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Published December 2021 | public
Journal Article

Self-Fluence-Compensated Functional Photoacoustic Microscopy

Abstract

Optical-resolution photoacoustic microscopy (OR-PAM) can image blood oxygen saturation (sO₂) 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 sO₂ imaging. Monte Carlo simulation shows that variations in imaging depth, vessel diameter, and focal position can cause up to ∼60 % decrease in sO₂ 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 sO₂ calculation. We validate the model in both numerical and physical phantoms and show that the compensation method can effectively reduce the sO₂ errors. In functional brain imaging, we demonstrate that the compensation method can effectively improve sO₂ accuracy, especially in small vessels. Compared with uncompensated ones, the sO₂ 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.

Additional Information

© 2021 IEEE. Manuscript received May 24, 2021; revised July 18, 2021; accepted July 19, 2021. Date of publication July 26, 2021; date of current version November 30, 2021. This work was supported in part by the Research Grants Council of the Hong Kong Special Administrative Region under Grant 11103320, Grant 11215817, and Grant 11101618; and in part by the National Natural Science Foundation of China (NSFC) under Grant 81627805 and Grant 61805102.

Additional details

Created:
August 22, 2023
Modified:
October 23, 2023