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Cyclohex-2-ene-1-carboxyl-CoA is an important intermediate in the metabolic pathway of fatty acids, specifically in the β-oxidation process. This molecule is formed when a fatty acyl-CoA undergoes dehydration, resulting in the formation of a double bond between the first and second carbon atoms. The presence of this double bond allows for further enzymatic reactions to occur, ultimately leading to the breakdown of fatty acids into acetyl-CoA units, which can then enter the citric acid cycle for energy production. Cyclohex-2-ene-1-carboxyl-CoA plays a crucial role in the regulation of lipid metabolism and energy homeostasis within cells.

6198-39-6

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6198-39-6 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 6198-39-6 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 6,1,9 and 8 respectively; the second part has 2 digits, 3 and 9 respectively.
Calculate Digit Verification of CAS Registry Number 6198-39:
(6*6)+(5*1)+(4*9)+(3*8)+(2*3)+(1*9)=116
116 % 10 = 6
So 6198-39-6 is a valid CAS Registry Number.

6198-39-6Upstream product

6198-39-6Downstream Products

6198-39-6Relevant academic research and scientific papers

Reversible biological birch reduction at an extremely low redox potential

Kung, Johannes W.,Baumann, Sven,Von Bergen, Martin,Mueller, Michael,Hagedoorn, Peter-Leon,Hagen, Wilfred R.,Boll, Matthias

, p. 9850 - 9856 (2010)

The Birch reduction of aromatic rings to cyclohexadiene compounds is widely used in chemical synthesis and requires solvated electrons, the most potent reductants known in organic chemistry. Benzoyl-coenzyme A (CoA) reductases (BCR) are key enzymes in the anaerobic bacterial degradation of aromatic compounds and catalyze an analogous reaction under physiological conditions. Class I BCRs are FeS enzymes and couple the reductive dearomatization of benzoyl-CoA to cyclohexa-1,5-diene-1-carboxyl-CoA (dienoyl-CoA) to a stoichiometric ATP hydrolysis. Here, we report on a tungsten-containing class II BCR from Geobacter metallireducens that catalyzed the fully reversible, ATP-independent dearomatization of benzoyl-CoA to dienoyl-CoA. BCR additionally catalyzed the disproportionation of dienoyl-CoA to benzoyl-CoA/monoenoyl-CoA and the four- and six-electron reduction of benzoyl-CoA in the presence of a reduced low-potential bridged 2,2′-bipyridyl redox dye. Reversible redox titration experiments in the presence of this redox dye revealed a midpoint potential of E0′= -622 mV for the benzoyl-CoA/dienoyl-CoA couple, which is far below the values of other known reversible substrate/product redox couples in enzymology. This work demonstrates the efficiency of reversible metalloenzyme catalysis, which in chemical synthesis can only be achieved under essentially irreversible conditions.

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