Search PubMed⌕ Search

PubMed · 16410173

Multiple echo diffusion tensor acquisition technique.

Abstract

The standard method of diffusion tensor imaging (DTI) involves one diffusion-sensitizing gradient direction per acquired signal. This paper describes an alternative method in which the entire direction set required for calculating the diffusion tensor is captured in a few scans. In this method, a series of radiofrequency (RF) pulses are applied, resulting in a train of spin echoes. A pattern of applied magnetic field gradients between the RF pulses generates a different diffusion weighting in both magnitude and direction for each echo, resulting in a dataset sufficient to determine the tensor. This significantly reduces the time required for a full DTI scan and potentially allows a tradeoff of this time for image quality. In the present work, this method is demonstrated in an anisotropic diffusion phantom (asparagus).

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Eric E Sigmund, Yi-Qiao Song. 2005-12-19. Multiple echo diffusion tensor acquisition technique.. https://doi.org/10.1016/j.mri.2005.10.015

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Fracture toughness estimation for the TMJ disc.

J contour integral fracture toughness of the temporomandibular (TMJ) disc was estimated from a computational model based on fracture load data derived from experimental tests. The computational model involved a stress analysis of TMJ disc specimens with cracks oriented parallel and perpendicular to the primary collagen fiber axis within the intermediate zone of the disc. The results demonstrated differences occurred between crack orientations when an orthotropic model was used. Fracture toughness was much lower for a crack oriented parallel to the collagen fiber direction than that for a crack oriented perpendicularly. Thickness, crack size, and anisotropy ratio were observed as additional variables affecting the fracture toughness of the TMJ disc. Future model enhancements may be achieved by considering the poroviscoelastic nature of the TMJ disc.

Anisotropy↗

Effect of photonic crystal structure on the nonlinear optical anisotropy of birefringent porous silicon.

Anisotropic photonic crystal structures consisting of birefringent porous silicon layers with alternating porosity were fabricated. The in-plane birefringence formed as a result of anisotropic etching in Si(110) results in unique multilayered structures with two distinct photonic bandgaps for orthogonal light polarizations. Nonlinear optical studies based on the third-harmonic generation from these structures demonstrate variation in the symmetry of the nonlinear optical response.

Anisotropy↗

Aggregation of the amphipathic peptides (AAKA)n into antiparallel beta-sheets.

Helical wheel projections of peptides based on the repeating unit Ac-(AAKA)n-NH2 clearly illustrate an amphipathic nature. One should therefore expect these peptides to form helices if the number of residues exceeds a certain threshold value. Indeed, ECD measurements show that Ac-(AAKA)4-NH2 and, to a minor extent, also Ac-(AAKA)3-NH2 exhibit some helical content at millimolar concentrations in aqueous solution. Surprisingly, however, these peptides were found to form hydrogels with an antiparallel beta-sheet conformation at centimolar concentrations. This occurs despite the positively charged lysine side chain which would be expected to inhibit the formation of extended beta-sheet layers.

Anisotropy↗