Search Results for compounds
Searching compounds for acetyl acid returned 239580 results.
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … NeuNAc, an acetylated derivative of the carbohydrate sialic acid, makes the head groups of Gangliosides ... Gangliosides are very similar to globosides except that they also contain N-acetyl neuraminic acid (NANA ... (AKA n-acetylneuraminic acid, NANA) linked on the sugar chain. …
Matched description: … NeuNAc, an acetylated derivative of the carbohydrate sialic acid, makes the head groups of Gangliosides ... Gangliosides are very similar to globosides except that they also contain N-acetyl neuraminic acid (NANA ... (AKA n-acetylneuraminic acid, NANA) linked on the sugar chain. …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …
Matched description: … Acetyl-CoA can enter the citric acid cycle, eventually forming several equivalents of ATP. ... Acyl-CoA's are also susceptible to beta oxidation, forming, ultimately, acetyl-CoA. ... Finally, Thiolase cleaves between the alpha carbon and ketone to release one molecule of acetyl-CoA and …