Fluorinated 1,7-DO2A-Based Iron(II) Complexes as Sensitive 19F MRI Molecular Probes for Visualizing Renal Dysfunction

Lingxuan Li1, Chuankai Chen1, Yifan Bu1

  • 1The Key Laboratory for Chemical Biology of Fujian Province, The MOE Key Laboratory of Spectrochemical Analysis & Instrumentation, and Department of Chemical Biology, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.

Analytical Chemistry
|June 17, 2024
PubMed

Insights

Researchers developed a novel fluorinated probe for enhanced 19F MRI, enabling sensitive real-time imaging of kidney dysfunction and aiding in disease diagnosis.

Area of Science:

  • Medical Imaging
  • Biochemistry
  • Nephrology

Background:

  • Kidney diseases pose a significant global health challenge.
  • Early diagnosis and effective treatment are hindered by current assessment methods.
  • Advanced imaging techniques are crucial for understanding renal disease mechanisms.

Purpose of the Study:

  • To develop a sensitive probe for 19F MRI to assess renal function.
  • To enable real-time in vivo imaging of kidney dysfunction.
  • To create a tool for improved diagnosis and management of kidney diseases.

Main Methods:

  • Development of a fluorinated ferrous chelate-based probe (1,7-DO2A-Fe(II)-F18).
  • Utilizing 19F magnetic resonance imaging (MRI) for enhanced sensitivity and reduced acquisition time.
  • Assessing probe performance in vivo for imaging various kidney disease models.

Main Results:

  • The probe demonstrated a 15-fold signal enhancement in 19F MRI.
  • Rapid kidney clearance and biocompatibility were confirmed.
  • Successful in vivo imaging of acute kidney injury, ureteral obstruction, and renal fibrosis was achieved.

Conclusions:

  • The developed probe shows significant potential for in vivo real-time visualization of kidney dysfunction.
  • This imaging approach can aid in the study, diagnosis, and stratification of kidney diseases.
  • The probe design strategy offers a pathway for developing advanced 19F MRI agents.