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Tropinone is an , famously synthesised in 1917 by Robert Robinson as a synthetic precursor to , a scarce commodity during World War I. Tropinone and the alkaloids and atropine all share the same core structure. Its corresponding conjugate acid at pH 7.3 major species is known as tropiniumone. Chemical Entities of Biological Interest Identification code: ChEBI:57851 "tropiniumone"


Synthesis
The first synthesis of tropinone was by Richard Willstätter in 1901. It started from the seemingly related , but required many steps to introduce the nitrogen bridge; the overall yield for the synthesis path is only 0.75%.
(1998). 9780854045440
Willstätter had previously synthesized cocaine from tropinone, in what was the first synthesis and elucidation of the structure of cocaine.


Robinson's "double Mannich" reaction
The 1917 synthesis by Robinson is considered a classic in due to its simplicity and biomimetic approach. Tropinone is a bicyclic molecule, but the used in its preparation are fairly simple: , and acetonedicarboxylic acid (or even ). The synthesis is a good example of a reaction or biogenetic-type synthesis because makes use of the same building blocks. It also demonstrates a in a one-pot synthesis. Furthermore, the yield of the synthesis was 17% and with subsequent improvements exceeded 90%.

This reaction is described as an intramolecular "double " for obvious reasons. It is not unique in this regard, as others have also attempted it in piperidine synthesis.

In place of acetone, acetonedicarboxylic acid is known as the "synthetic equivalent" the 1,3-dicarboxylic acid groups are so-called "" to facilitate the ring forming reactions. The calcium salt is there as a "" as it is claimed that higher yields are possible if the reaction is conducted at " pH".


Reaction mechanism
The main features apparent from the reaction sequence below are:

  1. Nucleophilic addition of to , followed by loss of water to create an
  2. Intramolecular addition of the imine to the second aldehyde unit and first ring closure
  3. of the of acetone dicarboxylate
  4. New enolate formation and new imine formation with loss of water for
  5. Second intramolecular Mannich reaction and second ring closure
  6. Loss of 2 carboxylic groups to tropinone

Some authors have actually tried to retain one of the CO2H groups.

CO2R-tropinone has 4 stereoisomers, although the corresponding alkyl ester has only a pair of enantiomers.


From cycloheptanone
dehydrogenation (oxidation) of (suberone) to 2,6-cycloheptadienone 1192-93-4 followed by reaction with an amine is versatile a way of forming tropinones. The mechanism evoked is clearly delineated to be a double (i.e. conjugate addition).


Biochemistry method


Reduction of tropinone
The reduction of tropinone is mediated by -dependent reductase enzymes, which have been characterized in multiple plant species. These plant species all contain two types of the reductase enzymes, tropinone reductase I and tropinone reductase II. TRI produces tropine and TRII produces pseudotropine. Due to differing kinetic and pH/activity characteristics of the enzymes and by the 25-fold higher activity of TRI over TRII, the majority of the tropinone reduction is from TRI to form tropine.


See also


External links

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