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Research ArticleARTIFICIAL INTELLIGENCE

Enhancing Lesion Detection in Inflammatory Myelopathies: A Deep Learning–Reconstructed Double Inversion Recovery MRI Approach

Qiang Fang, Qing Yang, Bao Wang, Bing Wen, Guangrun Xu and Jingzhen He
American Journal of Neuroradiology May 2025, DOI: https://doi.org/10.3174/ajnr.A8582
Qiang Fang
aFrom the Department of Radiology (Q.F., Q.Y., B. Wang, J.H.), Qilu Hospital of Shandong University, Jinan, Shandong Province, China
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Qing Yang
aFrom the Department of Radiology (Q.F., Q.Y., B. Wang, J.H.), Qilu Hospital of Shandong University, Jinan, Shandong Province, China
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Bao Wang
aFrom the Department of Radiology (Q.F., Q.Y., B. Wang, J.H.), Qilu Hospital of Shandong University, Jinan, Shandong Province, China
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Bing Wen
bDepartment of Neurology (B. Wen, G.X.), Qilu Hospital of Shandong University, Jinan, Shandong Province, China
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Guangrun Xu
bDepartment of Neurology (B. Wen, G.X.), Qilu Hospital of Shandong University, Jinan, Shandong Province, China
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Jingzhen He
aFrom the Department of Radiology (Q.F., Q.Y., B. Wang, J.H.), Qilu Hospital of Shandong University, Jinan, Shandong Province, China
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Abstract

BACKGROUND AND PURPOSE: The imaging of inflammatory myelopathies has advanced significantly across time, with MRI techniques playing a pivotal role in enhancing lesion detection. However, the impact of deep learning (DL)-based reconstruction on 3D double inversion recovery (DIR) imaging for inflammatory myelopathies remains unassessed. This study aimed to compare the acquisition time, image quality, diagnostic confidence, and lesion detection rates among sagittal T2WI, standard DIR, and DL-reconstructed DIR in patients with inflammatory myelopathies.

MATERIALS AND METHODS: In this observational study, patients diagnosed with inflammatory myelopathies were recruited between June 2023 and March 2024. Each patient underwent sagittal conventional TSE sequences and standard 3D DIR (T2WI and standard 3D DIR were used as references for comparison), followed by an undersampled accelerated double inversion recovery deep learning (DIRDL) examination. Three neuroradiologists evaluated the images using a 4-point Likert scale (from 1 to 4) for overall image quality, perceived SNR, sharpness, artifacts, and diagnostic confidence. The acquisition times and lesion detection rates were also compared among the acquisition protocols.

RESULTS: A total of 149 participants were evaluated (mean age, 40.6 [SD, 16.8] years; 71 women). The median acquisition time for DIRDL was significantly lower than for standard DIR (298 seconds [interquartile range, 288–301 seconds] versus 151 seconds [interquartile range, 148–155 seconds]; P < .001), showing a 49% time reduction. DIRDL images scored higher in overall quality, perceived SNR, and artifact noise reduction (all P < .001). There were no significant differences in sharpness (P = .07) or diagnostic confidence (P = .06) between the standard DIR and DIRDL protocols. Additionally, DIRDL detected 37% more lesions compared with T2WI (300 versus 219; P < .001).

CONCLUSIONS: DIRDL significantly reduces acquisition time and improves image quality compared with standard DIR, without compromising diagnostic confidence. Additionally, DIRDL enhances lesion detection in patients with inflammatory myelopathies, making it a valuable tool in clinical practice. These findings underscore the potential for incorporating DIRDL into future imaging guidelines.

ABBREVIATIONS:

AQP4+NMOSD
AQP4-IgG positive neuromyelitis optica spectrum disorders
DIR
double inversion recovery
DL
deep learning
ICC
intraclass correlation coefficient
IQR
interquartile range
MOG
myelin oligodendrocyte glycoprotein
MOGAD
MOG antibody-associated diseases
NEX
number of excitations

Footnotes

  • Qiang Fang and Qing Yang contributed equally to this work and should be considered as co-first authors.

  • This work was supported by the Shandong Provincial Natural Science Foundation (ZR2021MH237) and the National Natural Science Foundation of China (82202114).

  • Disclosure forms provided by the authors are available with the full text and PDF of this article at www.ajnr.org.

  • © 2025 by American Journal of Neuroradiology
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Cite this article
Qiang Fang, Qing Yang, Bao Wang, Bing Wen, Guangrun Xu, Jingzhen He
Enhancing Lesion Detection in Inflammatory Myelopathies: A Deep Learning–Reconstructed Double Inversion Recovery MRI Approach
American Journal of Neuroradiology May 2025, DOI: 10.3174/ajnr.A8582

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DIRDL for Inflammatory Myelopathies
Qiang Fang, Qing Yang, Bao Wang, Bing Wen, Guangrun Xu, Jingzhen He
American Journal of Neuroradiology May 2025, DOI: 10.3174/ajnr.A8582
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