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1.
Sci Rep ; 14(1): 6119, 2024 03 13.
Artigo em Inglês | MEDLINE | ID: mdl-38480827

RESUMO

Non-invasive methods of detecting radiation exposure show promise to improve upon current approaches to biological dosimetry in ease, speed, and accuracy. Here we developed a pipeline that employs Fourier transform infrared (FTIR) spectroscopy in the mid-infrared spectrum to identify a signature of low dose ionizing radiation exposure in mouse ear pinnae over time. Mice exposed to 0.1 to 2 Gy total body irradiation were repeatedly measured by FTIR at the stratum corneum of the ear pinnae. We found significant discriminative power for all doses and time-points out to 90 days after exposure. Classification accuracy was maximized when testing 14 days after exposure (specificity > 0.9 with a sensitivity threshold of 0.9) and dropped by roughly 30% sensitivity at 90 days. Infrared frequencies point towards biological changes in DNA conformation, lipid oxidation and accumulation and shifts in protein secondary structure. Since only hundreds of samples were used to learn the highly discriminative signature, developing human-relevant diagnostic capabilities is likely feasible and this non-invasive procedure points toward rapid, non-invasive, and reagent-free biodosimetry applications at population scales.


Assuntos
Exposição à Radiação , Radiometria , Humanos , Camundongos , Animais , Espectroscopia de Infravermelho com Transformada de Fourier , Análise de Fourier , Radiometria/métodos , Proteínas , Radiação Ionizante , Exposição à Radiação/análise , Doses de Radiação
2.
Sci Rep ; 12(1): 1484, 2022 01 27.
Artigo em Inglês | MEDLINE | ID: mdl-35087083

RESUMO

Radiotherapy is the current standard of care for more than 50% of all cancer patients. Improvements in radiotherapy (RT) technology have increased tumor targeting and normal tissue sparing. Radiations at ultra-high dose rates required for FLASH-RT effects have sparked interest in potentially providing additional differential therapeutic benefits. We present a new experimental platform that is the first one to deliver petawatt laser-driven proton pulses of 2 MeV energy at 0.2 Hz repetition rate by means of a compact, tunable active plasma lens beamline to biological samples. Cell monolayers grown over a 10 mm diameter field were exposed to clinically relevant proton doses ranging from 7 to 35 Gy at ultra-high instantaneous dose rates of 107 Gy/s. Dose-dependent cell survival measurements of human normal and tumor cells exposed to LD protons showed significantly higher cell survival of normal-cells compared to tumor-cells for total doses of 7 Gy and higher, which was not observed to the same extent for X-ray reference irradiations at clinical dose rates. These findings provide preliminary evidence that compact LD proton sources enable a new and promising platform for investigating the physical, chemical and biological mechanisms underlying the FLASH effect.


Assuntos
Neoplasias/radioterapia , Terapia com Prótons/métodos , Radioterapia (Especialidade)/métodos , Radiobiologia/métodos , Linhagem Celular , Humanos , Lasers , Método de Monte Carlo , Radiobiologia/instrumentação , Radiometria/instrumentação , Radiometria/métodos , Dosagem Radioterapêutica , Síncrotrons
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