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February 23, 2026Journal of Biomedical Optics1 citationsOpen Access

Robot-assisted minimally invasive photoacoustic imaging for monitoring liver ablation using diffusing fiber illumination

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SGShang GaoXMXihan MaYHYanbo Hua

Key Points

  • The aim is to improve intraoperative monitoring of liver radiofrequency ablation through enhanced imaging techniques.
  • Utilized a robot-assisted photoacoustic imaging system with diffusing optical fiber.
  • Incorporated circumferential wide-field illumination for tissue coverage.
  • Employed automated 3D scanning and co-registered ultrasound.
  • Differentiated necrotic from viable tissue using spectroscopic photoacoustic imaging.
  • Implemented a standard Hough transform algorithm to minimize fiber-induced artifacts.
  • 3D lesion mapping revealed necrotic zones measuring 7.55×5.37×7.42 mm.
  • Measurements closely matched gross pathology findings, with an average diameter of 7.93 mm.
  • Confirmed accuracy of the imaging system in monitoring liver ablation.

Abstract

SignificanceAccurate intraoperative assessment of ablation completeness in liver radiofrequency ablation (RFA) remains a clinical challenge, as conventional imaging lacks real-time capability to delineate necrotic boundaries. Incomplete ablation increases recurrence risk, underscoring the need for real-time, high-resolution imaging with functional tissue differentiation.AimWe propose a robot-assisted photoacoustic (PA) imaging system employing a customized diffusing optical fiber to improve intraoperative monitoring of liver RFA.ApproachThe system integrates circumferential wide-field illumination for enhanced tissue coverage with robotic automated 3D scanning and co-registered ultrasound. Spectroscopic PA imaging differentiates necrotic from viable tissue based on optical absorption, whereas a standard Hough transform algorithm suppresses fiber-induced artifacts. Validation was performed using ex vivo and cadaveric swine liver studies.ResultsIn cadaveric studies, 3D lesion mapping showed necrotic zones of 7.55×5.37×7.42 mm, closely matching gross pathology measurements (7.93 mm average diameter), confirming system accuracy.ConclusionsThe proposed system enables accurate, real-time visualization of ablation lesions in situ, offering a clinically viable approach to improve treatment precision and reduce recurrence in liver RFA procedures.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/699bee1c1c6c6bad5397fd12https://doi.org/10.1117/1.jbo.31.12.123302
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