Literature DB >> 33144100

Double diffusion encoding and applications for biomedical imaging.

Rafael N Henriques1, Marco Palombo2, Sune N Jespersen3, Noam Shemesh1, Henrik Lundell4, Andrada Ianuş5.   

Abstract

Diffusion Magnetic Resonance Imaging (dMRI) is one of the most important contemporary non-invasive modalities for probing tissue structure at the microscopic scale. The majority of dMRI techniques employ standard single diffusion encoding (SDE) measurements, covering different sequence parameter ranges depending on the complexity of the method. Although many signal representations and biophysical models have been proposed for SDE data, they are intrinsically limited by a lack of specificity. Advanced dMRI methods have been proposed to provide additional microstructural information beyond what can be inferred from SDE. These enhanced contrasts can play important roles in characterizing biological tissues, for instance upon diseases (e.g. neurodegenerative, cancer, stroke), aging, learning, and development. In this review we focus on double diffusion encoding (DDE), which stands out among other advanced acquisitions for its versatility, ability to probe more specific diffusion correlations, and feasibility for preclinical and clinical applications. Various DDE methodologies have been employed to probe compartment sizes (Section 3), decouple the effects of microscopic diffusion anisotropy from orientation dispersion (Section 4), probe displacement correlations, study exchange, or suppress fast diffusing compartments (Section 6). DDE measurements can also be used to improve the robustness of biophysical models (Section 5) and study intra-cellular diffusion via magnetic resonance spectroscopy of metabolites (Section 7). This review discusses all these topics as well as important practical aspects related to the implementation and contrast in preclinical and clinical settings (Section 9) and aims to provide the readers a guide for deciding on the right DDE acquisition for their specific application.
Copyright © 2020 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Diffusion MRI; diffusion correlation tensor; double diffusion encoding; exchange; magnetic resonance spectroscopy; microscopic anisotropy; tissue microstructure

Year:  2020        PMID: 33144100     DOI: 10.1016/j.jneumeth.2020.108989

Source DB:  PubMed          Journal:  J Neurosci Methods        ISSN: 0165-0270            Impact factor:   2.390


  7 in total

Review 1.  Connectome 2.0: Developing the next-generation ultra-high gradient strength human MRI scanner for bridging studies of the micro-, meso- and macro-connectome.

Authors:  Susie Y Huang; Thomas Witzel; Boris Keil; Alina Scholz; Mathias Davids; Peter Dietz; Elmar Rummert; Rebecca Ramb; John E Kirsch; Anastasia Yendiki; Qiuyun Fan; Qiyuan Tian; Gabriel Ramos-Llordén; Hong-Hsi Lee; Aapo Nummenmaa; Berkin Bilgic; Kawin Setsompop; Fuyixue Wang; Alexandru V Avram; Michal Komlosh; Dan Benjamini; Kulam Najmudeen Magdoom; Sudhir Pathak; Walter Schneider; Dmitry S Novikov; Els Fieremans; Slimane Tounekti; Choukri Mekkaoui; Jean Augustinack; Daniel Berger; Alexander Shapson-Coe; Jeff Lichtman; Peter J Basser; Lawrence L Wald; Bruce R Rosen
Journal:  Neuroimage       Date:  2021-08-28       Impact factor: 7.400

Review 2.  Mapping the human connectome using diffusion MRI at 300 mT/m gradient strength: Methodological advances and scientific impact.

Authors:  Qiuyun Fan; Cornelius Eichner; Maryam Afzali; Lars Mueller; Chantal M W Tax; Mathias Davids; Mirsad Mahmutovic; Boris Keil; Berkin Bilgic; Kawin Setsompop; Hong-Hsi Lee; Qiyuan Tian; Chiara Maffei; Gabriel Ramos-Llordén; Aapo Nummenmaa; Thomas Witzel; Anastasia Yendiki; Yi-Qiao Song; Chu-Chung Huang; Ching-Po Lin; Nikolaus Weiskopf; Alfred Anwander; Derek K Jones; Bruce R Rosen; Lawrence L Wald; Susie Y Huang
Journal:  Neuroimage       Date:  2022-02-23       Impact factor: 7.400

3.  Accelerating joint relaxation-diffusion MRI by integrating time division multiplexing and simultaneous multi-slice (TDM-SMS) strategies.

Authors:  Yang Ji; W Scott Hoge; Borjan Gagoski; Carl-Fredrik Westin; Yogesh Rathi; Lipeng Ning
Journal:  Magn Reson Med       Date:  2022-01-28       Impact factor: 3.737

Review 4.  The present and the future of microstructure MRI: From a paradigm shift to normal science.

Authors:  Dmitry S Novikov
Journal:  J Neurosci Methods       Date:  2020-10-21       Impact factor: 2.390

5.  Separating Glioma Hyperintensities From White Matter by Diffusion-Weighted Imaging With Spherical Tensor Encoding.

Authors:  Jan Brabec; Faris Durmo; Filip Szczepankiewicz; Patrik Brynolfsson; Björn Lampinen; Anna Rydelius; Linda Knutsson; Carl-Fredrik Westin; Pia C Sundgren; Markus Nilsson
Journal:  Front Neurosci       Date:  2022-04-21       Impact factor: 5.152

6.  Evidence for microscopic kurtosis in neural tissue revealed by correlation tensor MRI.

Authors:  Rafael Neto Henriques; Sune N Jespersen; Noam Shemesh
Journal:  Magn Reson Med       Date:  2021-07-30       Impact factor: 3.737

7.  Diffusional Kurtosis Imaging in the Diffusion Imaging in Python Project.

Authors:  Rafael Neto Henriques; Marta M Correia; Maurizio Marrale; Elizabeth Huber; John Kruper; Serge Koudoro; Jason D Yeatman; Eleftherios Garyfallidis; Ariel Rokem
Journal:  Front Hum Neurosci       Date:  2021-07-19       Impact factor: 3.169

  7 in total

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