. Label alpha (a) and beta ( B) carbons . Draw the acyl CoA derived from this fatty acid . How many acetyl COA molecules are formed by complete B-oxidation? 1. How many cycles of ß- oxidation are needed for complete oxidation? . How many molecules of ATP are formed from the complex catabolism
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- Consider docosanoic acid C12H43CO2H a. Label the alpha and beta Carbons. Show the beta-oxidation in an EXPANDED structure. b. Draw each acyl CoA derived from this fatty acid. c. How many acetyl Co A molecules are formed by complete beta-oxidation? d. How many cycles of beta-oxidation are needed for complete oxidation? e. How many molecules of ATP are formed from the complete catabolism of this fatty acid? Show the complete computation. f. How many moles of ATP per gram of fatty acid is formed from the complete catabolism of the given fatty acid? g. What is the molar mass of the given fatty acid? Solution: Show here the complete computations, [from a to e]a. Some of the acetyl-CoA used in the citric acid cycle is produced from pyruvate. List the reactants and products of this reaction. The reactants are pyruvate and The products are acetyl-CoA and In the process, a(n) is to b. Name an enzyme complex that catalyzes this reaction and list its negative effectors. is the enzyme complex that catalyzes this reaction. Its negative effectors are andConsidering the complete oxidation of an 18-C fatty acid. Give the answer to the following question.a. What is the total number of NADH produced in TCA if all of the acetyl CoA enters the cycle? b. What is the total number of FADH2 produced in TCA if all the acetyl CoA enters the cycle?c. How much ATP is produced in the overall oxidation?
- Palmitoleic acid, 16:1Δ⁹ hexadecaenoic acid, (16 carbon FA with one double bond )is an important fatty acid component of TAGs and cell membranes. Briefly explain the process of beta oxidation of this fatty acid and the number (only) of FADH, NADH and acetyl CoA outcome. What is the total ATP (only number) generated from this fatty acid after beta oxidation.A. The inhibitor constants for three inhibitors of por- cine citrate synthase are summarized in the table on the right. The compounds were all determined to bind in the active site as competitive inhibitors of acetyl-CoA. Because they bind as competitive inhibitors, all three inhibitors must exhibit structural similarity to some part of acetyl-CoA. Look up in the textbook the structural formu- las for Coenzyme A, ATP, and NADH. What is the largest structural fragment of each inhibitor that is responsible for competitive inhibition? Draw the molecular fragment common to each inhibitor that competes with the binding of acetyl-CoA in the active site of citrate synthase. Bromoacetyl-CoA ATP NADH K₁ (μM) 25.7 6800 8300 B While the inhibitor constants listed in part (b) above were determined in vitro for purified citrate synthase, does their inhibitory action have any relevance to the flux of metabolites through the TCA cycle in vivo? If so, explain.Consider the docosanoic acid, C21H43CO2H a. Label the a and B carbons b. Draw the acyl CoA derived from this fatty acid c. How many acetyl CoA molecules are formed by complete B-oxidation? d. How many cycles of B-oxidation are needed for complete oxidation? e. How many molecules of ATP are formed from the complete catabolism of this fatty acid?
- Instructions. Given each set of information which may include common name(s) and the reaction catalyzed, you are required to identify the main class of the specific enzyme described. Name: citryl-CoA synthetase Reaction: ATP + citrate + CoA = ADP + phosphate + (3S)-citryl-CoA Name: D-xylulose reductase Reaction: xylitol + NAD+ = D-xylulose + NADH + H+ Name: cellobiose phosphorylase Reaction: cellobiose phosphate = α-D-glucose 1-phosphate + D-glucose Name: carbonic anhydrase Reaction: H2CO3 = CO2 + H2O Other info: The enzyme catalyzes the reversible hydration of gaseous CO2 to carbonic acid, which dissociates to give hydrogencarbonate above neutral pH. Name: pantoate activating enzyme Reaction: ATP + (R)-pantoate = AMP + diphosphate + (R)-pantothenate.Consider the carbohydrate maltose. a. How many molecules of acetyl CoA are formed from its complete catabolism?b. How many rounds of Citric acid Cycle must occur to complete catabolism?c. How many rounds of electron transport chain and oxidative phosphorylation?d. Calculate the number of molecules (moles) of ATP formed (net) by the complete catabolismof maltose (show your calculation).e. Calculate number of moles of ATP formed per gram of maltose metabolized (molar mass:342.3 g/mol).Calculate the total number of ATP that can be generated from the ß-oxidation of paulinic acid? ОН 1. How many ATP expended for activating fatty acid to fatty acyl-CoA? How many rounds of beta oxidation? How many FADH2 per round of beta oxidation? Is there any point in the beta oxidation of an unsaturated fatty acid where we skip over FADH, production? How many FADH, total from beta oxidation? How many NADH per round of beta oxidation? How many NADH total from beta oxidation? How many acetyl-CoA are produced through beta oxidation? 6. 2. 3. 4. 5. How many NADH and FADH, are produced per acetyl-CoA in the citric acid cycle? How many NADH total from all acetyl-CoA running through the citric acid cycle? How many FADH, total from all acetyl-CoA running through the citric acid cycle? How many ATP are produced per acetyl-CoA in the citric acid cycle? How many ATP total from all acetyl-CoA running through the citric acid cycle? How many ATP per NADH,? 9. 7. 1. 8. How many ATP per FADH,? 10.…
- Considering the complete oxidation of an 18-C fatty acid. Give the answer for the following question.a. How many rounds of beta-oxidation is needed?b. How many NADH molecules are produced in beta-oxidation only?c. How many FADH2 molecules are produced in beta-oxidation only?d. How many Acetyl Co-A are produced?G. ENZYME CLASSIFICATION. Identify the main class of enzymes used to catalyzed the following reactions: 1. Lactate dehydrogenase: NADH+H NAD HC-OH CH3 CH Pynnte Lactate 2. Methylmalonyl-CoA mutase: CH CH SCOA CH,CH, SCOA coenzyme B12 COO COO methylmalonyl-CoA succinyl-CoA 3. Enolase: 0. H–Ċ–0–P–0- C-0–P-0- + H,0 HO–CH, CH 6 Phosphoenolpyruvate 2-Phosphoglycerate 4. Chymotrypsin: -0–CH,CH3 + H2O - RCOOH + HOCH,CH3 5. Pyruvate carboxylase: coo • co, • ATP + H,0 H-C-H . ADP + P, + 2H čoo CH, Pyruvate OxaleacetateA. Identify different types of organic reaction mechanims in the followingmetabolic pathways.1. Catabolism of triacylglycerols- beta-oxidation pathway2. Biosynthesis of fatty acids from Acetyl CoA3. Glycolysis (from glucose to two molecules of pyruvate)4. Conversion of Pyruvate to Acetyl CoA5.Citric acid cycle6. Gluconeogensis pathway (pyruvate to glucose) B. Identify at most 5 organic reactions for each metabolic pathway.