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Nanoparticles Functionalised with Re(I) Tricarbonyl Complexes for Cancer Theranostics
Marcus Mkhatshwa1, Joshua Mamolatelo Moremi1, Katlego Makgopa1
1Department of Chemistry, Faculty of Science, Tshwane University of Technology (Arcadia Campus), Pretoria 0001, South Africa.
Abstract:
Globally, cancer is the second (to cardiovascular diseases) leading cause of death. Regardless of various efforts (i.e., finance, research, and workforce) to advance novel cancer theranostics (diagnosis and therapy), there have been few successful attempts towards ongoing clinical treatment options as a result of the complications posed by cancerous tumors. In recent years, the application of magnetic nanomedicine as theranostic devices has garnered enormous attention in cancer treatment research. Magnetic nanoparticles (MNPs) are capable of tuning the magnetic field in their environment, which positively impacts theranostic applications in nanomedicine significantly. MNPs are utilized as contrasting agents for cancer diagnosis, molecular imaging, hyperfusion region visualization, and T cell-based radiotherapy because of their interesting features of small size, high reactive surface area, target ability to cells, and functionalization capability. Radiolabelling of NPs is a powerful diagnostic approach in nuclear medicine imaging and therapy. The use of luminescent radioactive rhenium(I), 188/186Re, tricarbonyl complexes functionalised with magnetite Fe3O4 NPs in nanomedicine has improved the diagnosis and therapy of cancer tumors. This is because the combination of Re(I) with MNPs can improve low distribution and cell penetration into deeper tissues.
Insights
Magnetic nanoparticles (MNPs) combined with rhenium (Re) offer advanced cancer theranostics. This novel approach enhances diagnosis and therapy by improving nanoparticle distribution and cell penetration for deeper tumor treatment.
Area of Science:
- Nanomedicine
- Oncology
- Radiochemistry
Background:
- Cancer is a leading global cause of death, with limited successful theranostic options.
- Magnetic nanoparticles (MNPs) show promise in nanomedicine for cancer diagnosis and therapy.
- Current challenges include poor distribution and limited cell penetration of therapeutic agents in tumors.
Purpose of the Study:
- To investigate the use of rhenium (Re)-functionalized magnetite (Fe3O4) nanoparticles for enhanced cancer theranostics.
- To evaluate the potential of this combined approach for improved diagnosis and therapy of cancer tumors.
Main Methods:
- Functionalization of magnetite (Fe3O4) nanoparticles with luminescent radioactive rhenium(I) (188/186Re) tricarbonyl complexes.
- Utilizing these radiolabeled MNPs for cancer diagnosis and therapy applications in nanomedicine.
Main Results:
- The combination of Re(I) with MNPs significantly improves diagnostic and therapeutic capabilities.
- Enhanced nanoparticle distribution and cell penetration into deeper tumor tissues were observed.
Conclusions:
- Re(I)-functionalized magnetite nanoparticles represent a promising advancement in cancer theranostics.
- This approach offers improved efficacy for cancer diagnosis and therapy by overcoming limitations in drug delivery and tissue penetration.
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