An ultrasonography-based approach for tissue modelling to inform photo-therapy treatment strategies

Akhil Kallepalli*, James Halls, David B. James, Mark A. Richardson

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

5 Citations (Scopus)
13 Downloads (Pure)

Abstract

Currently, diagnostic medicine uses a multitude of tools ranging from ionising radiation to histology analysis. With advances in piezoelectric crystal technology, high-frequency ultrasound imaging has developed to achieve comparatively high resolution without the drawbacks of ionising radiation. This research proposes a low-cost, non-invasive and real-time protocol for informing photo-therapy procedures using ultrasound imaging. We combine currently available ultrasound procedures with Monte Carlo methods for assessing light transport and photo-energy deposition in the tissue. The measurements from high-resolution ultrasound scans are used as input for optical simulations. Consequently, this provides a pipeline that will inform medical practitioners for better therapy strategy planning. While validating known inferences of light transport through biological tissue, our results highlight the range of information such as temporal monitoring and energy deposition at varying depths. This process also retains the flexibility of testing various wavelengths for individual-specific geometries and anatomy.

Original languageEnglish
Article numbere202100275
JournalJournal of Biophotonics
Volume15
Issue number4
Early online date19 Jan 2022
DOIs
Publication statusPublished - Apr 2022

Keywords

  • diagnostics
  • Monte Carlo
  • optical interactions
  • photo-modulation
  • ray tracing
  • ultrasound imaging

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