Publications by authors named "A Petusseau"

Purpose: This study aimed to assess the impact of tissue oxygen levels on transient oxygen consumption induced by ultra-high dose rate (UHDR) electron radiation in murine flank and to examine the effect of dose rate variations on this relationship.

Methods And Materials: Real-time oximetry using the phosphorescence quenching method and Oxyphor PdG4 molecular probe was employed. Continuous measurements were taken during radiation delivery on a UHDR-capable Mobetron linear accelerator.

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Tissue oxygenation is well understood to impact radiosensitivity, with reports demonstrating a significant effect of breathing condition and anesthesia type on tissue oxygenation levels and radiobiological response. However, the temporal kinetics of intracellular and extracellular oxygenation have never been quantified, on the timescale that may affect radiotherapy studies. C57BL/6 mice were anesthetized using isoflurane at various percentages or ketamine/xylazine (ket/xyl: 100/10 mg/kg) (N = 48).

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Article Synopsis
  • - Fluorescence guidance in surgery improves the visibility of blood flow and tissue oxygen levels using a technique called Pressure-enhanced sensing of tissue oxygenation (PRESTO), which utilizes the FDA-approved compound 5-aminolevulinic acid (ALA).
  • - ALA is metabolized into protoporphyrin IX (PpIX), producing both immediate and delayed fluorescence signals that signify tissue oxygen shortage, with the delayed signal becoming more pronounced under low oxygen conditions.
  • - The study found that applying pressure during palpation creates a temporary reduction in blood flow, enhancing PRESTO contrast, particularly in tumor tissues, which highlights a new method for real-time imaging of tissue responses related to chronic hypoxia, useful in
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Purpose: Ultra High Dose-Rate (UHDR) radiation has been reported to spare normal tissue, compared with Conventional Dose-Rate (CDR) radiation. However, important work remains to be done to improve the reproducibility of the FLASH effect. A better understanding of the biologic factors that modulate the FLASH effect may shed light on the mechanism of FLASH sparing.

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Purpose: Large, rapid extracellular oxygen transients (ΔpO) have been measured in vivo during ultra-high dose rate radiation therapy; however, it has been unclear if they match intracellular oxygen levels. Here, the endogenously produced protoporphyrin IX (PpIX) delayed fluorescence signal was measured as an intracellular in-vivo oxygen sensor to quantify these transients, with direct comparison to extracellular pO. Intracellular ΔpO is closer to the cellular DNA, the site of major radiobiological damage, and therefore should help elucidate radiochemical mechanisms of the FLASH effect and potentially be translated to human tissue measurement.

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