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Photon-counting micro-CT scanner for deep learning-enabled small animal perfusion imaging.

Publication ,  Journal Article
Allphin, AJ; Nadkarni, R; Clark, DP; Badea, CT
Published in: Phys Med Biol
July 7, 2025

Objective.In this work, we introduce a benchtop, turn-table photon-counting (PC) micro-computed tomography (CT) scanner and highlight its application for dynamic small animal perfusion imaging.Approach.Built on recently published hardware, the system now features a CdTe-based PC detector. We validated its static spectral PC micro-CT imaging using conventional phantoms and assessed dynamic performance with a custom flow-configurable dual-compartment perfusion phantom. The phantom was scanned under varied flow conditions during injections of a low molecular weight iodinated contrast agent.In vivomouse studies with identical injection settings demonstrated potential applications. A pretrained denoising convolutional neural network (CNN) processed large multi-energy, temporal datasets (20 timepoints ×4 energies ×3 spatial dimensions), reconstructed via weighted filtered back projection. A separate CNN, trained on simulated data, performed gamma variate-based 2D perfusion mapping, evaluated qualitatively in phantom andin vivotests.Main Results.Full five-dimensional reconstructions were denoised using a CNN in ∼3% of the time of iterative reconstruction, reducing noise in water at the highest energy threshold from 1206 HU to 86 HU. Decomposed iodine maps, which improved contrast to noise ratio from 16.4 (in the lowest energy CT images) to 29.4 (in the iodine maps), were used for perfusion analysis. The perfusion CNN outperformed pixelwise gamma variate fitting by ∼33%, with a test set error of 0.04 vs. 0.06 in blood flow index (BFI) maps, and quantified linear BFI changes in the phantom with a coefficient of determination of 0.98.Significance.This work underscores the PC micro-CT scanner's utility for high-throughput small animal perfusion imaging, leveraging spectral PC micro-CT and iodine decomposition. It provides a versatile platform for preclinical vascular research and advanced, time-resolved studies of disease models and therapeutic interventions.

Duke Scholars

Published In

Phys Med Biol

DOI

EISSN

1361-6560

Publication Date

July 7, 2025

Volume

70

Issue

14

Location

England

Related Subject Headings

  • X-Ray Microtomography
  • Signal-To-Noise Ratio
  • Photons
  • Phantoms, Imaging
  • Perfusion Imaging
  • Nuclear Medicine & Medical Imaging
  • Mice
  • Image Processing, Computer-Assisted
  • Deep Learning
  • Animals
 

Citation

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Allphin, A. J., Nadkarni, R., Clark, D. P., & Badea, C. T. (2025). Photon-counting micro-CT scanner for deep learning-enabled small animal perfusion imaging. Phys Med Biol, 70(14). https://doi.org/10.1088/1361-6560/ade94b
Allphin, Alex J., Rohan Nadkarni, Darin P. Clark, and Cristian T. Badea. “Photon-counting micro-CT scanner for deep learning-enabled small animal perfusion imaging.Phys Med Biol 70, no. 14 (July 7, 2025). https://doi.org/10.1088/1361-6560/ade94b.
Allphin AJ, Nadkarni R, Clark DP, Badea CT. Photon-counting micro-CT scanner for deep learning-enabled small animal perfusion imaging. Phys Med Biol. 2025 Jul 7;70(14).
Allphin, Alex J., et al. “Photon-counting micro-CT scanner for deep learning-enabled small animal perfusion imaging.Phys Med Biol, vol. 70, no. 14, July 2025. Pubmed, doi:10.1088/1361-6560/ade94b.
Allphin AJ, Nadkarni R, Clark DP, Badea CT. Photon-counting micro-CT scanner for deep learning-enabled small animal perfusion imaging. Phys Med Biol. 2025 Jul 7;70(14).
Journal cover image

Published In

Phys Med Biol

DOI

EISSN

1361-6560

Publication Date

July 7, 2025

Volume

70

Issue

14

Location

England

Related Subject Headings

  • X-Ray Microtomography
  • Signal-To-Noise Ratio
  • Photons
  • Phantoms, Imaging
  • Perfusion Imaging
  • Nuclear Medicine & Medical Imaging
  • Mice
  • Image Processing, Computer-Assisted
  • Deep Learning
  • Animals