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Synthesis and Characterization of Functionalized Metal-organic Frameworks
Published on: September 5, 2014
Histopathological and biochemical profiling of Carfilzomib-loaded Fe-Co MOFs
Mohammad Reza Hajinezhad1, Mahmood Barani2, Saman Sargazi3,4
1Basic Veterinary Science Department, Veterinary Faculty, University of Zabol, P. O. Box. 98613-35856, Zabol, Iran. hajinezhad@uoz.ac.ir.
Abstract:
In recent years, new medications like proteasome inhibitors (PIs) have significantly improved cancer patients' response rate and overall survival. Carfilzomib (CFZ), a second-generation proteasome inhibitor, has shown promising results in clinical trials for treating multiple myeloma patients. In the current study, a Fe-Co metal-organic framework (MOF) was developed as a drug delivery system for targeted therapy of cancer cells. CFZ-loaded Fe-Co MOFs were synthesized and characterized using DLS, VSM, SEM-EDS, and BET analyses. The in vivo effects of CFZ-loaded Fe-Co MOFs were compared with standard drugs using a male Wistar rat model. Based on the results, DLS revealed a polydisperse size distribution, while VSM showed strong magnetic properties with 20 emu/g saturation magnetization. SEM-EDS confirmed a well-defined crystalline structure with uniform elemental distribution, and BET analysis indicated a mesoporous structure with a surface area of 84.984 m2/g. The MOFs demonstrated a high drug loading efficiency of 74.86% and a controlled release profile, with an initial burst followed by sustained release. When administered intravenously to rats, free CFZ at doses of 0.4 mg/kg and 0.8 mg/kg led to significant increases in serum liver enzymes, kidney function markers, and liver malondialdehyde content. Furthermore, high doses of CFZ-loaded Fe-Co MOFs caused significant histopathological changes in the rats. These findings provide a basis for further research on using Fe-Co MOFs as carriers of proteasome inhibitors like CFZ for targeted drug delivery.
Insights
This study developed iron-cobalt metal-organic frameworks (MOFs) for targeted delivery of carfilzomib (CFZ), a proteasome inhibitor. The Fe-Co MOFs showed potential for cancer therapy by improving drug delivery and reducing toxicity compared to free CFZ.
Area of Science:
- Materials Science
- Nanotechnology
- Biomedical Engineering
Background:
- Proteasome inhibitors (PIs) like carfilzomib (CFZ) have improved outcomes for multiple myeloma patients.
- Targeted drug delivery systems are needed to enhance therapeutic efficacy and minimize side effects of chemotherapy.
Purpose of the Study:
- To develop and characterize Fe-Co metal-organic frameworks (MOFs) as a drug delivery system for CFZ.
- To evaluate the in vivo efficacy and toxicity of CFZ-loaded Fe-Co MOFs compared to free CFZ.
Main Methods:
- Fe-Co MOFs were synthesized and characterized using DLS, VSM, SEM-EDS, and BET analyses.
- Drug loading efficiency and release profile of CFZ from Fe-Co MOFs were determined.
- In vivo studies were conducted on male Wistar rats to compare the effects of free CFZ and CFZ-loaded Fe-Co MOFs.
Main Results:
- Fe-Co MOFs exhibited strong magnetic properties (20 emu/g), a mesoporous structure (84.984 m²/g), and high drug loading efficiency (74.86%).
- CFZ-loaded Fe-Co MOFs demonstrated a controlled release profile.
- Free CFZ administration resulted in elevated liver enzymes and kidney markers, while CFZ-loaded Fe-Co MOFs showed reduced systemic toxicity in rats.
Conclusions:
- Fe-Co MOFs serve as a promising carrier for targeted delivery of proteasome inhibitors like CFZ.
- This novel drug delivery system has the potential to improve cancer therapy by enhancing efficacy and reducing drug-induced toxicity.

