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Proton Therapy Delivery and Its Clinical Application in Select Solid Tumor Malignancies
Published on: February 6, 2019
Radionuclides delivery systems for nuclear imaging and radiotherapy of cancer
Misara Hamoudeh1, Muhammad Anas Kamleh, Roudayna Diab
1Université de Lyon, 69622, France, Université Lyon1, CNRS, UMR 5007, LAGEP, Pharmacotechnical department, ISPB facuté de Pharmacie.
Abstract:
The recent developments of nuclear medicine in oncology have involved numerous investigations of novel specific tumor-targeting radiopharmaceuticals as a major area of interest for both cancer imaging and therapy. The current progress in pharmaceutical nanotechnology field has been exploited in the design of tumor-targeting nanoscale and microscale carriers being able to deliver radionuclides in a selective manner to improve the outcome of cancer diagnosis and treatment. These carriers include chiefly, among others, liposomes, microparticles, nanoparticles, micelles, dendrimers and hydrogels. Furthermore, combining the more recent nuclear imaging multimodalities which provide high sensitivity and anatomical resolution such as PET/CT (positron emission tomography/computed tomography) and SPECT/CT (combined single photon emission computed tomography/computed tomography system) with the use of these specific tumor-targeting carriers constitutes a promising rally which will, hopefully in the near future, allow for earlier tumor detection, better treatment planning and more powerful therapy. In this review, we highlight the use, limitations, advantages and possible improvements of different nano- and microcarriers as potential vehicles for radionuclides delivery in cancer nuclear imaging and radiotherapy.
Insights
Novel nanoscale and microscale carriers enhance nuclear medicine for cancer. These targeted radiopharmaceuticals improve diagnosis, treatment planning, and therapy effectiveness in oncology.
Area of Science:
- Nuclear Medicine
- Oncology
- Nanotechnology
Background:
- Nuclear medicine in oncology focuses on novel tumor-targeting radiopharmaceuticals for imaging and therapy.
- Pharmaceutical nanotechnology enables the design of nanoscale and microscale carriers for selective radionuclide delivery.
Purpose of the Study:
- To review the use, limitations, advantages, and improvements of nano- and microcarriers for radionuclide delivery in cancer nuclear imaging and radiotherapy.
Main Methods:
- Review of current literature on tumor-targeting carriers (liposomes, nanoparticles, etc.).
- Discussion of advanced nuclear imaging modalities (PET/CT, SPECT/CT) combined with targeted carriers.
Main Results:
- Nano- and microcarriers offer selective radionuclide delivery for improved cancer diagnosis and treatment.
- Combination of advanced imaging and targeted carriers promises earlier tumor detection and better treatment planning.
Conclusions:
- Targeted nano- and microcarriers are crucial for advancing cancer nuclear imaging and radiotherapy.
- Future improvements in these carriers will enhance therapeutic outcomes and patient management in oncology.
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