IP Library Granted Patent US 12,730,171
Granted Patent B2
US 12,730,171 · App. 18/402,720 · Granted Sep 8, 2026

System and method for distortion and motion artifact-free diffusion imaging using single-shot diffusion-prepared turbo-spin-echo sequence with spiral-ring readouts and magnitude stabilizers

Inventors: Zhixing Wang (Charlottesville, VA); John P. Mugler, III (Charlottesville, VA); Craig H. Meyer (Charlottesville, VA)
Assignee: University of Virginia Patent Foundation
G01R33/56341G01R33/5608G01R33/5617G01R33/56509
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Quick Facts
Patent No.
US 12,730,171
App. No.
18/402,720
Granted
Sep 8, 2026
Kind
B2
Abstract

Acquiring magnetic resonance imaging (MRI) data includes steps of using a computer to implement software program steps in a diffusion preparation software component and a spiral ring echo readout software component. The method implements the diffusion preparation software component by (i) applying at least a first diffusion gradient and a last diffusion gradient along a selected direction; and (ii) applying a magnitude stabilizer gradient, along said selected direction, after the last diffusion gradient. The method implements the spiral ring echo readout software component by (i) applying a rephasing gradient along said selected direction after a refocusing RF pulse; (ii) applying a dephasing gradient along said selected direction prior to a subsequent refocusing RF pulse; and (iii) acquiring spiral ring echo readout data between the refocusing RF pulse and the subsequent refocusing RF pulse.

Claims (32)

1 . A computer implemented method of acquiring magnetic resonance imaging (MRI) data, the method comprising:

using a computer including a processor and computer memory to implement software program steps in a diffusion preparation software component and a spiral ring echo readout software component;

implementing the diffusion preparation software component by:

applying at least a first diffusion gradient and a last diffusion gradient along a selected direction; and

applying a magnitude stabilizer gradient, along said selected direction, after the last diffusion gradient;

implementing the spiral ring echo readout software component by:

applying a rephasing gradient along said selected direction after a refocusing RF pulse;

applying a dephasing gradient along said selected direction prior to a subsequent refocusing RF pulse; and

acquiring spiral ring echo readout data between the refocusing RF pulse and the subsequent refocusing RF pulse;

storing the spiral ring echo readout data in k-space encoding:

computing apparent diffusion coefficient (ADC) maps from the k-space encoding.

2 . The computer implemented method of claim 1 , further comprising:

sequentially applying the rephasing gradient after successive refocusing RF pulses and sequentially applying the dephasing gradient prior to successive refocusing RF pulses in the pulse sequence; and

acquiring additional spiral ring echo readout data between the rephasing gradients and the dephasing gradients.

3 . The computer implemented method of claim 1 , further comprising applying a 90 degree tip-up RF pulse after applying the magnitude stabilizer gradient, wherein the 90 degree tip-up RF pulse flips a diffusion-encoded signal back to a respective longitudinal axis.

4 . The computer implemented method of claim 1 , further comprising applying spoiler gradients to a diffusion encoded signal, along said selected direction, after implementing the diffusion preparation software component.

5 . The computer implemented method of claim 1 , wherein the image data is acquired in a single shot acquisition.

6 . The computer implemented method of claim 1 , wherein the image data is acquired in a turbo-spin-echo (TSE) sequence.

7 . The computer implemented method of claim 1 , wherein implementing the diffusion preparation software component further comprises applying RF pulses, wherein a slice thickness of the RF pulses is larger than that of the refocusing RF pulses applied during signal acquisition.

8 . The computer implemented method of claim 7 , wherein the slice thickness of the RF pulses applied by the diffusion preparation software component are 1.5 times as large as that for the refocusing RF pulses applied during signal acquisition.

9 . The computer implemented method of claim 1 , further comprising reconstructing the images of the MRI from the k-space utilizing a non-uniform Fast Fourier Transform (NUFFT).

10 . A computerized system for acquiring magnetic resonance imaging (MRI) data, the system comprising:

a computer including a processor and computer memory connected to a magnetic gradient source to implement software program steps in a diffusion preparation software component and a spiral ring echo readout software component, wherein the computer implements a computerized method comprising:

implementing the diffusion preparation software component by:

applying at least a first diffusion gradient and a last diffusion gradient along a selected direction; and

applying a magnitude stabilizer gradient, along said selected direction, after the last diffusion gradient;

implementing the spiral ring echo readout software component by:

applying a rephasing gradient along said selected direction after a refocusing RF pulse;

applying a dephasing gradient along said selected direction prior to a subsequent refocusing RF pulse; and

acquiring spiral ring echo readout data between the refocusing RF pulse and the subsequent refocusing RF pulse;

storing the spiral ring echo readout data in k-space encoding

computing apparent diffusion coefficient (ADC) maps from the spiral ring echo readout data in k-space format.

Continuity (2)
Provisional Application 63436680 · Jan 2, 2023
Related Publication 20240219501A1 · Jul 4, 2024
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