Gold nanoparticles and their alternatives for radiation therapy enhancement

被引:103
|
作者
Cooper, Daniel R. [1 ]
Bekah, Devesh [1 ]
Nadeau, Jay L. [1 ]
机构
[1] McGill Univ, Dept Biomed Engn, 316 Lyman Duff Bldg,3775 Univ St, Montreal, PQ H3A 2B4, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
nanoparticle; scintillator; radiation therapy; photodynamic therapy; photosensitizer; radiosensitizer;
D O I
10.3389/fchem.2014.00086
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Radiation therapy is one of the most commonly used treatments for cancer. The dose of delivered ionizing radiation can be amplified by the presence of high-Z materials via an enhancement of the photoelectric effect; the most widely studied material is gold (atomic number 79). However, a large amount is needed to obtain a significant dose enhancement, presenting a challenge for delivery. In order to make this technique of broader applicability, the gold must be targeted, or alternative formulations developed that do not rely solely on the photoelectric effect. One possible approach is to excite scintillating nanoparticles with ionizing radiation, and then exploit energy transfer between these particles and attached dyes in a manner analogous to photodynamic therapy (PDT). Doped rare-earth halides and semiconductor quantum dots have been investigated for this purpose. However, although the spectrum of emitted light after radiation excitation is usually similar to that seen with light excitation, the yield is not. Measurement of scintillation yields is challenging, and in many cases has been done only for bulk materials, with little understanding of how the principles translate to the nanoscale. Another alternative is to use local heating using gold or iron, followed by application of ionizing radiation. Hyperthermia pre-sensitizes the tumors, leading to an improved response. Another approach is to use chemotherapeutic drugs that can radiosensitize tumors. Drugs may be attached to high-Z nanoparticles or encapsulated. This article discusses each of these techniques, giving an overview of the current state of nanoparticle-assisted radiation therapy and future directions.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Gold nanoparticles based platforms for localized radiosensitization in cancer radiation therapy
    Kumar, Rajiv
    Ngwa, Wilfred
    Joshi, Vinit
    Kunjachan, Sijumon
    Berbeco, Ross
    Makrigiorgos, Mike
    Sridhar, Srinivas
    CANCER RESEARCH, 2017, 77
  • [32] Gold nanoparticles enhance the radiation therapy of a murine squamous cell carcinoma
    Hainfeld, James F.
    Dilmanian, Avraham
    Zhong, Zhong
    Slatkin, Daniel N.
    Kalef-Ezra, John A.
    Smilowitz, Henry M.
    CANCER RESEARCH, 2011, 71
  • [33] Gold nanoparticles enhance the radiation therapy of a murine squamous cell carcinoma
    Hainfeld, James F.
    Dilmanian, F. Avraham
    Zhong, Zhong
    Slatkin, Daniel N.
    Kalef-Ezra, John A.
    Smilowitz, Henry M.
    PHYSICS IN MEDICINE AND BIOLOGY, 2010, 55 (11): : 3045 - 3059
  • [34] Evaluation of Gold Nanoparticles Radio Sensitization Effect in Radiation Therapy of Cancer
    Aghajanpour, Mohammad
    Aghaei, Masoumeh Jafar
    Haghighi, Ramin
    Tavakolian, Ayoub
    Maleki, Fatemeh
    ADVANCES IN PHARMACOLOGY AND PHARMACY, 2020, 8 (01) : 6 - 10
  • [35] Study on dependence of dose enhancement on cluster morphology of gold nanoparticles in radiation therapy using a body-centred cubic model
    Ahn, Sang Hee
    Chung, Kwangzoo
    Shin, Jung Wook
    Cheon, Wonjoong
    Han, Youngyih
    Park, Hee Chul
    Choi, Doo Ho
    PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (19): : 7729 - 7740
  • [36] Enhancement of radiosensitization by metal-based nanoparticles in cancer radiation therapy
    XiangYu Su
    PeiDang Liu
    Hao Wu
    Ning Gu
    Cancer Biology & Medicine, 2014, (02) : 86 - 91
  • [37] Enhancement of radiosensitization by metal-based nanoparticles in cancer radiation therapy
    Xiang-Yu Su
    Pei-Dang Liu
    Hao Wu
    Ning Gu
    Cancer Biology & Medicine, 2014, 11 (02) : 86 - 91
  • [38] Microscopic Dose Enhancement of Gold Nanoparticles in Water for Proton Therapy: A Simulation Study
    Newpower, M.
    Ahmad, S.
    Chen, Y.
    MEDICAL PHYSICS, 2015, 42 (06) : 3460 - 3460
  • [39] Monte Carlo Simulation of Dose Enhancement in Gold Nanoparticle Mediated Radiation Therapy
    Bashir, S.
    Koreshi, Z.
    MEDICAL PHYSICS, 2017, 44 (06) : 2982 - 2982
  • [40] Study of the Radiation Dose Enhancement at the Gold-Tissue Interface in Gold Nanoparticle-aided Radiation Therapy With Microdosimetry Technique
    Parsai, E.
    Paudel, N.
    Shvydka, D.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2012, 84 (03): : S871 - S871