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Updated: Feb 1, 2026

Three-dimensional Optical-resolution Photoacoustic Microscopy
Published on: May 3, 2011
Photoacoustic microscopy of obesity-induced cerebrovascular alterations
Rui Cao1, Jun Li2, Chenchu Zhang1
1Department of Biomedical Engineering, University of Virginia, Charlottesville, USA.
Abstract:
Cerebral small vessel disease has been linked to cognitive, psychiatric and physical disabilities, especially in the elderly. However, the underlying pathophysiology remains incompletely understood, largely due to the limited accessibility of these small vessels in the live brain. Here, we report an intravital imaging and analysis platform for high-resolution, quantitative and comprehensive characterization of pathological alterations in the mouse cerebral microvasculature. By exploiting multi-parametric photoacoustic microscopy (PAM), microvascular structure, blood perfusion, oxygenation and flow were imaged in the awake brain. With the aid of vessel segmentation, these structural and functional parameters were extracted at the single-microvessel level, from which vascular density, tortuosity, wall shear stress, resistance and associated cerebral oxygen extraction fraction and metabolism were also quantified. With the use of vasodilatory stimulus, multifaceted cerebrovascular reactivity (CVR) was characterized in vivo. By extending the classic Evans blue assay to in vivo, permeability of the blood-brain barrier (BBB) was dynamically evaluated. The utility of this enabling technique was examined by studying cerebrovascular alterations in an established mouse model of high-fat diet-induced obesity. Our results revealed increased vascular density, reduced arterial flow, enhanced oxygen extraction, impaired BBB integrity, and increased multifaceted CVR in the obese brain. Interestingly, the 'counterintuitive' increase of CVR was supported by the elevated active endothelial nitric oxide synthase in the obese mouse. Providing comprehensive and quantitative insights into cerebral microvessels and their responses under pathological conditions, this technique opens a new door to mechanistic studies of the cerebral small vessel disease and its implications in neurodegeneration and stroke.
Insights
Researchers developed a new imaging platform to study cerebral small vessel disease in mice. This advanced technique revealed significant microvascular changes in obese mice, offering new insights into neurodegeneration and stroke.
Area of Science:
- Neuroscience
- Biomedical Engineering
- Vascular Biology
Background:
- Cerebral small vessel disease (CSVD) is a major cause of disability, particularly in the elderly.
- The pathophysiology of CSVD is poorly understood due to limited access to live brain microvasculature.
- Current research methods lack the resolution and comprehensiveness needed for detailed microvascular analysis.
Purpose of the Study:
- To develop and validate an intravital imaging and analysis platform for high-resolution, quantitative characterization of mouse cerebral microvasculature.
- To investigate pathological alterations in microvascular structure, function, and blood-brain barrier (BBB) integrity.
- To assess cerebrovascular reactivity (CVR) and metabolism in vivo.
Main Methods:
- Multi-parametric photoacoustic microscopy (PAM) for imaging structure, perfusion, oxygenation, and flow in awake mice.
- Vessel segmentation for single-microvessel parameter extraction (density, tortuosity, wall shear stress, resistance).
- In vivo Evans blue assay for dynamic BBB permeability evaluation and vasodilatory stimulus for CVR assessment.
Main Results:
- The platform successfully quantified structural and functional microvascular parameters in vivo.
- Obese mouse models exhibited increased vascular density, reduced arterial flow, enhanced oxygen extraction, and impaired BBB integrity.
- Multifaceted CVR was increased in obese mice, supported by elevated active endothelial nitric oxide synthase.
Conclusions:
- The developed imaging platform provides comprehensive, quantitative insights into cerebral microvessels and their responses.
- This technique enables mechanistic studies of CSVD, neurodegeneration, and stroke.
- Findings in obese mice highlight significant cerebrovascular alterations relevant to neurological disease.
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