4.3 Article

Optimized 14+1 receive coil array and position system for 3D high-resolution MRI of dental and maxillomandibular structures

期刊

DENTOMAXILLOFACIAL RADIOLOGY
卷 45, 期 1, 页码 -

出版社

BRITISH INST RADIOLOGY
DOI: 10.1259/dmfr.20150177

关键词

dental pulp; periodontal ligament; apical foramen; salivary glands

资金

  1. German Federal Ministry for Economic Affairs and Energy, Central Innovation Program for SMEs (ZIM) [KF3259801CS3]

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Objectives: The purpose of this study was to design, build and test a multielement receive coil array and position system, which is optimized for three-dimensional (3D) high-resolution dental and maxillomandibular MRI with high patient comfort. Methods: A 14 + 1 coil array and positioning system, allowing easy handling by the technologists, reproducible positioning of the patients and high patient comfort, was tested with three healthy volunteers using a 3.0-T MRI machine (Siemens Skyra; Siemens Medical Solutions, Erlangen, Germany). High-resolution 3D T-1 weighted, water excitation T-1 weighted and fat-saturated T-2 weighted imaging sequences were scanned, and 3D image data were reformatted in different orientations and curvatures to aid diagnosis. Results: The high number of receiving coils and the comfortable positioning of the coil array close to the patient's face provided a high signal-to-noise ratio and allowed high quality, high resolution, 3D image data to be acquired within reasonable scan times owing to the possibility of parallel image acquisition acceleration. Reformatting the isotropic 3D image data in different views is helpful for diagnosis, e.g. panoramic reconstruction. The visibility of soft tissues such as the mandibular canal, nutritive canals and periodontal ligaments was exquisite. Conclusions: The optimized MRI receive coil array and positioning system for dental and oral-maxillofacial imaging provides a valuable tool for detecting and diagnosing pathologies in dental and oral-maxillofacial structures while avoiding radiation dose. The high patient comfort, as achieved by our design, is very crucial, since image artefacts due to movement or failing to complete the examination jeopardize the diagnostic value of MRI examinations.

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