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◆ Interventional Pain Medicine2026-05-19· Cadaveric spasm

Novel approach to sacroiliac joint pain: Preliminary cadaveric and in-silico analysis of safety and feasibility of X-ray-guided high-intensity focused ultrasound ablation

Eric Miller, Michael Gofeld, Brian Skoglind, Arik Hananel, Suzanne Leblang, Jean-Francois Aubry, Lynn Kohan

原始摘要(英文原文)· Original abstract
Background Current treatment modalities for chronic sacroiliac joint (SIJ) pain each have advantages and limitations. High-intensity focused ultrasound (HIFU) is a novel, non-invasive tool which produces highly localized thermal ablation using common imaging platforms such as magnetic resonance imaging (MRI), ultrasound, and fluoroscopy. Regulators have approved Fluoroscopy- or X-ray-guided HIFU (XRgHIFU) in the USA, EU, UK, and Canada. Objectives This study evaluates XRgHIFU's initial safety and feasibility as a non-invasive alternative to RFA for chronic SIJ pain. Methods In a cadaveric model, thermocouples were implanted in targets along the lateral sacral crest and 1 cm into the foramen. The targets were then sonicated and temperature was recorded. In an in-silico model, 10 adult computed tomography scans were simulated using a 3D, k-Wave -based acoustic and thermal simulation pipeline. Target and foraminal temperatures corresponding to the cadaveric model were recorded, and the resultant lesions were analyzed. Results The cadaveric and in-silico models showed agreement. Neither model indicated ablation of the intra-foraminal nerve root. The ratio of heating at target vs. foraminal test point was 15.7 ± 4.6 (N = 6) in the cadaveric model, whereas the ratio in the in-silico model was 17.3 ± 9.3 (N = 20). Contiguous strip lesions ≥15 mm in width were produced in the in-silico model. Conclusion This study supports the safety and feasibility of XRgHIFU for SIJ pain.
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Novel approach to sacroiliac joint pain: Preliminary cadaveric and in-silico analysis of safety and feasibility of X-ray-guided high-intensity focused ultrasound ablation — 科研速览 Science Skim