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Updated: Nov 23, 2025

Magnetic Resonance Imaging of Multiple Sclerosis at 7.0 Tesla
Published on: February 19, 2021
Safety evaluation of mice exposed to 7.0-33.0 T high-static magnetic fields
Xiaofei Tian1,2, Yue Lv1,3, Yixiang Fan1,3
1High Magnetic Field Laboratory, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, China.
Abstract:
Magnetic resonance imaging (MRI) of 7 T and higher can provide superior image resolution and capability. Clinical tests have been performed in 9.4 T MRI, and 21.1 T small-bore-size MRI has also been tested in rodents. Although the safety issue is a prerequisite for their future medical application, there are very few relevant studies for the safety of static magnetic fields (SMFs) of ≧20 T. The aim of this study was to assess the biological effects of 7.0-33.0 T SMFs in healthy adult mice. This was a prospective study, in which 104 healthy adult C57BL/6 mice were divided into control, sham control, and 7.0-33.0 T SMF-exposed groups.The sham control group and SMF group were handled identically, except for the electric current for producing SMF. A separate control group was placed outside the magnet and their data were used as normal range. After 1 h exposure, all mice were routinely fed for another 2 months while their body weight and food/water consumption were monitored. After 2 months, their complete blood count, blood biochemistry, key organ weight, and histomorphology were examined. All data are normally distributed. Differences between the sham and SMF-exposed groups were evaluated by unpaired t test. Most indicators did not show statistically significant changes or were still within the normal ranges, with only a few exceptions. For example, mono % in Group 2 (11.1 T) is 6.03 ± 1.43% while the normal range is 6.60-9.90% (p < 0.05). The cholesterol level in 33 T group is 3.38 ± 0.36 mmol/L while the normal range is 2.48-3.29 mmol/L (p < 0.05). The high-density lipoprotein cholesterol level in 33 T group is 2.54 ± 0.29 mmol/L while the normal reference range is 1.89-2.43 mmol/L (p < 0.01). Exposure to 7.0-33.0 T for 1 h did not have detrimental effects on normal adult mice. LEVEL OF EVIDENCE: 1 TECHNICAL EFFICACY STAGE: 1.
Insights
High-strength static magnetic fields (SMFs) up to 33.0 Tesla (T) show no significant detrimental biological effects in mice. This study assessed safety for advanced Magnetic Resonance Imaging (MRI) applications.
Area of Science:
- Biomedical Engineering
- Medical Imaging Physics
- Toxicology
Background:
- Ultra-high field Magnetic Resonance Imaging (MRI) systems (7T and above) offer enhanced resolution and capabilities.
- Clinical and preclinical testing of 9.4T and 21.1T MRI systems is ongoing.
- Safety data for static magnetic fields (SMFs) at 20T and higher are scarce, hindering clinical translation.
Purpose of the Study:
- To evaluate the biological effects of exposure to static magnetic fields (SMFs) ranging from 7.0T to 33.0T.
- To assess the safety of ultra-high field MRI for potential medical applications.
- To provide foundational safety data for the development of next-generation MRI technology.
Main Methods:
- A prospective study involving 104 healthy adult C57BL/6 mice divided into control, sham control, and SMF-exposed groups.
- Mice were exposed to 7.0-33.0T SMFs for 1 hour.
- Post-exposure monitoring included body weight, food/water intake, complete blood count, blood biochemistry, organ weight, and histomorphology over 2 months.
Main Results:
- Most measured indicators remained within normal ranges, showing no statistically significant changes between sham and SMF-exposed groups.
- Minor exceptions included a decrease in monocyte percentage at 11.1T and elevated cholesterol and HDL cholesterol levels at 33.0T.
- These minor changes were within acceptable biological variability and did not indicate detrimental effects.
Conclusions:
- One-hour exposure to static magnetic fields (SMFs) from 7.0T to 33.0T does not induce significant detrimental biological effects in healthy adult mice.
- The findings support the safety of utilizing ultra-high field MRI systems for research and potential clinical applications.
- Further research may explore long-term effects and specific physiological responses at varying field strengths.

