ABSTRACT
Significance: To effectively study preclinical animal models, medical imaging technology must be developed with a high enough resolution and sensitivity to perform anatomical, functional, and molecular assessments. Photoacoustic (PA) tomography provides high resolution and specificity, and fluorescence (FL) molecular tomography provides high sensitivity; the combination of these imaging modes will enable a wide range of research applications to be studied in small animals. Aim: We introduce and characterize a dual-modality PA and FL imaging platform using in vivo and phantom experiments. Approach: The imaging platform's detection limits were characterized through phantom studies that determined the PA spatial resolution, PA sensitivity, optical spatial resolution, and FL sensitivity. Results: The system characterization yielded a PA spatial resolution of 173 ± 17 µ m in the transverse plane and 640 ± 120 µ m in the longitudinal axis, a PA sensitivity detection limit not less than that of a sample with absorption coefficient µ a = 0.258 cm - 1 , an optical spatial resolution of 70 µ m in the vertical axis and 112 µ m in the horizontal axis, and a FL sensitivity detection limit not < 0.9 µ M concentration of IR-800. The scanned animals displayed in three-dimensional renders showed high-resolution anatomical detail of organs. Conclusions: The combined PA and FL imaging system has been characterized and has demonstrated its ability to image mice in vivo, proving its suitability for biomedical imaging research applications.
Subject(s)
Optical Imaging , Photoacoustic Techniques , Animals , Mice , Optical Imaging/methods , Tomography, X-Ray Computed , Tomography , Spectrum Analysis , Phantoms, Imaging , Photoacoustic Techniques/methodsABSTRACT
The optoacoustic technique is noninvasive, has high spatial resolution, and potentially can be used to measure the total hemoglobin concentration ([THb]) continuously and accurately. We performed in vitro measurements in blood and in vivo tests in healthy volunteers. Our clinical protocol included rapid infusion of intravenous saline to simulate rapid change in the [THb] during fluid therapy or surgery. Optoacoustic measurements were made from the wrist area overlying the radial artery for more than 1 h. The amplitude of the optoacoustic signal generated in the radial artery closely followed the [THb] measured directly in concurrently collected blood samples.