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Published on: August 22, 2018
A Concise Synthetic Method for Constructing 3-Substituted Piperazine-2-Acetic Acid Esters from 1,2-Diamines
Srinivas Chamakuri1, Sunny Ann Tang1, Kevin A Tran1
1Center for Drug Discovery, Department of Pathology and Immunology, Baylor College of Medicine, One Baylor Plaza, Houston, TX 77030, USA.
A new five-step synthesis efficiently creates optically pure 2,3-substituted piperazine acetic acid esters from amino acids. This method enables the challenging synthesis of 3-phenyl substituted analogs, though racemization occurred in this specific case.
Area of Science:
- Organic Chemistry
- Synthetic Chemistry
Background:
- Piperazine derivatives are important scaffolds in medicinal chemistry.
- Efficient synthesis of enantiomerically pure piperazines is crucial for drug development.
Purpose of the Study:
- To develop a short and efficient synthetic route for 2,3-substituted piperazine acetic acid esters.
- To enable the synthesis of previously difficult-to-access substituted piperazines.
Main Methods:
- Utilizing optically pure amino acids as starting materials.
- A five-step conversion involving 1,2-diamine intermediates.
- Synthesis of 3-phenyl substituted-2-piperazine acetic acid esters.
Main Results:
- Achieved high enantiomeric purity for most 2,3-substituted piperazine acetic acid esters.
- Successfully synthesized 3-phenyl substituted-2-piperazine acetic acid esters for the first time.
- Observed racemization in the synthesis of 3-phenyl substituted analogs.
Conclusions:
- The developed synthetic route is efficient for producing various enantiomerically pure piperazine derivatives.
- The method provides a novel approach for synthesizing challenging piperazine structures.
- Further optimization may be needed to prevent racemization in specific cases, such as with 3-phenyl substitution.
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