An abiotic formation of <i>meso</i>- and dl-tartrates in 80% yield via the cyanide-catalyzed dimerization of glyoxylate under alkaline conditions is demonstrated. A detailed mechanism for this conversion is proposed, supported by NMR evidence and <sup>13</sup>C-labeled reactions. Simple dehydration of tartrates to oxaloacetate and an ensuing decarboxylation to form pyruvate are known processes that provide a ready feedstock for entry into the citric acid cycle. While glyoxylate and high hydroxide concentration are atypical in the prebiotic literature, there is evidence for natural, abiotic availability of each. It is proposed that this availability, coupled with the remarkable efficiency of tartrate production from glyoxylate, merits consid...
Although it is well known that citrate stimulates the growth of acid fast bacteria, the metabolic ro...
In 1937, Sir H. A Krebs first published the Citric Acid Cycle, a unidirectional cycle with carboxyli...
Perez F, Jorge J, Dreyszas A, Risse JM, Wendisch VF. Efficient production of the dicarboxylic acid g...
ABSTRACT: An abiotic formation of meso- and DL-tartrates in 80 % yield via the cyanide-catalyzed dim...
Correction to “Production of Tartrates by Cyanide-Mediated Dimerization of Glyoxylate: A Potential A...
The development of metabolic approaches towards understanding the origins of life, which have focuse...
From the distribution of radioactivity in the citrate they obtained, using labeled acetate and C02, ...
The nucleophilicity of the α-carbon of malonate, coupled with its potential for subsequent decarboxy...
Efforts to decipher the prebiotic roots of metabolic pathways have focused on recapitulating modern ...
The centrality of the Krebs cycle in metabolism has long been interpreted as evidence of its antiqui...
A cycle remains a cycle only as long as the spokes of the wheel are not stolen. To keep the citric a...
The aldol addition of glyxoylate to pyruvate or oxaloacetate in water at neutral pH initiates a cycl...
SUMMARY: Certain bacteria of the genus Pseudomonas attack the tartaric acids by means of inducible s...
Microbial utilization of uncommon C4 dicarboxylate L-tartrate is largely anaerobic, with aerobic L-t...
The citrate metabolism has been extensively studied in lactic acid bacteria (LAB) for its aroma comp...
Although it is well known that citrate stimulates the growth of acid fast bacteria, the metabolic ro...
In 1937, Sir H. A Krebs first published the Citric Acid Cycle, a unidirectional cycle with carboxyli...
Perez F, Jorge J, Dreyszas A, Risse JM, Wendisch VF. Efficient production of the dicarboxylic acid g...
ABSTRACT: An abiotic formation of meso- and DL-tartrates in 80 % yield via the cyanide-catalyzed dim...
Correction to “Production of Tartrates by Cyanide-Mediated Dimerization of Glyoxylate: A Potential A...
The development of metabolic approaches towards understanding the origins of life, which have focuse...
From the distribution of radioactivity in the citrate they obtained, using labeled acetate and C02, ...
The nucleophilicity of the α-carbon of malonate, coupled with its potential for subsequent decarboxy...
Efforts to decipher the prebiotic roots of metabolic pathways have focused on recapitulating modern ...
The centrality of the Krebs cycle in metabolism has long been interpreted as evidence of its antiqui...
A cycle remains a cycle only as long as the spokes of the wheel are not stolen. To keep the citric a...
The aldol addition of glyxoylate to pyruvate or oxaloacetate in water at neutral pH initiates a cycl...
SUMMARY: Certain bacteria of the genus Pseudomonas attack the tartaric acids by means of inducible s...
Microbial utilization of uncommon C4 dicarboxylate L-tartrate is largely anaerobic, with aerobic L-t...
The citrate metabolism has been extensively studied in lactic acid bacteria (LAB) for its aroma comp...
Although it is well known that citrate stimulates the growth of acid fast bacteria, the metabolic ro...
In 1937, Sir H. A Krebs first published the Citric Acid Cycle, a unidirectional cycle with carboxyli...
Perez F, Jorge J, Dreyszas A, Risse JM, Wendisch VF. Efficient production of the dicarboxylic acid g...