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March 7, 2026Magnetochemistry1 citationsOpen Access

The First 1H NMR Total Assignment and a Quantum-Mechanically Driven Full Spin Analysis of the Steroid Hormone Equilenin

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VRVidak RaičevićNRNiko S. RadulovićKUKatarina Urumović

Key Points

  • The study aims to provide complete proton assignments and analyze the spin system of equilenin.
  • Conducted 1H NMR in deuterochloroform
  • Employed conventional spectral analysis combined with quantum-mechanical techniques
  • Performed iterative full spin analysis (HiFSA)
  • Assigned 13C NMR spectrum using one- and two-dimensional experiments
  • Achieved high-fidelity reproduction of the experimental spectrum
  • Determined true chemical shifts and scalar coupling constants
  • Established a robust spectroscopic reference set for equilenin

Abstract

Equilenin is an equine estrogen constituting the basis of a highly-prescribed pharmaceutical preparation. Although routine 1H and 13C NMR data for it have been reported, complete assignments and a full analysis of the proton spin system have not been established. In the present study, equilenin was examined by solution NMR in deuterochloroform, employing conventional spectral analysis in conjunction with quantum-mechanical techniques to achieve a 1H iterative full spin analysis (HiFSA). The resulting model reproduces the experimental spectrum with high fidelity and permits the determination of true chemical shifts and scalar coupling constants for this complex spin system. In addition, the 13C NMR spectrum was fully assigned using a combination of one- and two-dimensional experiments. The obtained data constitute a robust spectroscopic reference set for equilenin and the analytical value of the Cosmic Truth software for resolving spin systems in steroids. The results provide a valuable source of data for researchers seeking to implement NMR-based assays relevant to analytical, regulatory, and forensic applications.

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Cite This Study

Raičević et al. (2026) studied this question.

synapsesocial.com/papers/69abc1765af8044f7a4ea2bchttps://doi.org/10.3390/magnetochemistry12030032
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