4.6 Article

High-speed dynamic 3D photoacoustic imaging of sentinel lymph node in a murine model using an ultrasound array

期刊

MEDICAL PHYSICS
卷 36, 期 8, 页码 3724-3729

出版社

AMER ASSOC PHYSICISTS MEDICINE AMER INST PHYSICS
DOI: 10.1118/1.3168598

关键词

biological fluid dynamics; biomedical optical imaging; biomedical ultrasonics; dyes; high-speed optical techniques; image resolution; image sequences; laser applications in medicine; medical image processing; needles; optical fibres; photoacoustic effect

资金

  1. National Institutes of Health [U54 CA136398, R01 EB000712, R01 NS46214, R01 EB008085]

向作者/读者索取更多资源

Noninvasive photoacoustic sentinel lymph node (SLN) mapping with high spatial resolution has the potential to improve the false negative rate and eliminate the use of radioactive tracers in SLN identification. In addition, the demonstrated high spatial resolution may enable physicians to replace SLN biopsy with fine needle aspiration biopsy, and thus reduce the risk of associated morbidity. The primary goal of this study is to demonstrate the feasibility of high-speed 3D photoacoustic imaging of the uptake and clearance dynamics of Evans blue dye in SLNs. The photoacoustic imaging system was developed with a 30 MHz ultrasound array and a kHz repetition rate laser system. It acquires one 3D photoacoustic image of 166 B-scan frames in 1 s, with axial, lateral, and elevational resolutions of 25, 70, and 200 mu m, respectively. With optic-fiber based light delivery, the entire system is compact and is convenient to use. Upon injection of Evans blue, a blue dye currently used in clinical SLN biopsy, SLNs in mice and rats were accurately and noninvasively mapped in vivo using our imaging system. In our experiments, the SLNs were found to be located at similar to 0.65 mm below the skin surface in mice and similar to 1.2 mm in rats. In some cases, lymph vessels and lymphatic valves were also imaged. The dye dynamics-accumulation and clearance-in SLNs were quantitatively monitored by sequential 3D imaging with temporal resolution of as high as similar to 6 s. The demonstrated capability suggests that high-speed 3D photoacoustic imaging should facilitate the understanding of the dynamics of various dyes in SLNs and potentially help identify SLNs with high accuracy.

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