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Resumen

Significance: Cerebral blood flow (CBF) imaging is crucial for diagnosing cerebrovascular diseases. However, existing large neuroimaging techniques with high cost, low sampling rate, and poor mobility make them unsuitable for continuous and longitudinal CBF monitoring at the bedside. Aim: We aimed to develop a low-cost, portable, programmable scanning diffuse speckle contrast imaging (PS-DSCI) technology for fast, high-density, and depth-sensitive imaging of CBF in rodents. Approach: The PS-DSCI employed a programmable digital micromirror device (DMD) for remote line-shaped laser (785 nm) scanning on tissue surface and synchronized a 2D camera for capturing boundary diffuse laser speckle contrasts. New algorithms were developed to address deformations of line-shaped scanning, thus minimizing CBF reconstruction artifacts. The PS-DSCI was examined in head-simulating phantoms and adult mice. Results: The PS-DSCI enables resolving intralipid particle flow contrasts at different tissue depths. In vivo experiments in adult mice demonstrated the capability of PS-DSCI to image global/regional CBF variations induced by 8% CO2 inhalation and transient carotid artery ligations. Conclusions: Compared with conventional point scanning, line scanning in PS-DSCI significantly increases spatiotemporal resolution. The high sampling rate of PS-DSCI is crucial for capturing rapid CBF changes while high spatial resolution is important for visualizing brain vasculature.

Idioma originalEnglish
Número de artículo015006
PublicaciónNeurophotonics
Volumen12
N.º1
DOI
EstadoPublished - ene 1 2025

Nota bibliográfica

Publisher Copyright:
© The Authors. Published by SPIE under a Creative Commons Attribution 4.0 International License.

Financiación

We acknowledge partial financial support from the National Institutes of Health (NIH) #R01 EB028792, #R01 HD101508, #R21 HD091118, #R21 NS114771, #R41 NS122722, #R42 MH135825, #R56 NS117587 (G. Y.), the Halcomb Fellowship in Medicine and Engineering at the University of Kentucky (F. A.), and the Neuroscience Research Priority Area (NRPA) Pilot Grant from the University of Kentucky (L. C.). The content is solely the responsibility of the authors and does not necessarily represent the official views of NIH, NRPA, or the University of Kentucky.

FinanciadoresNúmero del financiador
University ofKentucky Neuroscience Research Priority Area
University of Kentucky
National Institutes of Health (NIH)HD101508, HD091118, MH135825, EB028792, NS117587, NS114771, NS122722

    ASJC Scopus subject areas

    • Neuroscience (miscellaneous)
    • Radiological and Ultrasound Technology
    • Radiology Nuclear Medicine and imaging

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    Profundice en los temas de investigación de 'Programmable scanning diffuse speckle contrast imaging of cerebral blood flow'. En conjunto forman una huella única.

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