Related Experiment Video
Updated: Jul 14, 2026

Magnetic Resonance Imaging of Multiple Sclerosis at 7.0 Tesla
Published on: February 19, 2021
Patient safety issues in magnetic resonance imaging: state of the art
A Stecco1, A Saponaro, A Carriero
1SCDU Radiologia, Università del Piemonte Orientale A. Avogadro, ASO Maggiore della Carità, Corso Mazzini 18, I-28100 Novara, Italy. astecco@sirm.org
Abstract:
The presence of a static magnetic field (Bo), a radiofrequency field (RF), a dynamic gradient which varies in time and loud noises during an MR examination could increase patient risk. Specifically, a magnetic field could interfere with ferromagnetic material leading to one of the following five dangerous interactions: 1) projectile effect, 2) twisting, 3) burning, 4) artefacts and 5) device malfunction. The projectile effect is when an object is attracted by the magnet with the risk, as reported in literature, of hitting the patient, operators and/or the instrument. Objects which typically can undergo this effect are oxygen and helium cylinders, IV stands, cleaning trolleys, chairs, lamp holders, scissors, forceps, clampers, traction weights, monitoring instruments, and especially metallic splinters within the patient. Twisting (torsion) typically occurs with cerebral vascular clamps and cochlear implants. If parts of implants are involved a malfunction may result. Burns can be caused when electrically conductive material is introduced within the magnet, for example, ECG electrodes, monitoring cables and coils which are in contact with the patient's skin, as well as tattoos and eye-liners that contain iron-oxides. Artefacts can be induced by RF emission of implanted devices which can be mistaken for noise of the receiving coil. Implanted devices can induce signal voids which mask or simulate pathologies. Electrical or mechanical malfunction of implanted devices includes pacemakers which can stimulate inappropriately or at an elevated frequency yielding a distorted ECG with altered T-waves. The risk for patients can be reduced by specific educational programs within individual radiology departments which include other specializations and external referring physicians with the aim of developing a standardized safety protocol.
Insights
Magnetic Resonance Imaging (MRI) involves risks from static magnetic fields, radiofrequency fields, and loud noises. Patient safety during MRI requires standardized protocols to mitigate potential dangers like projectile effects and device malfunctions.
Area of Science:
- Medical Imaging
- Biophysics
- Patient Safety
Background:
- Magnetic Resonance Imaging (MRI) utilizes static magnetic fields (Bo), radiofrequency (RF) fields, dynamic gradients, and acoustic noise.
- These components pose potential risks to patients, particularly those with ferromagnetic materials or implanted devices.
Purpose of the Study:
- To identify and categorize the potential risks associated with MRI examinations.
- To highlight the mechanisms of adverse events and their implications for patient safety.
- To emphasize the need for standardized safety protocols in MRI procedures.
Main Methods:
- Review of literature detailing adverse events during MRI.
- Categorization of risks based on interactions with MRI components (Bo, RF, gradients, noise).
- Analysis of specific interactions: projectile effect, twisting, burns, artefacts, and device malfunction.
Main Results:
- Ferromagnetic materials can cause projectile effects, twisting, burns, and artefacts.
- Implanted devices may malfunction, leading to inappropriate stimulation or altered physiological signals.
- RF emissions from devices can create artefacts mistaken for noise or mask pathologies.
Conclusions:
- Patient safety in MRI is paramount and requires a comprehensive understanding of potential hazards.
- Standardized educational programs and safety protocols involving radiology departments and referring physicians are crucial.
- Mitigation strategies are essential to reduce the incidence of MRI-related adverse events.
Related Concept Videos
Magnetic Resonance Imaging
Imaging Studies I: CT and MRI
Description of the Procedures
Computed Tomography (CT) scan:
Computed Tomography (CT) scans use X-ray technology to generate detailed images of bones, organs, and tissues. During the scan, the patient lies on a moving table...
Imaging Studies for Cardiovascular System IV: CMRI
Imaging Studies IV: Magnetic Resonance Imaging
Radiological Investigation II: MRI and Ventilation Perfusion Scan
Magnetic Resonance Imaging (MRI) and Ventilation Perfusion Scans are two radiological investigations that offer detailed diagnostic images of the body, particularly lung structures.
MRI
MRI uses magnetic fields and radiofrequency signals to distinguish between normal and abnormal tissues. This technology provides a more detailed diagnostic image than CT scans, enabling it to characterize pulmonary nodules, stage bronchogenic carcinoma, and evaluate inflammatory activity in...
