Visualization of Renal Glomeruli in Human Native Kidneys With Sensing Ultrasound Localization Microscopy

超声波 人肾 肾功能 医学 体内 病理 肾脏疾病 显微镜 生物 放射科 内科学 生物技术
作者
Sylvain Bodard,Louise Denis,Georges Chabouh,Jacques Battaglia,Dany Anglicheau,O. Hélénon,Jean-Michel Corréas,Olivier Couture
出处
期刊:Investigative Radiology [Ovid Technologies (Wolters Kluwer)]
标识
DOI:10.1097/rli.0000000000001061
摘要

Objectives Kidney diseases significantly impact individuals' quality of life and strongly reduce life expectancy. Glomeruli play a crucial role in kidney function. Current imaging techniques cannot visualize them due to their small size. Sensing ultrasound localization microscopy (sULM) has shown promising results for visualizing in vivo the glomeruli of human kidney grafts. This study aimed to evaluate the ability of sULM to visualize glomeruli in vivo in native human kidneys despite their depth and a shorter duration of ultrasound acquisition limited by the period of the patient's apnea. Sensing ultrasound localization microscopy parameters in native kidneys and kidney grafts and their consequence regarding glomeruli detection were also compared. Materials and Methods Exploration by sULM was conducted in 15 patients with native kidneys and 5 with kidney allografts. Glomeruli were counted using a normalized distance metric projected onto sULM density maps. The difference in the acquisition time, the kidney depth, and the frame rate between native kidneys and kidney grafts and their consequence regarding glomeruli detection were assessed. Results Glomerular visualization was achieved in 12 of 15 patients with native kidneys. It failed due to impossible breath-holding for 2 patients and a too-deep kidney for 1 patient. Sensing ultrasound localization microscopy found 16 glomeruli per square centimeter in the native kidneys (6–31) and 33 glomeruli per square centimeter in kidney transplant patients (18–55). Conclusions This study demonstrated that sULM can visualize glomeruli in native human kidneys in vivo. The proposed method may have many hypothetical applications, including biomarker development, assisting biopsy, or potentially avoiding it. It establishes a framework for improving the detection of local microstructural pathology, influencing the evaluation of allografts, and facilitating disease monitoring in the native kidney.
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