| Literature DB >> 34476861 |
Bili Wang1,2, Bei Zhang1,2,3, Zidan Yu1,2,4, Carlotta Ianniello1,2,4, Karthik Lakshmanan1,2, Jan Paska1,2, Guillaume Madelin1,4, Martijn Cloos1,2,4,5, Ryan Brown1,2,4.
Abstract
The objective of the current study was to design and build a dual-tuned coil array for simultaneous 23 Na/1 H MRI of the human brain at 7 T. Quality factor, experimental B1 + measurements, and electromagnetic simulations in prototypes showed that setups consisting of geometrically interleaved 1 H and 23 Na loops performed better than or similar to 1 H or 23 Na loops in isolation. Based on these preliminary findings, we built a transmit/receive eight-channel 23 Na loop array that was geometrically interleaved with a transmit/receive eight-channel 1 H loop array. We assessed the performance of the manufactured array with mononuclear signal-to-noise ratio (SNR) and B1 + measurements, along with multinuclear magnetic resonance fingerprinting maps and images. The 23 Na array within the developed dual-tuned device provided more than 50% gain in peripheral SNR and similar B1 + uniformity and coverage as a reference birdcage coil of similar size. The 1 H array provided good B1 + uniformity in the brain, excluding the cerebellum and brain stem. The integrated 23 Na and 1 H arrays were used to demonstrate truly simultaneous quantitative 1 H mapping and 23 Na imaging.Entities:
Keywords: magnetic resonance fingerprinting; simultaneous multinuclear MRI; sodium (23Na) MRI; ultrahigh field MRI
Mesh:
Substances:
Year: 2021 PMID: 34476861 PMCID: PMC9362999 DOI: 10.1002/nbm.4608
Source DB: PubMed Journal: NMR Biomed ISSN: 0952-3480 Impact factor: 4.478