Particle therapy and nanomedicine: state of art and research perspectives

被引:66
作者
Lacombe, Sandrine [1 ]
Porcel, Erika [1 ]
Scifoni, Emanuele [2 ,3 ]
机构
[1] Univ Paris Sud, Univ Paris Saclay, Inst Sci Mol Orsay, CNRS,UMR 8214,Bat 351, F-91405 Orsay, France
[2] GSI Helmholtzzentrum Schwerionenforsch, Biophys Dept, D-64291 Darmstadt, Germany
[3] Univ Trento, Trento Inst Fundamental Phys & Applicat, TIFPA INFN, I-38121 Trento, Italy
关键词
Particle therapy; Proton therapy; Carbon therapy; Radiosensitization; Radio-enhancement; Radioresistance; Nanomedicine; Theranostic; Nanoparticles; PLATINUM-CONTAINING MOLECULES; CAPPED GOLD NANOPARTICLES; PROTON THERAPY; RADIATION ENHANCEMENT; DOSE ENHANCEMENT; ION IRRADIATION; CELLULAR UPTAKE; RADIOTHERAPY; RADIOSENSITIZATION; CARBON;
D O I
10.1186/s12645-017-0029-x
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Cancer radiation therapy with charged particle beams, called particle therapy, is a new therapeutic treatment presenting major advantages when compared to conventional radiotherapy. Because ions have specific ballistic properties and a higher biological effectiveness, they are superior to x-rays. Numerous medical centres are starting in the world using mostly protons but also carbon ions as medical beams. Several investigations are attempting to reduce the cost/benefit ratio and enlarge the range of therapeutic indications. A major limitation of particle therapy is the presence of low but significant damage induced in healthy tissues located at the entrance of the ion track prior to reaching the tumour. It is thus a major challenge to improve the targeting of the tumours, concentrating radiation effects in the malignance. A novel strategy, based on the addition of nanoparticles targeting the tumour, was suggested over a decade ago to improve the performance of conventional photon therapy. Recently, similar developments have emerged for particle therapy and the amount of research is now exploding. In this paper, we review the experimental results, as well as theoretical and simulation studies that shed light in the promising outcomes of this strategy and in the underpinning mechanisms. Several experiments provide consistent evidence of significant enhancement of ion radiation effects in the presence of nanoparticles. In view of implementing this strategy for cancer treatment, simulation studies have begun to establish the rationale and the specificity of this effect. In addition, these studies will help to outline a list of possible mechanisms and to predict the impact of ion beams and nanoparticle characteristics. Many questions remain unsolved, but the findings of these first studies are encouraging and open new challenges. After summarizing the main results in the field, we propose a roadmap to pursue future research with the aim to strengthen the potential interplay between particle therapy and nanomedicine.
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页数:17
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共 70 条
[1]   Investigation into the effects of high-Z nano materials in proton therapy [J].
Ahmad, R. ;
Royle, G. ;
Lourenco, A. ;
Schwarz, M. ;
Fracchiolla, F. ;
Ricketts, K. .
PHYSICS IN MEDICINE AND BIOLOGY, 2016, 61 (12) :4537-4550
[2]   EFFECTIVENESS AND SAFETY OF SPOT SCANNING PROTON RADIATION THERAPY FOR CHORDOMAS AND CHONDROSARCOMAS OF THE SKULL BASE: FIRST LONG-TERM REPORT [J].
Ares, Carmen ;
Hug, Eugen B. ;
Lomax, Antony J. ;
Bolsi, Alessandra ;
Timmermann, Beate ;
Rutz, Hans Peter ;
Schuller, Jan C. ;
Pedroni, Eros ;
Goitein, Gudrun .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2009, 75 (04) :1111-1118
[3]   Long-Term Effects of Radiation Exposure among Adult Survivors of Childhood Cancer: Results from the Childhood Cancer Survivor Study [J].
Armstrong, Gregory T. ;
Stovall, Marilyn ;
Robison, Leslie L. .
RADIATION RESEARCH, 2010, 174 (06) :840-850
[4]   Radiation oncology in the era of precision medicine [J].
Baumann, Michael ;
Krause, Mechthild ;
Overgaard, Jens ;
Debus, Juergen ;
Bentzen, Soren M. ;
Daartz, Juliane ;
Richter, Christian ;
Zips, Daniel ;
Bortfeld, Thomas .
NATURE REVIEWS CANCER, 2016, 16 (04) :234-249
[5]  
Bolsa Ferruz M, 2017, NANOSCALE INSIGHTS I, DOI [10.1007/978-3-319-43030-0_12, DOI 10.1007/978-3-319-43030-0_12]
[6]   A local effect model-based interpolation framework for experimental nanoparticle radiosensitisation data [J].
Brown, Jeremy M. C. ;
Currell, Fred J. .
CANCER NANOTECHNOLOGY, 2017, 8 (01)
[7]   Quantitative investigation of physical factors contributing to gold nanoparticle-mediated proton dose enhancement [J].
Cho, Jongmin ;
Gonzalez-Lepera, Carlos ;
Manohar, Nivedh ;
Kerr, Matthew ;
Krishnan, Sunil ;
Cho, Sang Hyun .
PHYSICS IN MEDICINE AND BIOLOGY, 2016, 61 (06) :2562-2581
[8]   Gold nanoparticles, radiations and the immune system: Current insights into the physical mechanisms and the biological interactions of this new alliance towards cancer therapy [J].
Dimitriou, Nikolaos M. ;
Tsekenis, George ;
Balanikas, Evangelos C. ;
Pavlopoulou, Athanasia ;
Mitsiogianni, Melina ;
Mantso, Theodora ;
Pashos, George ;
Boudouvis, Andreas G. ;
Lykakis, Ioannis N. ;
Tsigaridas, Georgios ;
Panayiotidis, Mihalis I. ;
Yannopapas, Vassilios ;
Georgakilas, Alexandros G. .
PHARMACOLOGY & THERAPEUTICS, 2017, 178 :1-17
[9]   Comment on 'Therapeutic application of metallic nanoparticles combined with particle-induced x-ray emission effect' [J].
Dollinger, Guenther .
NANOTECHNOLOGY, 2011, 22 (24)
[10]   Charged-particle therapy in cancer: clinical uses and future perspectives [J].
Durante, Marco ;
Orecchia, Roberto ;
Loeffler, Jay S. .
NATURE REVIEWS CLINICAL ONCOLOGY, 2017, 14 (08) :483-495