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Colors and Magnetism03:02

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Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human...
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A proton M that is coupled to a proton X results in doublet signals for M. However, NMR-active nuclei can be simultaneously coupled to more than one nonequivalent nucleus. When M is coupled to a second proton A, such as in styrene oxide, each peak in the doublet is split into another doublet.
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Updated: Nov 2, 2025

Preparation, Purification, and Characterization of Lanthanide Complexes for Use as Contrast Agents for Magnetic Resonance Imaging
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Dinuclear Fe(III) Hydroxypropyl-Appended Macrocyclic Complexes as MRI Probes.

Didar Asik1, Samira M Abozeid1, Steven G Turowski2

  • 1Department of Chemistry, University at Buffalo, State University of New York, Amherst, New York 14260, United States.

Inorganic Chemistry
|June 10, 2021
PubMed
Summary

New iron(III) macrocyclic complexes show promise as magnetic resonance imaging (MRI) contrast agents. Dinuclear complexes offer significantly higher relaxivity than mononuclear ones, enhancing MRI contrast in preclinical studies.

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Area of Science:

  • Inorganic Chemistry
  • Materials Science
  • Medical Imaging

Background:

  • Development of effective magnetic resonance imaging (MRI) contrast agents is crucial for diagnostic accuracy.
  • Iron-based complexes offer potential alternatives to gadolinium-based agents, which have associated safety concerns.

Purpose of the Study:

  • To synthesize and characterize novel high-spin Fe(III) macrocyclic complexes for enhanced MRI contrast.
  • To evaluate the relaxivity and in vivo performance of these complexes as potential MRI contrast agents.

Main Methods:

  • Synthesis of four Fe(III) macrocyclic complexes (one mononuclear, three dinuclear) with a 1,4,7-triazacyclononane backbone.
  • Characterization using pH potentiometric titrations and variable-temperature 17O NMR spectroscopy.
  • Measurement of water proton T1 relaxation times and relaxivity (r1) at various field strengths.
  • In vivo MRI studies in mice to assess blood pool and kidney contrast enhancement.

Main Results:

  • Dinuclear Fe(III) complexes exhibited 2- to 3-fold higher r1 relaxivity compared to the mononuclear analog per molecule.
  • The dinuclear complex Fe2(PARA) demonstrated the highest relaxivity (6.7 mM-1 s-1 at 4.7 T).
  • Fe2(PARA) showed enhanced blood pool and kidney contrast in mice MRI studies, even in the presence of serum albumin.

Conclusions:

  • Dinuclear Fe(III) macrocyclic complexes represent a promising class of MRI contrast agents with superior relaxivity.
  • Fe2(PARA) is a particularly effective agent with potential for improved diagnostic imaging.
  • Further investigation into these iron-based agents could lead to safer and more effective MRI contrast agents.