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1.
Sci Rep ; 6: 27250, 2016 06 06.
Article in English | MEDLINE | ID: mdl-27264273

ABSTRACT

Synchrotron-generated X-ray (SRX) microbeams deposit high radiation doses to submillimetric targets whilst minimizing irradiation of neighboring healthy tissue. We developed a new radiosurgical method which demonstrably transects cortical brain tissue without affecting adjacent regions. We made such image-guided SRX microtransections in the left somatosensory cortex in a rat model of generalized epilepsy using high radiation doses (820 Gy) in thin (200 µm) parallel slices of tissue. This procedure, targeting the brain volume from which seizures arose, altered the abnormal neuronal activities for at least 9 weeks, as evidenced by a decrease of seizure power and coherence between tissue slices in comparison to the contralateral cortex. The brain tissue located between transections stayed histologically normal, while the irradiated micro-slices remained devoid of myelin and neurons two months after irradiation. This pre-clinical proof of concept highlights the translational potential of non-invasive SRX transections for treating epilepsies that are not eligible for resective surgery.


Subject(s)
Radiosurgery/instrumentation , Seizures/radiotherapy , Somatosensory Cortex/radiation effects , Animals , Disease Models, Animal , Humans , Rats , Seizures/physiopathology , Somatosensory Cortex/physiopathology , Synchrotrons
2.
Phys Med ; 31(6): 607-14, 2015 Sep.
Article in English | MEDLINE | ID: mdl-25934524

ABSTRACT

Epilepsy is one of the most important neurological diseases. It concerns about 1% of the population worldwide. Despite the discovery of new molecules, one third of epileptic patients are resistant to anti-epileptic drugs and among them only a few can benefit from resective surgery. In this context, radiotherapy is an interesting alternative to the other treatments and several clinical devices exist (e.g., Gamma Knife(®)). The European Synchrotron Radiation Facility offers the possibility to develop new methods of radiosurgery and to study their antiepileptic effects. Here, we discuss several studies that we performed recently to test and try to understand the antiepileptic effects of X-ray synchrotron microbeams in different animal models of epilepsy. We showed a decrease of seizures after Interlaced Microbeam Radiotherapy (IntMRT) of the somatosensory cortex, known as the seizure generator, in a genetic model of absence epilepsy. These antiepileptic effects were stable over 4 months and with low tissular and functional side-effects. The irradiated pyramidal neurons still displayed their physiological activity but did not synchronize anymore. We also obtained a lasting suppression of seizures after IntMRT of the dorsal hippocampus in a mouse model of mesiotemporal lobe epilepsy. However, an important variability of antiepileptic efficiency was observed probably due to the small size of the targeted structure. Despite these encouraging proofs-of-concepts, there is now a need to adapt IntMRT to other models of epilepsy in rodents which are close to refractory forms of epilepsy in human patients and to implement this approach to non-human primates, before moving to clinical trials.


Subject(s)
Biological Clocks , Dose Fractionation, Radiation , Drug Resistant Epilepsy/physiopathology , Drug Resistant Epilepsy/surgery , Radiosurgery/instrumentation , Synchrotrons/instrumentation , Animals , Equipment Design , Feasibility Studies , Hippocampus/physiopathology , Hippocampus/radiation effects , Hippocampus/surgery , Humans , Mice , Mice, Inbred C57BL , Nerve Net/physiopathology , Nerve Net/surgery , Radiosurgery/methods , Radiotherapy, High-Energy/instrumentation , Radiotherapy, High-Energy/methods , Rats , Treatment Outcome
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