The PRISME team is composed of physicists, biochemists, biologists and radiotherapists. We specialize in multidisciplinary research aimed at developing, optimizing and controlling innovative radiotherapies, whether it be hadrontherapy or therapies using radioactive ion-emitting elements or nanoparticles. These radiotherapies aim to improve the treatment of certain cancers by increasing the effect of ionizing radiation in the tumor while minimizing its harmful effects on healthy tissues.
Our multidisciplinary approach aims to quantify, understand and predict the effect of ionizing radiation on living organisms from processes induced at extremely short times (attosecond) at small scales (atomic nucleus) to long-term consequences (years) at the patient level.
We therefore design and carry out irradiation experiments on targets ranging from molecules or cells to small animals and patient samples (tumor, blood). These experiments feed an important part of our activity which consists in modeling the effects of radiation on living organisms.
One of the innovative techniques of radiotherapy is hadrontherapy, which is to send
an ion beam on the tumors to destroy them. We are working, in particular using simulations, data processing and predictions, to improve these systems by having on-line control over irradiation using dedicated detectors. These tools also have applications in imaging.
The activities can be divided into three research areas:
Axis 1 aims to develop simulations and detectors to control patient irradiation by detecting the particles emitted during hadrontherapy treatment. These developments also offer application prospects in the field of diagnostic imaging.
Axis 2 focuses on the development of multi-scale models and simulations to describe and predict the physical, chemical and biological processes induced by irradiation. It also develops irradiation and dosimetric control means for the measurement of radiobiological effects.
Axis 3 quantifies by experiment the effects induced by irradiation with molecular, cellular, multicellular, in-vitro or in-vivo systems. It focuses on the specificities of innovative radiotherapies and the personalization of care.
NON-PERMANENTS:
- DOCTORANTS / DOCTORAL STUDENTS:
- CHERCHEURS NON-PERMANENTS / NON-PERMANENT RESEARCHERS:
- D. Dauvergne. Review of ENVISION. workshop ENLIGHT, Jul 2013, Wiener-Neustadt, Germany. ⟨hal-00990862⟩
- Jean-Luc Ley, J. P. Cachemiche, M. Dahoumane, Denis Dauvergne, Nicolas Freud, et al.. DEVELOPMENT OF COMPTON CAMERA PROTOTYPE FOR HADRONTHERAPY MONITORING AND MEDICAL IMAGING. First International Summer School on Intelligent Front-End Signal Processing for Frontier Exploitation in Research and Industry, Jul 2013, Oxford, United Kingdom. ⟨hal-01922290⟩
- C. Cheshkov. Overview of ALICE p-Pb results Dimuons de basse masse dans ALICE. International School on Quark-Gluon Plasma and Heavy Ion Collisions: past present and future, Jul 2013, Siena, Italy. ⟨in2p3-01018953⟩
- K. Bennaceur. Skyrme EDF for beyond mean-field calculations. Nuclear Structure and Astrophysical Applications, Jul 2013, Trento, Italy. ⟨in2p3-00978622⟩
- Ahmad Tarhini. New physics, Dark matter and cosmology in the light of Large Hadron Collider. Nuclear Theory [nucl-th]. Université Claude Bernard - Lyon I, 2013. English. ⟨NNT : 2013LYO10108⟩. ⟨tel-01177095⟩
- E. Armengaud, C. Augier, Alain Benoit, A. Benoît, L. Bergé, et al.. Background studies for the EDELWEISS dark matter experiment. Astroparticle Physics, 2013, 47, pp.1-9. ⟨10.1016/J.ASTROPARTPHYS.2013.05.004⟩. ⟨in2p3-00853054⟩
- B. Marchand, N. Moncoffre, Y. Pipon, N. Bérerd, C. Garnier, et al.. Comparision of Xe migration in UO2 during thermal annealing and under irradiation. 17Th International Conference on Radiation Effects in Insulators, Jun 2013, Helsinki, Finland. ⟨in2p3-00994922⟩
- M. Gherrab, N. Millard-Pinard, S. Gavarini, V. Garnier. Elaboration et caracterisation de carbures de titane nano et microstructures. Journée scientifique de l'ARC Energies Rhônes-Alpes ARC ENERGIE, Jun 2013, Lyon, France. ⟨in2p3-00981342⟩
- D. Autiero. LAGUNA-LBNO and large-scale prototyping effort at CERN: LBNO-Proto. Conseil scientifique IN2P3, Jun 2013, Paris, France. ⟨in2p3-01019582⟩
- Yannick Copin. Spectro-photométrie à champ intégral dans le cadre du projet " The Nearby Supernova Factory ". Cosmologie et astrophysique extra-galactique [astro-ph.CO]. Université Claude Bernard - Lyon I, 2013. ⟨tel-00855585⟩