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Updated: Jun 22, 2026

Multiple-mouse Neuroanatomical Magnetic Resonance Imaging
Published on: February 27, 2011
Micro MRI of the mouse brain using a novel 400 MHz cryogenic quadrature RF probe
Christof Baltes1, Nicole Radzwill, Simone Bosshard
1Institute for Biomedical Engineering, University of Zurich and ETH Zurich, Zurich, Switzerland. baltes@biomed.ee.ethz.ch
Abstract:
The increasing number of mouse models of human disease used in biomedical research applications has led to an enhanced interest in non-invasive imaging of mice, e.g. using MRI for phenotyping. However, MRI of small rodents puts high demands on the sensitivity of data acquisition. This requirement can be addressed by using cryogenic radio-frequency (RF) detection devices. The aim of this work was to investigate the in vivo performance of a 400 MHz cryogenic transmit/receive RF probe (CryoProbe) designed for MRI of the mouse brain. To characterize this novel probe, MR data sets were acquired with both the CryoProbe and a matched conventional receive-only surface coil operating at room temperature (RT) using conventional acquisition protocols (gradient and spin echo) with identical parameter settings. Quantitative comparisons in phantom and in vivo experiments revealed gains in the signal-to-noise ratio (SNR) of 2.4 and 2.5, respectively. The increased sensitivity of the CryoProbe was invested to enhance the image quality of high resolution structural images acquired in scan times compatible with routine operation (< 45 min). In high resolution (30 x 30 x 300 microm(3)) structural images of the mouse cerebellum, anatomical details such as Purkinje cell and molecular layers could be identified. Similarly, isotropic (60 x 60 x 60 microm(3)) imaging of mouse cortical and subcortical areas revealed anatomical structures smaller than 100 microm. Finally, 3D MR angiography (52 x 80 x 80 microm(3)) of the brain vasculature enabled the detailed reconstruction of intracranial vessels (anterior and middle cerebral artery). In conclusion, this low temperature detection device represents an attractive option to increase the performance of small animal MR systems operating at 9.4 Tesla.
Insights
A new cryogenic radio-frequency (RF) probe significantly enhances MRI sensitivity for mouse brain imaging. This advanced technology improves signal-to-noise ratio, enabling higher resolution anatomical detail and faster scans for disease research.
Area of Science:
- Biomedical imaging
- Medical physics
- Neuroscience
Background:
- Mouse models are crucial for studying human diseases.
- Non-invasive imaging, such as MRI, is essential for phenotyping these models.
- High sensitivity is required for MRI of small rodents like mice.
Purpose of the Study:
- To evaluate the in vivo performance of a 400 MHz cryogenic transmit/receive RF probe (CryoProbe) for mouse brain MRI.
- To compare the CryoProbe's sensitivity against a conventional room temperature coil.
- To assess the impact of the CryoProbe on image quality and anatomical detail.
Main Methods:
- MR data acquisition using the CryoProbe and a conventional surface coil.
- Comparison of signal-to-noise ratio (SNR) in phantom and in vivo experiments.
- Acquisition of high-resolution structural images and 3D MR angiography.
Main Results:
- The CryoProbe demonstrated SNR gains of 2.4 (phantom) and 2.5 (in vivo) compared to the conventional coil.
- High-resolution structural images revealed detailed mouse cerebellum anatomy (Purkinje cells, molecular layers).
- Isotropic imaging resolved structures < 100 microm in mouse cortical and subcortical areas.
- 3D MR angiography provided detailed visualization of intracranial vessels.
Conclusions:
- The cryogenic RF probe significantly enhances MRI performance for small animal systems at 9.4 Tesla.
- This technology allows for improved image quality and detailed anatomical visualization in mouse brain studies.
- The CryoProbe is a valuable tool for routine, high-resolution MRI phenotyping in biomedical research.

