of an organism’s chemical processes. u Concerned with managing the material and energy.

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Presentation on theme: "Chapter 8 An Introduction To Metabolism. Metabolism u The totality of an organism’s chemical processes. u Concerned with managing the material and energy."— Presentation transcript:

1 Chapter 8 An Introduction To Metabolism

2 Metabolism u The totality of an organism’s chemical processes. u Concerned with managing the material and energy resources of the cell.

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4 Catabolic Pathways u Pathways that break down complex molecules into smaller ones, releasing energy. u Example: Respiration

5 Anabolic Pathways u Pathways that consume energy, building complex molecules from smaller ones. u Example: Photosynthesis

6 Energy u Ability to do work. u The ability to rearrange a collection of matter. u Forms of energy: u Kinetic u Potential u Activation

7 Kinetic Energy u Energy of action or motion.

8 Potential Energy u Stored energy or the capacity to do work.

9 Activation Energy u Energy needed to convert potential energy into kinetic energy. Potential Energy Activation Energy

10 Energy Transformation u Governed by the Laws of Thermodynamics.

11 1st Law of Thermodynamics u Energy can be transferred and transformed, but it cannot be created or destroyed. u Also known as the law of “Conservation of Energy”

12 2nd Law of Thermodynamics u Each energy transfer or transformation increases the entropy of the universe.

13 Entropy u Measure of disorder.

14 Summary u The quantity of energy in the universe is constant, but its quality is not.

15 Question? u How does Life go against Entropy? u By using energy from the environment or external sources (e.g. food, light).

16 Free Energy u The portion of a system's energy that can perform work.

17 Free Energy G = H - TS G = free energy of a system H = total energy of a system T = temperature in o K S = entropy of a system

18 Free Energy of a System u If the system has: u more free energy u it is less stable u It has greater work capacity

19 Free Energy Changes

20 Spontaneous Process u If the system is unstable, it has a greater tendency to change spontaneously to a more stable state. u This change provides free energy for work.

21 Chemical Reactions u Are the source of energy for living systems. u Are based on free energy changes.

22 Reaction Types u Exergonic: chemical reactions with a net release of free energy. u Endergonic: chemical reactions that absorb free energy from the surroundings.

23 Exergonic/Endergonic

24 Biological Examples u Exergonic - respiration u Endergonic - photosynthesis

25 Cell - Types of Work u Mechanical - muscle contractions u Transport - pumping across membranes u Chemical - making polymers

26 Cell Energy u Couples an exergonic process to drive an endergonic one. u ATP is used to couple the reactions together.

27 ATP u Adenosine Triphosphate u Made of: - Adenine (nitrogenous base) - Ribose (pentose sugar) - 3 phosphate groups

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29 Adenine Ribose Phosphates

30 Key to ATP u Is in the three phosphate groups. u Negative charges repel each other and makes the covalent bonds between the phosphates unstable.

31 ATP u Works by energizing other molecules by transferring phosphate groups.

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33 ATP vs Food u ATP: u Renewable energy resource. u Unstable bonds u Food: u Long term energy storage u Stable bonds

34 ATP Cycles u Energy released from ATP drives anabolic reactions. u Energy from catabolic reactions “recharges” ATP.

35 ATP Cycle

36 ATP in Cells u A cell's ATP content is recycled every minute. u Humans use close to their body weight in ATP daily. u No ATP production equals quick death.

37 Enzymes u Biological catalysts made of protein. u Cause the rate of a chemical reaction to increase.

38 Chemical Reaction AB + CD AC + BD AB and CD are “reactants” AC and BD are “products”

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40 Enzymes u Lower the activation energy for a chemical reaction to take place.

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42 Enzyme Terms u Substrate - the material and enzyme works on. u Enzyme names: Ex. Sucrase - ase name of an enzyme 1st part tells what the substrate is. (Sucrose)

43 Enzyme Name u Some older known enzymes don't fit this naming pattern. u Examples: pepsin, trypsin

44 Active Site u The area of an enzyme that binds to the substrate. u Structure is designed to fit the molecular shape of the substrate. u Therefore, each enzyme is substrate specific.

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46 Models of How Enzymes Work 1. Lock and Key model 2. Induced Fit model

47 Lock and Key Model u Substrate (key) fits to the active site (lock) which provides a microenvironment for the specific reaction.

48 Induced Fit Model u Substrate “almost” fits into the active site, causing a strain on the chemical bonds, allowing the reaction.

49 Substrate Active Site

50 Enzymes u Usually specific to one substrate. u Each chemical reaction in a cell requires its own enzyme.

51 Factors that Affect Enzymes u Environment u Cofactors u Coenzymes u Inhibitors u Allosteric Sites

52 Environment u Factors that change protein structure will affect an enzyme. u Examples: u pH shifts u temperature u salt concentrations

53 u Cofactors: non-organic helpers to enzymes. Ex. Fe, Zn, Cu u Coenzymes: organic helpers to enzymes. Ex. vitamins

54 Enzyme Inhibitors u Competitive - mimic the substrate and bind to the active site. u Noncompetitive - bind to some other part of the enzyme.

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56 Allosteric Regulation u The control of an enzyme complex by the binding of a regulatory molecule. u Regulatory molecule may stimulate or inhibit the enzyme complex.

57 Allosteric Regulation

58 Control of Metabolism u Is necessary if life is to function. u Controlled by switching enzyme activity "off" or "on” or separating the enzymes in time or space.

59 Types of Control u Feedback Inhibition u Structural Order

60 Feedback Inhibition u When a metabolic pathway is switched off by its end- product. u End-product usually inhibits an enzyme earlier in the pathway.

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62 Structural Order u Separation of enzymes and metabolic pathways in time or space by the cell's organization. u Example: enzymes of respiration

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64 Summary u Recognize that Life must follow the Laws of Thermodynamics. u The role of ATP in cell energy. u How enzymes work.


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