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Microbubble Backscattering Intensity Improves the Sensitivity of Three-dimensional (3D) Functional Ultrasound Localization Microscopy (fULM)

Publication ,  Journal Article
Shin, YR; You, Q; Wang, Y; Lowerison, MR; Lin, BZ; Song, P
Published in: IEEE Transactions on Medical Imaging
January 1, 2026

Functional ultrasound localization microscopy (fULM) enables brain-wide mapping of neural activity at micron-scale resolution but suffers from limited sensitivity due to sparse and noisy microbubble (MB) detections. Extending fULM into three dimensions (3D) further exacerbates these challenges because of low-frequency matrix arrays, reduced localization efficiency, and severe data sparsity. To address these limitations, we developed a statistical framework that models MB arrivals in 3D as a Poisson process accounting for localization efficiency, detection probability, and backscattered amplitude. This analysis predicts that integrating amplitude with count-based fULM improves functional sensitivity, particularly under high MB concentrations where localization saturates. Three-dimensional MB advection simulations confirmed these predictions, showing that backscattering fULM (B-fULM) maintains sensitivity at higher MB concentrations where conventional fULM fails. In rat brain experiments, B-fULM yielded stronger and more robust stimulus-evoked responses, with SNR gains of 18% in the somatosensory cortex and 61% in the thalamus, while preserving super-resolved spatial detail (33.4 μm for B-fULM vs 35.7 μm for fULM). These results establish B-fULM as a practical and sensitive approach for super-resolved 3D functional neuroimaging

Duke Scholars

Published In

IEEE Transactions on Medical Imaging

DOI

EISSN

1558-254X

ISSN

0278-0062

Publication Date

January 1, 2026

Related Subject Headings

  • Nuclear Medicine & Medical Imaging
  • 46 Information and computing sciences
  • 40 Engineering
 

Citation

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Shin, Y. R., You, Q., Wang, Y., Lowerison, M. R., Lin, B. Z., & Song, P. (2026). Microbubble Backscattering Intensity Improves the Sensitivity of Three-dimensional (3D) Functional Ultrasound Localization Microscopy (fULM). IEEE Transactions on Medical Imaging. https://doi.org/10.1109/TMI.2026.3659777
Shin, Y. R., Q. You, Y. Wang, M. R. Lowerison, B. Z. Lin, and P. Song. “Microbubble Backscattering Intensity Improves the Sensitivity of Three-dimensional (3D) Functional Ultrasound Localization Microscopy (fULM).” IEEE Transactions on Medical Imaging, January 1, 2026. https://doi.org/10.1109/TMI.2026.3659777.
Shin YR, You Q, Wang Y, Lowerison MR, Lin BZ, Song P. Microbubble Backscattering Intensity Improves the Sensitivity of Three-dimensional (3D) Functional Ultrasound Localization Microscopy (fULM). IEEE Transactions on Medical Imaging. 2026 Jan 1;
Shin, Y. R., et al. “Microbubble Backscattering Intensity Improves the Sensitivity of Three-dimensional (3D) Functional Ultrasound Localization Microscopy (fULM).” IEEE Transactions on Medical Imaging, Jan. 2026. Scopus, doi:10.1109/TMI.2026.3659777.
Shin YR, You Q, Wang Y, Lowerison MR, Lin BZ, Song P. Microbubble Backscattering Intensity Improves the Sensitivity of Three-dimensional (3D) Functional Ultrasound Localization Microscopy (fULM). IEEE Transactions on Medical Imaging. 2026 Jan 1;

Published In

IEEE Transactions on Medical Imaging

DOI

EISSN

1558-254X

ISSN

0278-0062

Publication Date

January 1, 2026

Related Subject Headings

  • Nuclear Medicine & Medical Imaging
  • 46 Information and computing sciences
  • 40 Engineering