Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive...

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Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence : Low-reactive ring-form minimizes protein glycosylation

Transcript of Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive...

Page 1: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Glycolysis: Energy Generation Without an Oxygen Requirement

Glucose Biofuel Prominence:

Low-reactive ring-form minimizes protein glycosylation

Page 2: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Glycolysis: A Three Step Process

• Glucose trapping and destabilization (priming)

•Three carbon unit generation (cleaving)

• Energy generation

Page 3: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Induced Fit in Hexokinase

Glucose induces a large enzyme conformational change

Substrate-induced cleft closing prevents ATP hydrolysis

Kinases require a divalent metal ion

What function does Mg+2 play in hexokinase?

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Hexokinase Closed Around Substrates

What mechanisms of catalysis are operative?

Page 5: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Hexokinase Reaction Mechanism

What is the Nu:, electrophile, and leaving group in this reaction?

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Phosphoglucose Isomerase: Aldose to Ketose Conversion

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PGI Reaction Mechanism

Phosphoglucose Isomerase (PGI) G6P Conversion via Acid-Base Catalysis

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Base catalyzed bond formation

Phosphoglucose Isomerase (PGI) G6P Conversion via Acid-Base Catalysis

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Acid catalyzedketal formation

Phosphoglucose Isomerase (PGI) G6P Conversion via Acid-Base Catalysis

Page 10: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

H+

Base catalyzes ring closure

Phosphoglucose Isomerase (PGI) G6P Conversion via Acid-Base Catalysis

Page 11: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Phosphofructokinase: Trapping the Fructose Isomer

What is the mechanism for this reaction?

Page 12: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Glycolysis Stage I: Glucose Trapping and Destabilization (priming)

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Six Carbon Sugar Cleaved to Two Three Carbon Units

What is the bond to be cleaved?

Which alcohol becomes an aldehyde?

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Haworth and Fischer Projections Equivalency

The functional group that is down in a Haworth projection is positioned how in a Fischer structure?

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Aldolase

Fructose-1,6-bisphosphate binds to the aldolase enzyme for covalent catalysis

Aldolase Reaction Mechanism

Page 16: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Aldolase Reaction Mechanism

What is lost when the Schiff base forms?

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Aldolase Rxn Mechanism

Aldolase Reaction Mechanism

Compare and contrast a Schiff base with a carbonyl group.

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Aldolase Reaction Mechanism

What is the process for Schiff base to carbonyl conversion?

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H2O

Aldolase cleaves FBP into GAP and DHAP

Aldolase Reaction Mechanism

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Which previous glycolytic step is similar to TIM?

Reversible and driven towards GAP due to product depletion

Triose Phosphate Isomerase (TIM)

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Glycolysis: Step #5Triose Phosphate Isomerase

DHAP conversion to GAP necessary to proceed through glycolysis

Triose Phosphate Isomerase Reaction Mechanism

TIM- or α,β-barrel with 8 parallel β-strands surrounded by 8 α-helices.

Page 22: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Two ATPs are initially invested.

One glucose is metabolized into two GAP molecules.

Stoichiometry: Stages 1-2 of Glycolysis

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Road Map for Energy Harvest (Stage 3)

Page 24: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Glyceraldehyde-3-Phosphate Dehydrogenase: Covalent Catalysis

Page 25: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Glyceraldehyde-3-Phosphate Dehydrogenase: a 2 Step Process

What amino acid will serve as a nucleophile to form a thioester?

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Glyceraldehyde-3-Phosphate Dehydrogenase: Reaction Mechanism

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Glyceraldehyde-3-Phosphate Dehydrogenase: Catalysis Energetics

Actual coupled reaction

Hypothetical reaction with no coupling

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What is the Nu:, electrophile and leaving group for this reaction? (hint: consider hexokinase in reverse)

Phosphoglycerate Kinase

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Glycolysis: the Three Final Steps

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Pyruvate Kinase

What is the Nu:, electrophile and leaving group for this reaction? (hint: consider phosphoglycerate kinase)

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∆G°ʹ ∆GEnzyme (kcal/mol) (kcal/mol)

1near equilibrium means that ∆G is about zero

What is the relationship between ∆G and ∆G°ʹ?When can ∆G and ∆G°ʹ diverge?

Glycolysis Energetic

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• Water represents metabolite flux

• Water amount in flask represents intermediate abundance

• Flasks connections are enzymes

• Vertical drop represents decrease in free energy

ΔG° = height difference between flask bottomsΔG = height difference between water levels

Regulating Glycolysis: A Pictorial Analogue

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Metabolic Regulation

Irreversible reactions are potential regulatory sites (e.g. hexokinase, phosphofructokinase and pyruvate kinase)

What duel role does ATP play in PFK-1 catalysis?

In what direction does ATP regulate phosphofructokinase?

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Energy Status Regulates Glycolytic Flow

Elevated [ATP] sufficient energy; elevate [AMP] low energy

ADP + ADP ↔ ATP + AMP <adenylate kinase>

Muscle Tissue

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Fructose-2,6-Bisphosphate an Allosteric Regulator of Phosphofructokinase-1

F-2,6-BP amplifies or diminishes PFK-1 activity?

PFK-2

Liver Tissue

Front activation by fructose-6P

Page 36: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Fructose-2,6-Bisphosphate Reduces ATP Inhibition of Phosphofructokinase-1

ATP is a substrate and inhibitor of PFK-1

PFK-2

Liver Tissue

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Fructose Entry Points for Glycolysis

Glucose + Fructose

Major dietary sugars: sucrose (table sugar) and fructose (high-fructose corn syrup)

Glycerol-3P

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Fructose Metabolism

How is this different than glucose metabolism?

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Lipid Synthesis

Fructose Metabolism

Glycerol 3-phosphate a precursor to triacylglycerol

Fructose catabolism bypasses phosphofructokinase regulation

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Alternative Fates for Pyruvate

Page 41: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Anaerobic Recycling of NADH for Glycolysis

Page 42: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Microbial Recycling of NADH for Glycolysis

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Pyruvate Dehydrogenase:

the Bridge between

Glycolysis and Citric Acid Cycle

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Standard Free Energy Change Comparisons for Glucose Catabolism With and Without Oxygen

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Pathogenic Obligate Anaerobes

Page 46: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Pyruvate Targeted for Anabolism

The biotin prosthetic group serves as a CO2 carrier

What reaction links biotin to the protein?

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Pyruvate Carboxylase: an

Endergonic Reaction

Oxaloacetate

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Glucose Metabolism: Both Catabolic and Anabolic

Page 49: Glycolysis: Energy Generation Without an Oxygen Requirement Glucose Biofuel Prominence: Low-reactive ring-form minimizes protein glycosylation.

Glucose Metabolism: Both Catabolic and Anabolic

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Problems: 1, 3, 5, 7, 13, and 21