Number of the records: 1  

Physical study of proton therapy at CANAM laboratory on medulloblastoma cell lines DAOY

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    SYSNO ASEP0531352
    Document TypeJ - Journal Article
    R&D Document TypeJournal Article
    Subsidiary JČlánek ve WOS
    TitlePhysical study of proton therapy at CANAM laboratory on medulloblastoma cell lines DAOY
    Author(s) Torrisi, L. (IT)
    Davídková, Marie (UJF-V) RID, ORCID, SAI
    Cutroneo, Mariapompea (UJF-V) ORCID, RID, SAI
    Torrisi, Alfio (UJF-V) RID, ORCID
    Number of authors4
    Source TitleRadiation Effects and Defects in Solids. - : Taylor & Francis - ISSN 1042-0150
    Roč. 175, 9-10 (2020), s. 863-878
    Number of pages16 s.
    Publication formPrint - P
    Languageeng - English
    CountryGB - United Kingdom
    Keywordsprotontherapy ; Bragg peak ; medulloblastoma cell line DAOY ; proton dose
    Subject RIVFP - Other Medical Disciplines
    OECD categoryRadiology, nuclear medicine and medical imaging
    R&D ProjectsLM2015056 GA MŠMT - Ministry of Education, Youth and Sports (MEYS)
    GBP108/12/G108 GA ČR - Czech Science Foundation (CSF)
    GA19-02482S GA ČR - Czech Science Foundation (CSF)
    EF16_013/0001812 GA MŠMT - Ministry of Education, Youth and Sports (MEYS)
    Method of publishingLimited access
    Institutional supportUJF-V - RVO:61389005
    UT WOS000547485400001
    EID SCOPUS85087367863
    DOI10.1080/10420150.2020.1780592
    Annotation2.0 MeV proton beam accelerated at Tandetron is extracted in air through a thin film and allowed to scatter to irradiate the cell culture attached to the polymeric base of a biological flask. The irradiated cells were human medulloblastoma cell line Daoy treated with and without 5 nm sized spherical gold nanoparticles. Proton doses from 0.5 to 1.5 Gy have been employed to irradiate the cultures and to investigate the role of the radiotherapy performed with and without the use of the gold nanoparticles. Results indicated that cell survival is significantly reduced to about 50% when the nanoparticles at a concentration of about 6 x 10(13)particles/ml are employed.
    WorkplaceNuclear Physics Institute
    ContactMarkéta Sommerová, sommerova@ujf.cas.cz, Tel.: 266 173 228
    Year of Publishing2021
    Electronic addresshttps://doi.org/10.1080/10420150.2020.1780592
Number of the records: 1  

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