IP Library Granted Patent US 9,625,548
Granted Patent B2
US 9,625,548 · App. 13/922,111 · Granted Apr 18, 2017

System and method for magnetic resonance imaging of intracranial vessel walls

Inventors: Bruce A. Wasserman (Baltimore, MD); Ye Qiao (Baltimore, MD)
Assignee: THE JOHNS HOPKINS UNIVERSITY
G01R33/4806G01R33/5635G01R33/4826G01R33/5607G01R33/5617
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Quick Facts
Patent No.
US 9,625,548
App. No.
13/922,111
Granted
Apr 18, 2017
Kind
B2
Abstract

A magnetic resonance imaging (MRI) system for intracranial vessel wall imaging. The MRI system includes a radio frequency (RF) coil system to irradiate radio frequency (RF) pulses into a region of interest and detect a plurality of RF response signals, and a signal processing unit adapted to analyze the plurality of RF response signals. The RF coil system arranges the RF pulses in a pulse sequence including an excitation pulse and refocusing pulses which induce corresponding flip angles. A minimum flip angle is in the range of 30 degrees to 65 degrees, and a maximum flip angle is in the range of 100 degrees to 150 degrees. The signal processing unit analyzes the RF response signals with a three-dimensional isotropic resolution of 500 cubic microns or less and orders the RF response signals in k-space to enhance contrast between intracranial vessel wall tissue and cerebrospinal fluid or blood.

Claims (33)

1. A magnetic resonance imaging (MRI) system for intracranial vessel wall imaging, comprising:

a main magnet providing a substantially uniform main magnetic field B 0 for a subject under observation;

a radio frequency (RF) coil system configured to irradiate a plurality of radio frequency (RF) pulses into a region of interest of said subject and to detect a plurality of RF response signals emitted from said region of interest; and

a signal processing unit in communication with said RF coil system adapted to analyze said plurality of RF response signals,

wherein said RF coil system arranges said plurality of RF pulses in a pulse sequence, said pulse sequence including an excitation pulse and a plurality of refocusing pulses inducing a corresponding plurality of flip angles, a minimum flip angle of said plurality of flip angles being in the range of 30 degrees to 65 degrees, and a maximum flip angle of said plurality of flip angles being in the range of 100 degrees to 150 degrees, and

wherein said signal processing unit orders said plurality of RF response signals such that the highest amplitude RF signals are located in a center of k-space in order to enhance contrast between intracranial vessel wall tissue and at least one of cerebrospinal fluid or blood.

2. The MRI system of claim 1 , wherein said pulse sequence has an echo time in the range of 25 milliseconds to 40 milliseconds.

3. The MRI system of claim 1 , wherein said pulse sequence has an echo train length in the range of 50 pulses to 65 pulses.

4. The MRI system of claim 1 , wherein a minimum flip angle of said plurality of flip angles is in the range of 45 degrees to 55 degrees, a maximum flip angle of said plurality of flip angles is in the range of 110 degrees to 130 degrees, and said pulse sequence has an echo time in the range of 35 milliseconds to 40 milliseconds and an echo train length in the range of 58 pulses to 62 pulses, and said signal processing unit analyzes said plurality of RF response signals with a three-dimensional isotropic resolution of 450 cubic microns or less.

5. The MRI system of claim 1 , wherein a minimum flip angle of said plurality of flip angles about 50 degrees, a maximum flip angle of said plurality of flip angles is about 120 degrees, said pulse sequence has an echo time of about 38 milliseconds and an echo train length of about 60 pulses, and said signal processing unit analyzes said plurality of RF response signals with a three-dimensional isotropic resolution of 400 cubic microns or less.

6. The MRI system of claim 1 , wherein a minimum flip angle of said plurality of flip angles about 50 degrees, a maximum flip angle of said plurality of flip angles is about 120 degrees, said pulse sequence has an echo time of about 38 milliseconds and an echo train length of about 60 pulses, and said signal processing unit analyzes said plurality of RF response signals with a three-dimensional isotropic resolution of 400 cubic microns or less.

