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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.
Abstract:
Kidney diseases have become an important global health concern due to their high incidence, inefficient diagnosis, and poor prognosis. Devising direct methods, especially imaging means, to assess renal function is the key for better understanding the mechanisms of various kidney diseases and subsequent development of effective treatment. Herein, we developed a fluorinated ferrous chelate-based sensitive probe, 1,7-DO2A-Fe(II)-F18 (Probe 1), for 19F magnetic resonance imaging (MRI). This highly fluorinated probe (containing 18 chemically equivalent 19F atoms with a fluorine content at 35 wt %) achieves a 15-time enhancement in signal intensity compared with the fluorine-containing ligand alone due to the appropriately regulated 19F relaxation times by the ferrous ion, which significantly increases imaging sensitivity and reduces acquisition time. Owing to its high aqueous solubility, biostability, and biocompatibility, this probe could be rapidly cleared by kidneys, which provides a means for monitoring renal dysfunction via 19F MRI. With this probe, we accomplish in vivo imaging of the impaired renal dysfunction caused by various kidney diseases including acute kidney injury, unilateral ureteral obstruction, and renal fibrosis at different stages. Our study illustrates the promising potential of Probe 1 for in vivo real-time visualization of kidney dysfunction, which is beneficial for the study, diagnosis, and even stratification of different kidney diseases. Furthermore, the design strategy of our probe is inspiring for the development of more high-performance 19F MRI probes for monitoring various biological processes.
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.
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