Multiparametric Brain Hemodynamics Imaging Using a Combined Ultrafast Ultrasound and Photoacoustic System

Author:

Chen Haoyang12ORCID,Mirg Shubham12,Gaddale Prameth1ORCID,Agrawal Sumit1,Li Menghan1,Nguyen Van1,Xu Tianbao1,Li Qiong1,Liu Jinyun1,Tu Wenyu1,Liu Xiao13ORCID,Drew Patrick J.12456ORCID,Zhang Nanyin12ORCID,Gluckman Bruce J.1246ORCID,Kothapalli Sri‐Rajasekhar1278ORCID

Affiliation:

1. Department of Biomedical Engineering The Pennsylvania State University University Park PA 16802 USA

2. Center for Neural Engineering The Pennsylvania State University University Park PA 16802 USA

3. Institute for Computational and Data Sciences The Pennsylvania State University University Park PA 16802 USA

4. Department of Engineering Science and Mechanics The Pennsylvania State University University Park PA 16802 USA

5. Department of Biology The Pennsylvania State University University Park PA 16802 USA

6. Department of Neurosurgery The Pennsylvania State University University Park PA 16802 USA

7. Penn State Cancer Institute The Pennsylvania State University Hershey PA 17033 USA

8. Graduate Program in Acoustics The Pennsylvania State University University Park PA 16802 USA

Abstract

AbstractStudying brain‐wide hemodynamic responses to different stimuli at high spatiotemporal resolutions can help gain new insights into the mechanisms of neuro‐ diseases and ‐disorders. Nonetheless, this task is challenging, primarily due to the complexity of neurovascular coupling, which encompasses interdependent hemodynamic parameters including cerebral blood volume (CBV), cerebral blood flow (CBF), and cerebral oxygen saturation (SO2). The current brain imaging technologies exhibit inherent limitations in resolution, sensitivity, and imaging depth, restricting their capacity to comprehensively capture the intricacies of cerebral functions. To address this, a multimodal functional ultrasound and photoacoustic (fUSPA) imaging platform is reported, which integrates ultrafast ultrasound and multispectral photoacoustic imaging methods in a compact head‐mountable device, to quantitatively map individual dynamics of CBV, CBF, and SO2 as well as contrast agent enhanced brain imaging at high spatiotemporal resolutions. Following systematic characterization, the fUSPA system is applied to study brain‐wide cerebrovascular reactivity (CVR) at single‐vessel resolution via relative changes in CBV, CBF, and SO2 in response to hypercapnia stimulation. These results show that cortical veins and arteries exhibit differences in CVR in the stimulated state and consistent anti‐correlation in CBV oscillations during the resting state, demonstrating the multiparametric fUSPA system's unique capabilities in investigating complex mechanisms of brain functions.

Funder

National Science Foundation

Penn State Hershey Cancer Institute

National Institute of Neurological Disorders and Stroke

Publisher

Wiley

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