Self-Fluence-Compensated Functional Photoacoustic Microscopy.

Zhu, Jingyi; Liu, Chao; Liu, Yan; Chen, Jiangbo; Zhang, Yachao; Yao, Kuanming; Wang, Lidai · IEEE Trans Med Imaging · 2021

basic_science · Level V

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Abstract

Optical-resolution photoacoustic microscopy (OR-PAM) can image blood oxygen saturation (sO<sub>2</sub>) in vivo with high resolution and excellent sensitivity and offers a great tool for neurovascular study and early cancer diagnosis. OR-PAM ignores the wavelength-dependent optical attenuation in superficial tissue, which cause errors in sO<sub>2</sub> imaging. Monte Carlo simulation shows that variations in imaging depth, vessel diameter, and focal position can cause up to  ∼ 60 % decrease in sO<sub>2</sub> imaging. Here, we develop a self-fluence-compensated OR-PAM to compensate for the wavelength-dependent fluence attenuation. We propose a linearized model to estimate the fluence attenuations and use three optical wavelengths to compensate for them in sO<sub>2</sub> calculation. We validate the model in both numerical and physical phantoms and show that the compensation method can effectively reduce the sO<sub>2</sub> errors. In functional brain imaging, we demonstrate that the compensation method can effectively improve sO<sub>2</sub> accuracy, especially in small vessels. Compared with uncompensated ones, the sO<sub>2</sub> values are improved by 10~30% in the brain. We monitor ischemic-stroke-induced brain injury which demonstrates great potential for the pre-clinical study of vascular diseases.

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