1H/15N NMR and Low-Field 1H MRI of SABRE-Hyperpolarized PyrazinamideAn Approved Antibiotic and Potential MRI

Zahid Siraj1, Anthony F Petrilla1, Ishani M Senanayake1

  • 1School of Chemical & Biomolecular Sciences, Southern Illinois University, Carbondale, Illinois 62901, United States.

PubMed

Insights

Pyrazinamide, an antibiotic, shows promise as a hyperpolarized MRI contrast agent. Novel SABRE-SHEATH techniques enable enhanced 15N NMR detection and imaging, paving the way for new diagnostic tools.

Area of Science:

  • Magnetic Resonance Imaging
  • Nuclear Magnetic Resonance Spectroscopy
  • Medical Diagnostics

Background:

  • Pyrazinamide (PZA) is an established antibiotic.
  • Hyperpolarized MRI contrast agents enhance imaging sensitivity.
  • Developing novel contrast agents is crucial for advanced diagnostics.

Purpose of the Study:

  • To investigate Pyrazinamide (PZA) as a potential hyperpolarized MRI contrast agent.
  • To characterize PZA's hyperpolarization dynamics using SABRE and SABRE-SHEATH.
  • To demonstrate the utility of hyperpolarized PZA in MRI.

Main Methods:

  • Parahydrogen-based NMR Signal Amplification By Reversible Exchange (SABRE) was employed for hyperpolarization.
  • SABRE in SHield Enables Alignment Transfer to Heteronuclei (SABRE-SHEATH) was utilized in the microtesla regime.
  • 15N NMR and 1H MRI were performed at various field strengths (0.2 μT to 9.4 T).

Main Results:

  • 1H polarization and relaxation dynamics of PZA were characterized.
  • Direct 15N NMR detection and polarization/relaxation dynamics were achieved via SABRE-SHEATH for the first time.
  • 15N enhancements exceeding 140,000-fold were observed, with a 15N T1 of over 2 min.
  • Quantitative 1H MRI studies demonstrated PZA's potential as a contrast agent.

Conclusions:

  • Pyrazinamide can be effectively hyperpolarized using SABRE and SABRE-SHEATH techniques.
  • SABRE-SHEATH enables sensitive 15N NMR detection of PZA, overcoming natural abundance limitations.
  • Hyperpolarized PZA shows significant potential as a novel MRI contrast agent for point-of-care applications.

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