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Tafzi, A.

Publications and source records attributed to Tafzi, A..

2 recordsLinked to original sources

Laser-driven VHEE pulsed fast fractionation (PFF): second-scale inter-pulse timing differentially modulates normal tissue and tumour toxicity

Radiotherapy (RT) is constrained by the narrow therapeutic window between tumour control and normal-tissue toxicity. While FLASH RT has been reported to reduce normal-tissue toxicity at ultra-high dose rates (UHDR) while preserving tumour control in several preclinical models, the radiobiological potential of intermediate temporal regimes between conventional fractionation and FLASH remains largely unexplored. Here, we show that temporal separation of ultrashort (fs-ps) dose-delivery pulses delivered at ultra-high instantaneous dose rate, with second-scale inter-pulse intervals, can differentially modulate biological response in vitro and in vivo. Samples were irradiated with very high-energy electrons (VHEEs, 50 MeV to 300 MeV) generated by a laser-plasma accelerator (LPA), using a temporal irradiation modality we term pulsed fast fractionation (PFF), with instantaneous dose rates exceeding 10^12 Gy/s. Varying the inter-pulse interval from 1 s to 10 s while maintaining dose per pulse and total dose constant modulated biological response in both in vitro and in vivo models. At the shortest investigated inter-pulse interval ({theta} = 1s), MRC5-hTERT human fibroblasts showed higher viability, whereas HCT116 colorectal carcinoma cells showed lower viability under matched dose conditions. In vivo, the same interval was associated with reduced radiation-induced growth impairment in zebrafish embryos, consistent with the response pattern observed in the non-tumour cell model and extending this timing-dependent response to a whole-organism context. These findings identify second-scale pulse timing as a biologically active degree of freedom for VHEE delivery, positioning PFF as a distinct temporal irradiation regime with the potential to complement spatial dose modulation through temporal optimisation and extend the current fractionation-FLASH framework.

cell biology↗

Comparative analysis of the radiobiological effects of laser-driven VHEE vs. conventional electrons using in vitro, ex vivo, and in vivo models

PurposeThis study systematically investigates the radiobiological effects of Very High Energy Electrons (VHEE) generated by a laser-plasma accelerator (LPA), in comparison with Conventional Intermediate Energy Electrons (CIEE) from a conventional linear accelerator (LINAC). Using in vitro, ex vivo, and in vivo models, we evaluate and compare their potential toxicity on healthy tissues. Methods and MaterialsCell survival, tissue response, and developmental toxicity were assessed across three biological models. In vitro, human fibroblasts (MRC5-hTERT) were used to generate post-irradiation survival curves. Ex vivo, precision-cut lung slices (PCLS) from mice were analyzed for radiation-induced inhibition of cell proliferation. In vivo, zebrafish embryos were used to evaluate developmental toxicity through body length and spinal curvature measurements. VHEE irradiations were performed using a broadband electron beam spanning 50-300 MeV, using the Salle Jaune LPA (Laboratoire dOptique Appliquee, France), while CIEE exposures were performed with a 7 MeV conventional LINAC (Institut Curie, France). ResultsIn vitro, MRC5-hTERT cells showed no significant difference in radiosensitivity between VHEE and CIEE, with comparable D10 values (p-value = 0.7). In the ex vivo model, both beams induced a dose-dependent decrease in cell division with no significant inter-beam differences at any dose level (p-value > 0.99). In vivo, zebrafish embryos exhibited dose-dependent body shortening and increased spinal curvature following both VHEE and CIEE exposure. No significant differences were observed between the two modalities at matched doses for any measured metric (p-value[≥] 0.5). ConclusionThis study presents the first comprehensive radiobiological evaluation of a laser-driven VHEE beam across multiple biological models. Under the investigated conditions, VHEE and CIEE irradiations exhibit similar biological toxicity. These findings support the feasibility and potential of VHEE generated with LPA for future clinical applications.

cell biology↗