Your browser doesn't support javascript.
loading
Practical considerations of diffusion-weighted MRS with ultra-strong diffusion gradients.
Davies-Jenkins, Christopher W; Döring, André; Fasano, Fabrizio; Kleban, Elena; Mueller, Lars; Evans, C John; Afzali, Maryam; Jones, Derek K; Ronen, Itamar; Branzoli, Francesca; Tax, Chantal M W.
Afiliación
  • Davies-Jenkins CW; The Russell H. Morgan Department of Radiology and Radiological Science, Johns Hopkins University School of Medicine, Baltimore, MD, United States.
  • Döring A; Kirby Research Center for Functional Brain Imaging, Kennedy Krieger Institute, Baltimore, MD, United States.
  • Fasano F; Cardiff University Brain Research Imaging Centre, Cardiff University, Cardiff, United Kingdom.
  • Kleban E; Cardiff University Brain Research Imaging Centre, Cardiff University, Cardiff, United Kingdom.
  • Mueller L; CIBM Center for Biomedical Imaging, EPFL CIBM-AIT, EPFL Lausanne, Lausanne, Switzerland.
  • Evans CJ; Cardiff University Brain Research Imaging Centre, Cardiff University, Cardiff, United Kingdom.
  • Afzali M; Siemens Healthcare Ltd., Camberly, United Kingdom.
  • Jones DK; Cardiff University Brain Research Imaging Centre, Cardiff University, Cardiff, United Kingdom.
  • Ronen I; Department of Radiology, Universität Bern, Bern, Switzerland.
  • Branzoli F; Cardiff University Brain Research Imaging Centre, Cardiff University, Cardiff, United Kingdom.
  • Tax CMW; Leeds Institute of Cardiovascular & Metabolic Medicine, University of Leeds, Leeds, United Kingdom.
Front Neurosci ; 17: 1258408, 2023.
Article en En | MEDLINE | ID: mdl-38144210
ABSTRACT

Introduction:

Diffusion-weighted magnetic resonance spectroscopy (DW-MRS) offers improved cellular specificity to microstructure-compared to water-based methods alone-but spatial resolution and SNR is severely reduced and slow-diffusing metabolites necessitate higher b-values to accurately characterize their diffusion properties. Ultra-strong gradients allow access to higher b-values per-unit time, higher SNR for a given b-value, and shorter diffusion times, but introduce additional challenges such as eddy-current artefacts, gradient non-uniformity, and mechanical vibrations.

Methods:

In this work, we present initial DW-MRS data acquired on a 3T Siemens Connectom scanner equipped with ultra-strong (300 mT/m) gradients. We explore the practical issues associated with this manner of acquisition, the steps that may be taken to mitigate their impact on the data, and the potential benefits of ultra-strong gradients for DW-MRS. An in-house DW-PRESS sequence and data processing pipeline were developed to mitigate the impact of these confounds. The interaction of TE, b-value, and maximum gradient amplitude was investigated using simulations and pilot data, whereby maximum gradient amplitude was restricted. Furthermore, two DW-MRS voxels in grey and white matter were acquired using ultra-strong gradients and high b-values.

Results:

Simulations suggest T2-based SNR gains that are experimentally confirmed. Ultra-strong gradient acquisitions exhibit similar artefact profiles to those of lower gradient amplitude, suggesting adequate performance of artefact mitigation strategies. Gradient field non-uniformity influenced ADC estimates by up to 4% when left uncorrected. ADC and Kurtosis estimates for tNAA, tCho, and tCr align with previously published literature.

Discussion:

In conclusion, we successfully implemented acquisition and data processing strategies for ultra-strong gradient DW-MRS and results indicate that confounding effects of the strong gradient system can be ameliorated, while achieving shorter diffusion times and improved metabolite SNR.
Palabras clave

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Front Neurosci Año: 2023 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Front Neurosci Año: 2023 Tipo del documento: Article País de afiliación: Estados Unidos