Order the following TCA cycle metabolites in the order they appear in the cycle. Not all answers will be used. isocitrate [Choose] oxaloacetate fumarate alpha ketogluterate aconitate isocitrate 3. pyruvate glucose 6-phosphate lactate [Choose ] 4.
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- Arrange the steps of breakdown of oleic acid (pictured below) in the correct order. 1 2 3 4 5 activation by acyl-CoAsynthe ✓ [Choose ] one cycle ofß-oxidationbeginning at the enoyl-CoAhydratasestep three cycles ofẞ-oxidation five cycles ofß-oxidation activation by acyl-CoAsynthetase enoyl-CoAisomeraseactivity enoyl-CoAisomeraseactivity V one cycle ofß-oxidationbegini V five cycles ofß-oxidation OHDescribe the biochemical role of coenzyme Q10 and how supplementation may impact metabolism. Be sure to address the key terms listed below as part of your discussion; you may address additional etiologies as well. coenzyme Q Complex I Complex II Complex III ubiquinone ubiquinol Electron transport chain Oxidative phosphorylation Reactive oxygen speciesBelow is an image of the Krebs cycle: acetyl-CoA oxaloacetate COASH H20 NADH NAD* H20 malate citrate fumarate isocitrate FADH2 NAD* CO2 FAD АТР NADH + ADP succinate GTP NAD+ a-ketoglutarate H20 GDP NADH + CO2 COASH succinyl CoA COASH Consider the conversion of succinate to fumarate, which is coupled with the production the electron carrier FADH2. If this reaction was NOT coupled with the production of FADH2 (and only catalyzed the conversion of succinate to fumarate), how would this impact ATP production through cell respiration? OATP production would stop because no high energy electron carriers would be produced ATP production would still occur, but there would be a much lower ATP yield because a large number of electron carriers are no longer being made ATP production would stop because without FADH2 we will no longer have electrons moving through the electron transport chain ATP production would still occur, but there would be a slightly lower ATP yield because a small number of…
- Order the cofactors based on their use in the mechanism of the a-ketogluterate dehydrogenase complex. 1. Stabilizes a carbanion due to decarboxylation 2. Allows for the splitting of the carbon skeleton from the electron pair generated in a redox reaction 3. Enzyme bond electron carrier that is part of dihydrolipoyl dehydrogenase 4. Final electron acceptor in the overall reaction catalyzed by this complex 1 (Choose ] [Choose ] FAD Lipoamide 2 Fe 2S cluster TPP Biotin 3. NAD+ 4 [Choose ] 2.1 2 points Order the following TCA cycle metabolites in the order they are produced in one turn of the citric acid cycle. Not all answers will be used. 2 1 4 3 TI Isocitrate Citrate Lactate Pyruvate Oxaloacetate Isocitrate Succinyl-CoA Aconitate 3-Phosphoglycerate -DOWrite the inhibitors of following metabolic pathways 1. glycolysis 2. TCA
- 3) Indicate the order in which the metabolites in citric acid cycle are produced; acetyl CoA as 1 and oxaloacetate as 9. Metabolites in Citric Acid Cycle Order Enzyme involved in the formation of the metabolite Acetyl CoA 1 Oxaloacetate 9. Succinyl SCOA Fumarate Malate Citrate Succinate a-Ketoglutarate IsocitrateOne of the steps in psilocybin biosynthesis is the phosphorylation of 4-hydroxytryptamine By the enzyme Psik as shown below, that involves the hydrolysis of ATP. NH₂ OH HO Psik HO of A& ADP 4-hydroxytryptamine ATP norbaeocystin The standard free energy changes for each reaction is shown in the Table below. J reaction 4-hydroxytryptamine + P₁ → norbaeocystin ATP → ADP+ Pi (b) What is the equilibrium constant at 37 °C? AG 27.7 kJ/mol -32.2 kJ/mol (a) Write the net reaction. What is the standard free energy change for the net reaction? (c) In the cell, the concentration of ATP is 3.1 mM, the concentration of P; Is 5.90 mM, and the Concentration of ADP is 220 μM. What will AG Be if the concentration of norbaeocystin Is always kept at 1/100 of the concentration of 4-hydroxytryptamine?Order the cofactors based on their use in the mechanism of the a-etogluterate dehydrogenase complex. 1. Stabilizes a carbanion due to decarboxylation 2. Allows for the splitting of the carbon skeleton from the electron pair generated in a redox reaction 3. Enzyme bond electron carrier that is part of dihydrolipoyl dehydrogenase 4. Final electron acceptor in the overall reaction catalyzed by this complex 1 2 3 4 answer choices: lipoamide, biotin, 2 Fe - 2S cluster, TPP, NAD+, FAD
- You have a crude lysate sample (CL) containing a mixture of six proteins (1, 2, 3, 4, 5, ẞ- galactosidase), and your goal is to obtain purified ẞ-gal. Some characteristics of these proteins are shown in the table below. Protein Alcohol dehydrogenase Carbonic anhydrase Insulin B chain Phosphorylase B Glutamic dehydrogenase B-galactosidase 45% Concentration of ammonium sulfate (AS) required for precipitation Molecular Weight (kDa) Isoelectric point (pl) 38 3.7 80% 65% 20% 30% 45% 28 4.8 4 5.3 98 6.8 49 9.5 115 5.3 You begin your purification by performing an ammonium sulfate (AS) precipitation. You add the appropriate concentration of AS to your CL sample, incubate overnight at 4°C, then centrifuge to generate a supernatant (AS-S) and pellet (AS-P). What concentration of AS will you use to precipitate Glutamic dehydrogenase? © 20% O 30% 45% 65% 80%Outline the mechanism of the conversion of a-ketoglutarate to succinylCoA catalyzed by α-ketoglutarate dehydrogenase complex. Include all products, coenzymes, and reactions in your discussion.Conversion of amino acid nitrogen into urea by the liver for excretion normally involves all the following enzyme activities EXCEPT O Ornithine transcarbamoylase Carbamoyl phosphate synthetase II Glutamate dehydrogenase Arginase Which of the following statements about the