Nonparametric pore size distribution using d-PFG: comparison to s-PFG and migration to MRI.
نویسندگان
چکیده
Here we present the successful translation of a pore size distribution (PSD) estimation method from NMR to MRI. This approach is validated using a well-characterized MRI phantom consisting of stacked glass capillary arrays (GCA) having different diameters. By employing a double pulsed-field gradient (d-PFG) MRI sequence, this method overcomes several important theoretical and experimental limitations of previous single-PFG (s-PFG) based MRI methods by allowing the relative diffusion gradients' direction to vary. This feature adds an essential second dimension in the parameters space, which can potentially improve the reliability and stability of the PSD estimation. To infer PSDs from the MRI data in each voxel an inverse linear problem is solved in conjunction with the multiple correlation function (MCF) framework, which can account for arbitrary experimental parameters (e.g., long diffusion pulses). This scheme makes no a priori assumptions about the functional form of the underlying PSD. Creative use of region of interest (ROI) analysis allows us to create different underlying PSDs using the same GCA MRI phantom. We show that an s-PFG experiment on the GCA phantom fails to accurately reconstruct the size distribution, thus demonstrating the superiority of the d-PFG experiment. In addition, signal simulations corrupted by different noise levels were used to generate continuous and complex PSDs, which were then successfully reconstructed. Finally, owing to the reduced q- or b- values required to measure microscopic PSDs via d-PFG MRI, this method will be better suited to biomedical and clinical applications, in which gradient strength of scanners is limited.
منابع مشابه
Persistence of diffusion-diffraction features in double-PFG experiments conducted on size distribution phantoms
One of the most important attributes of diffusion NMR is that it can employ restricted diffusion to probe microstructures of opaque samples. The single-pulsed-field-gradient (s-PFG) methodology (Fig. 1A) employs a pair of diffusion-sensitizing PFGs that are separated by an interval in which the diffusion process takes place. When a specimen is characterized by a very narrow size distribution or...
متن کاملPore diameter mapping using double pulsed-field gradient MRI and its validation using a novel glass capillary array phantom.
Double pulsed-field gradient (d-PFG) MRI can provide quantitative maps of microstructural quantities and features within porous media and tissues. We propose and describe a novel MRI phantom, consisting of wafers of highly ordered glass capillary arrays (GCA), and its use to validate and calibrate a d-PFG MRI method to measure and map the local pore diameter. Specifically, we employ d-PFG Spin-...
متن کاملP27 Calibrating d-PFG Filtered MRI Using a Novel Anisotropic Diffusion Phantom
Diffusion Phantom Michal Komlosh 1, Evren Ozarslan 1, Martin Lizak 1, Ferenc Horkay 1, Peter Basser 1 1 National Institute of Health Introduction: Diffusion MRI methods can provide valuable microstructural in formation about tissues and porous media within an imaging volume [1-3], how ever, calibrating them is problematic owing to the lack of suitable anisotropic diffusion MRI phantoms. Here ...
متن کاملFrom single- to double-PFG: Gleaning new microstructural information in complex specimens
Introduction. Diffusion NMR and MRI have become the most important modalities for non-invasively probing tissue microstructures. To date, the single-pulsed-field-gradient (s-PFG) methodology has been the most widely used both in biomedicine and in porous media MR applications. In neuroscience, diffusion tensor imaging (DTI) has provided an excellent means to study coherently packed anisotropic ...
متن کاملMapping the pore size distribution of a glass microcapillary array phantom using d-PFG MRI
phantom using d-PFG MRI D. Benjamini M. E. Komlosh , P. J. Basser , U. Nevo STBB, PPITS, NICHD, NIH, Bethesda, MD; Department of Biomedical Engineering, The Iby and Aladar Fleischman Faculty of Engineering, Tel-Aviv University, Tel-Aviv, Israel. CNRM, USUHS, Bethesda, MD. Introduction: Noninvasive characterization of porous media is critical to many scientific and technical fields. Estimation ...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
- Journal of magnetic resonance
دوره 246 شماره
صفحات -
تاریخ انتشار 2014