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Nilendu Gupta

Publications and source records attributed to Nilendu Gupta.

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The FLASH enigma

We consider physics behind the FLASH modality of cancer radiation treatment where extremely short treatment times are achieved with ultra high dose rates maintaining the conventional antitumor effectiveness and yet substantially reducing damage to normal tissues (sparing effect). The difference in responses between normal and tumor tissues is attributed here to different recombination rates related to their structure morphologies: ordered in normal vs disordered in the tumor tissues. Correspondingly different are their charge densities under ionizing radiation. In normal tissues it is high enough to form electron-hole liquid (EHL). Because of low EHL diffusivities, the chemical reaction and generation of free radicals are suppressed; hence, sparing effect. To the contrary, a disordered tumor tissue renders efficient energy relaxation channels forming antitumor free radicals. We describe the FLASH thresholds for doses and dose rates.

physics.med-ph

Pulse Parameter Optimization Method for Ultra High Dose Rate Electron Treatment

Purpose: Commercial UHDR platforms deliver Ultra-High Dose Rate (UHDR) doses at discrete combinations of pulse parameters including pulse width (PW), pulse repetition frequency (PRF) and number of pulses (N), which dictate unique combinations of dose and dose rates. Currently, obtaining pulse parameters for the desired dose and dose rate is a cumbersome manual process involving creating, updating, and looking up values in large spreadsheets for every treatment configuration. The purpose of this work is to present a pulse parameter optimizer application to match intended dose and dose rate precisely and efficiently. Methods: Dose and dose rate calculation have been described for a commercial electron FLASH platform. A constrained optimization for the dose and dose rate cost function was modelled as a mixed integer problem in MATLAB (The MathWorks Inc., Version9.13.0 R2022b, Natick, Massachusetts). The beam and machine data required for the application were acquired using GafChromic film and Alternating Current Current Transformers (ACCTs). Variables for optimization included dose per pulse (DPP) for every collimator at a specific treatment configuration, PW and PRF measured using ACCT, and airgap factors. Results: Using PW, PRF, N and airgap factors as the parameters, the application was created to optimize for dose and dose rate. Largely automating dose and dose rate calculation reduces safety concerns associated with manual look up and calculation of these parameters, especially when many subjects at different doses and dose rates are to be safely managed. Conclusion: A pulse parameter optimization application was built in MATLAB for a commercial electron UHDR platform to increase efficiency in the dose, dose rate, and pulse parameter prescription process.

physics.med-ph