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A Two-Step Protocol for Umpolung Functionalization of Ketones Via Enolonium Species
Published on: August 16, 2018
(3S,5R,6S)-Di-phenyl-methyl 1-oxo-6-bromo-penicillanate
Krishnan Soundararajan1, Velusamy Sethuraman1, Kaliyaperumal Thanigaimani2
1Department of Chemistry, Periyar Maniammai Institute of Science and Technology, Vallam-613 403, Thanjavur, Tamil Nadu, India.
The crystal structure of a key intermediate for tazobactam synthesis was determined. This study reveals the specific conformations of its thia-zolidine and azetidine rings and identifies weak intermolecular interactions.
Area of Science:
- Medicinal Chemistry
- Crystallography
- Organic Chemistry
Background:
- Tazobactam is a crucial beta-lactamase inhibitor widely used in clinical practice.
- Understanding the structure of its synthetic intermediates is vital for process optimization and drug development.
Purpose of the Study:
- To elucidate the three-dimensional structure of a key intermediate in tazobactam synthesis.
- To characterize the conformational properties of the thia-zolidine and azetidine rings.
- To identify non-covalent interactions within the crystal lattice.
Main Methods:
- Single-crystal X-ray diffraction analysis was employed to determine the molecular structure.
- Conformational analysis of the heterocyclic rings was performed.
- Intermolecular interactions, including hydrogen bonds and C-H⋯π interactions, were analyzed.
Main Results:
- The crystal structure of the title compound (C21H20BrNO4S) was successfully determined.
- The five-membered thiazolidine ring adopts an envelope conformation.
- The four-membered azetidine ring exhibits a distorted planar conformation.
- Weak C-H⋯O hydrogen bonds and a C-H⋯π interaction were identified as significant crystal packing forces.
Conclusions:
- The determined crystal structure provides valuable insights into the stereochemistry of the tazobactam intermediate.
- The conformational preferences of the rings and the identified weak interactions are important for understanding the solid-state properties and potential reactivity.
- This structural information can aid in the design of improved synthetic routes for tazobactam.
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