Affiliation:
1. Institute of Nuclear Sciences, Ankara University, Ankara 06830, Turkey
2. Artificial Intelligence and Data Engineering, Ankara University, Ankara 06830, Turkey
3. Faculty of Medicine and Health Technology, Tampere University, 33720 Tampere, Finland
4. Computer Engineering Department, Ankara University, Ankara 06830, Turkey
Abstract
Helium ion beam therapy, one of the particle therapies developed and studied in the 1950s for cancer treatment, resulted in clinical trials starting at Lawrence Berkeley National Laboratory in 1975. While proton and carbon ion therapies have been implemented in research institutions and hospitals globally after the end of the trials, progress in comprehending the physical, biological, and clinical findings of helium ion beam therapy has been limited, particularly due to its limited accessibility. Ongoing efforts aim to establish programs that evaluate the use of helium ion beams for clinical and research purposes, especially in the treatment of sensitive clinical cases. Additionally, helium ions have superior physical properties to proton beams, such as lower lateral scattering and larger LET. Moreover, they exhibit similar physical characteristics to carbon, oxygen, and neon ions, which are all used in heavy ion therapy. However, they demonstrate a sharper lateral penumbra with a lower radiobiological absence of certainties and lack the degradation of variations in dose distributions caused by excessive fragmenting of heavier-ion beams, especially at greater depths of penetration. In this context, the status and the prospective advancements of helium ion therapy are examined by investigating ionization, recoil, and lateral scattering values using MC TRIM algorithms in mandible plate phantoms designed from both tissue and previously studied biomaterials, providing an overview for dental cancer treatment. An average difference of 1.9% in the Bragg peak positions and 0.211 mm in lateral scattering was observed in both phantoms. Therefore, it is suggested that the 4He ion beam can be used in the treatment of mandibular tumors, and experimental research is recommended using the proposed biomaterial mandible plate phantom.
Subject
Health Information Management,Health Informatics,Health Policy,Leadership and Management
Reference52 articles.
1. New ions for therapy;Tommasino;Int. J. Part. Ther.,2015
2. Simulation based analysis of 4He, 7Li, 8Be and 10B ions for heavy ion therapy;Ekinci;Int. J. Radiat. Res.,2023
3. Effect of different embolization materials on proton beam stereotactic radiosurgery Arteriovenous Malformation dose distributions using the Monte Carlo simulation code;Ekinci;J. Radiat. Res. Appl. Sci.,2022
4. Radiotherapy with heavy charged particles at Lawrence Berkeley Laboratory;Castro;J. Can. Assoc. Radiol.,1980
5. Roadmap: Helium ion therapy;Mairani;Phys. Med. Biol.,2022
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献