Novel inductively coupled ear-bars (ICEs) to enhance restored fMRI signal from susceptibility compensation in rats

Author:

Chen Yi12,Fernandez Zachary23,Scheel Norman2,Gifani Mahsa4,Zhu David C23,Counts Scott E34567ORCID,Dorrance Anne M38,Razansky Daniel910111213,Yu Xin14ORCID,Qian Wei15,Qian Chunqi215

Affiliation:

1. Department of High-field Magnetic Resonance, Max Planck Institute for Biological Cybernetics , Tuebingen 72076 , Germany

2. Department of Radiology and Cognitive Imaging Research Center, Michigan State University , East Lansing, MI 48824 , United States

3. Neuroscience Program, Michigan State University , East Lansing, MI 48824 , United States

4. Department of Translational Neuroscience, Michigan State University , Grand Rapids, MI 49503 , United States

5. Department of Family Medicine, Michigan State University , Grand Rapids, MI 49503 , United States

6. Department of Hauenstein Neurosciences Center, Mercy Health Saint Mary’s Hospital , Grand Rapids, MI 49508 , United States

7. Michigan Alzheimer’s Disease Research Center , Ann Arbor, MI 48105 , United States

8. Department of Pharmacology and Toxicology, Michigan State University , East Lansing, MI 48824 , United States

9. Institute of Pharmacology and Toxicology and Institute for Biomedical Engineering , Faculty of Medicine, , Zurich 8006 , Switzerland

10. University of Zurich , Faculty of Medicine, , Zurich 8006 , Switzerland

11. Department of Information Technology and Electrical Engineering , ETH Zurich, , , Zurich 8092 , Switzerland

12. Institute for Biomedical Engineering , ETH Zurich, , , Zurich 8092 , Switzerland

13. Zurich Neuroscience Center , Zurich 8057 , Switzerland

14. Martinos Center for Biomedical Imaging, Massachusetts General Hospital and Harvard Medical School , Charlestown, MA 02114 , United States

15. Department of Electrical and Computer Engineering, Michigan State University , East Lansing, MI 48824 , United States

Abstract

Abstract Functional magnetic resonance imaging faces inherent challenges when applied to deep-brain areas in rodents, e.g. entorhinal cortex, due to the signal loss near the ear cavities induced by susceptibility artifacts and reduced sensitivity induced by the long distance from the surface array coil. Given the pivotal roles of deep brain regions in various diseases, optimized imaging techniques are needed. To mitigate susceptibility-induced signal losses, we introduced baby cream into the middle ear. To enhance the detection sensitivity of deep brain regions, we implemented inductively coupled ear-bars, resulting in approximately a 2-fold increase in sensitivity in entorhinal cortex. Notably, the inductively coupled ear-bar can be seamlessly integrated as an add-on device, without necessitating modifications to the scanner interface. To underscore the versatility of inductively coupled ear-bars, we conducted echo-planner imaging-based task functional magnetic resonance imaging in rats modeling Alzheimer’s disease. As a proof of concept, we also demonstrated resting-state-functional magnetic resonance imaging connectivity maps originating from the left entorhinal cortex—a central hub for memory and navigation networks-to amygdala hippocampal area, Insular Cortex, Prelimbic Systems, Cingulate Cortex, Secondary Visual Cortex, and Motor Cortex. This work demonstrates an optimized procedure for acquiring large-scale networks emanating from a previously challenging seed region by conventional magnetic resonance imaging detectors, thereby facilitating improved observation of functional magnetic resonance imaging outcomes.

Funder

National Institutes of Health

Division of Electrical, Communications and Cyber Systems of the National Science Foundation

European Union Framework Program for Research and Innovation Horizon 2020

Marie Skłodowska-Curie

Publisher

Oxford University Press (OUP)

Subject

Cellular and Molecular Neuroscience,Cognitive Neuroscience

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