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Vivek Maradia

Publications and source records attributed to Vivek Maradia.

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Physics-driven innovations toward the democratization of proton therapy

Proton therapy exploits the finite range of charged particles in tissue to achieve dose distributions no photon based modality can replicate. Yet the modality reaches fewer than 1 percent of patients who might benefit a gap rooted in cost and complexity rather than clinical evidence. This Review reframes proton therapy adoption as a physics problem. Two fundamental bottlenecks are identified: cost, arising from scaling laws governing accelerator design, beam transport, and radiation shielding; and motion, arising from the spatiotemporal mismatch between sequential pencil beam scanning and respiratory tumour displacement. We trace how successive compact architectures from gantry-integrated energy selection to gantry mounted accelerators and upright fixed beam systems have progressively reduced facility scale toward LINAC like simplicity and cost-effectiveness. An economic physics framework incorporating fixed and variable operating costs demonstrates that delivery speed has greater leverage on cost per patient than capital cost reduction alone. Field delivery times of approximately 10 seconds now demonstrated across fundamentally different architectures simultaneously suppress the interplay effect and enable the patient throughput required for financial viability. The same physics that resolves the motion problem drives the economic case for broad adoption. Emerging directions, including proton arc therapy, FLASH irradiation, and adaptive delivery define the path toward global democratization of the modality.

physics.med-ph

High-speed proton therapy within a short breath-hold

Proton therapy provides superior dose conformity compared with photon radiotherapy, concentrating radiation within the tumor while sparing adjacent healthy tissue. This advantage has been most effectively realized for static tumors in anatomically stable regions, such as the head and neck. For thoracic and abdominal sites, however, physiological motion remains a critical challenge: because the proton dose distribution is highly sensitive to density variations, long delivery times relative to respiratory motion can compromise accuracy. Existing strategies to accelerate delivery often require substantial hardware modifications or are difficult to translate into routine practice. Here we report an optimization that enables high-speed proton delivery (5 to 10 sec per field) on a commercial synchrocyclotron platform without hardware changes. The method combines high-energy shoot-through beams with Bragg-peak delivery, an optimized nearest-neighbor scanning sequence, and a two-pulse dose regulation scheme. Applied to eight lung cancer cases (target volumes 100 to 1000 cc), the approach achieved full field delivery in under 10 sec compatible with a short breath hold while preserving conformity, dose accuracy, and sparing of organs at risk. This framework provides a practical route to motion robust proton therapy, improving precision, efficiency and patient tolerance. More broadly, it opens a pathway toward widespread clinical adoption of high-speed proton delivery for moving tumors.

physics.med-ph

Universal and dynamic ridge filter for pencil beam scanning particle therapy: novel concept for ultra-fast treatment delivery

Purpose In PBS particle therapy, short treatment delivery time is paramount for the efficient treatment of moving targets with motion mitigation techniques (such as breath-hold, rescanning, and gating). Energy and spot position change time are limiting factors in reducing treatment time. In this study, we designed a universal and dynamic energy modulator (ridge filter, RF) to broaden the Bragg peak, to reduce the number of energies and spots required to cover the target volume, thus lowering the treatment time. Methods Our RF unit comprises two identical RFs placed just before the isocenter. Both RFs move relative to each other, changing the Bragg peaks characteristics dynamically. We simulated different Bragg peak shapes with the RF in TOPAS and validated them experimentally. We then delivered single-field plans with 1Gy/fraction to different geometrical targets in water, to measure the dose delivery time using the RF and compare it with the clinical settings. Results Aligning the RFs in different positions produces different broadening in the Bragg peak; we achieved a maximum broadening of 2 cm. With RF we reduced the number of energies in a field by more than 60%, and the dose delivery time by 50%, for all geometrical targets investigated, without compromising the dose distribution transverse and distal fall-off. Conclusions Our novel universal and dynamic RF allows for the adaptation of the Bragg peak broadening for a spot and/or energy layer based on the requirement of dose shaping in the target volume. It significantly reduces the number of energy layers and spots to cover the target volume, and thus the treatment time. This RF design is ideal for ultra-fast treatment delivery within a single breath-hold (5-10 sec), efficient delivery of motion mitigation techniques, and small animal irradiation with ultra-high dose rates (FLASH).

physics.med-ph