SORDINO: silent, sensitive, specific and artifact-resistant fMRI in awake, behaving mice

Blood-oxygenation-level-dependent (BOLD) functional magnetic resonance imaging (fMRI) has advanced brain mapping across species. This widely used technique, however, faces challenges such as acoustic noise, electromagnetic interference, motion artifacts, magnetic-field inhomogeneity and limitations in sensitivity and specificity. Here we introduce Steady-state On-the-Ramp Detection of INduction-decay with Oversampling (SORDINO), an improved zero echo time (ZTE)-based fMRI technique that maintains ultra-low slew rate and acquires data exclusively during gradient direction changes. At 9.4 T, SORDINO outperforms conventional gradient-recalled-echo-based echo-planar imaging and ZTE in metrics crucial for fMRI while being silent, sensitive, specific and resistant to motion and susceptibility artifacts. We showcase SORDINO’s superior compatibility with multimodal experiments and reveal T1-based contrast mechanisms distinct from BOLD that are expected to generalize across ZTE-based fMRI techniques. We further demonstrate SORDINO brain-wide activity and functional connectivity mapping in awake, behaving mice, overcoming stress-related, motion-related and sensitivity-related limitations that remain common barriers in current animal fMRI studies. The authors develop SORDINO, a silent, sensitive and distortion-free fMRI method. They benchmark the technique against conventional approaches, reveal its functional contrast mechanisms and use it to perform brain-wide imaging of skilled motor behavior and social interaction in mice.

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Publication Details

Journal
Nature Neuroscience
Published
2026-09-09
DOI
https://doi.org/10.1038/s41593-026-02424-8
Citations
1
Primary Topic
Functional Brain Connectivity Studies
Type
article
Field-Weighted Citation Impact
6.48
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article

SORDINO: silent, sensitive, specific and artifact-resistant fMRI in awake, behaving mice

Uzay E. Emir, Clare Freeman, Sheng Song, Li‐Ming Hsu et al.
1 citations
Nature Neuroscience
Functional Brain Connectivity Studies
6.48
article

SORDINO: silent, sensitive, specific and artifact-resistant fMRI in awake, behaving mice

Uzay E. Emir, Clare Freeman, Sheng Song, Li‐Ming Hsu, Eric R. Muir, Mark D. Shen, Sung-Ho Lee, Paul B. Manis, Adam W. Hantman, Samuel Booth, Benjamin D. Philpot, Yuncong Ma, Tzu-Wen Wang, Yen‐Yu Ian Shih, Tzu-Hao Harry Chao, Siddhi Ozarkar, Scott T. Albert, Tatiana A. Shnitko, Martin MacKinnon, Wei-Tang Chang, Randy J. Nonneman
article en
1 citations

Abstract

Blood-oxygenation-level-dependent (BOLD) functional magnetic resonance imaging (fMRI) has advanced brain mapping across species. This widely used technique, however, faces challenges such as acoustic noise, electromagnetic interference, motion artifacts, magnetic-field inhomogeneity and limitations in sensitivity and specificity. Here we introduce Steady-state On-the-Ramp Detection of INduction-decay with Oversampling (SORDINO), an improved zero echo time (ZTE)-based fMRI technique that maintains ultra-low slew rate and acquires data exclusively during gradient direction changes. At 9.4 T, SORDINO outperforms conventional gradient-recalled-echo-based echo-planar imaging and ZTE in metrics crucial for fMRI while being silent, sensitive, specific and resistant to motion and susceptibility artifacts. We showcase SORDINO’s superior compatibility with multimodal experiments and reveal T1-based contrast mechanisms distinct from BOLD that are expected to generalize across ZTE-based fMRI techniques. We further demonstrate SORDINO brain-wide activity and functional connectivity mapping in awake, behaving mice, overcoming stress-related, motion-related and sensitivity-related limitations that remain common barriers in current animal fMRI studies. The authors develop SORDINO, a silent, sensitive and distortion-free fMRI method. They benchmark the technique against conventional approaches, reveal its functional contrast mechanisms and use it to perform brain-wide imaging of skilled motor behavior and social interaction in mice.

Nature Neuroscience
University of North Carolina at Chapel Hill (US)
Openalex Percentile: Top 3%
Functional Brain Connectivity Studies
6.48
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