7. A method for magnetic resonance imaging of intracranial vessel walls, comprising:

irradiating a plurality of RF pulses into a subject under observation,

recording a plurality of RF response signals from said subject under observation; and

analyzing the plurality of RF response signals,

wherein said plurality of RF pulses are arranged in a pulse sequence, said pulse sequence including an excitation pulse and a plurality of refocusing pulses inducing a corresponding plurality of flip angles, a minimum flip angle of said plurality of flip angles being in the range of 30 degrees to 65 degrees, and a maximum flip angle of said plurality of flip angles being in the range of 100 degrees to 150 degrees, and

wherein analyzing said RF response signals includes analyzing said plurality of RF response signals with an ordering said RF response signals such that the highest amplitude RF signals are located in a center of k-space in order to enhance contrast between intracranial vessel wall tissue and at least one of cerebrospinal fluid or blood.

8. The method of claim 7 , wherein said pulse sequence has an echo time in the range of 25 milliseconds to 40 milliseconds.

9. The method of claim 7 , wherein said pulse sequence has an echo train length in the range of 50 pulses to 65 pulses.

10. The method of claim 7 , wherein a minimum flip angle of said plurality of flip angles is in the range of 45 degrees to 55 degrees, a maximum flip angle of said plurality of flip angles is in the range of 110 degrees to 130 degrees, and said pulse sequence has an echo time in the range of 35 milliseconds to 40 milliseconds and an echo train length in the range of 58 pulses to 62 pulses, and analyzing said RF response signals includes analyzing said plurality of RF response signals with a three-dimensional isotropic resolution of 450 cubic microns or less.

11. The method of claim 7 , wherein a minimum flip angle of said plurality of flip angles about 50 degrees, a maximum flip angle of said plurality of flip angles is about 120 degrees, said pulse sequence has an echo time of about 38 milliseconds and an echo train length of about 60 pulses, and analyzing said RF response signals includes analyzing said plurality of RF response signals with a three-dimensional isotropic resolution of 400 cubic microns or less.

12. The method of claim 7 , wherein a minimum flip angle of said plurality of flip angles about 50 degrees, a maximum flip angle of said plurality of flip angles is about 120 degrees, said pulse sequence has an echo time of about 38 milliseconds and an echo train length of about 60 pulses, and analyzing said RF response signals includes analyzing said plurality of RF response signals with a three-dimensional isotropic resolution of 400 cubic microns or less.

13. A non-transitory computer readable medium comprising a program that, when executed, causes a computer to:

irradiate a plurality of RF pulses into a subject under observation,

record a plurality of RF response signals from said subject under observation; and

analyze the plurality of RF response signals,

wherein said plurality of RF pulses are arranged in a pulse sequence, said pulse sequence including an excitation pulse and a plurality of refocusing pulses inducing a corresponding plurality of flip angles, a minimum flip angle of said plurality of flip angles being in the range of 30 degrees to 65 degrees, and a maximum flip angle of said plurality of flip angles being in the range of 100 degrees to 150 degrees, and

wherein analyzing said RF response signals includes analyzing said plurality of RF response signals with an ordering said RF response signals such that the highest amplitude RF signals are located in a center of k-space in order to enhance contrast between intracranial vessel wall tissue and at least one of cerebrospinal fluid or blood.

14. The non-transitory computer readable medium of claim 13 , wherein said pulse sequence has an echo time in the range of 25 milliseconds to 40 milliseconds.

15. The non-transitory computer readable medium of claim 13 , wherein said pulse sequence has an echo train length in the range of 50 pulses to 65 pulses.

16. The non-transitory computer readable medium of claim 13 , wherein a minimum flip angle of said plurality of flip angles is in the range of 45 degrees to 55 degrees, a maximum flip angle of said plurality of flip angles is in the range of 110 degrees to 130 degrees, and said pulse sequence has an echo time in the range of 35 milliseconds to 40 milliseconds and an echo train length in the range of 58 pulses to 62 pulses, and analyzing said RF response signals includes analyzing said plurality of RF response signals with a three-dimensional isotropic resolution of 450 cubic microns or less.

17. The non-transitory computer readable medium of claim 13 , wherein a minimum flip angle of said plurality of flip angles about 50 degrees, a maximum flip angle of said plurality of flip angles is about 120 degrees, said pulse sequence has an echo time of about 38 milliseconds and an echo train length of about 60 pulses, and analyzing said RF response signals includes analyzing said plurality of RF response signals with a three-dimensional isotropic resolution of 400 cubic microns or less.

18. The non-transitory computer readable medium of claim 13 , wherein a minimum flip angle of said plurality of flip angles about 50 degrees, a maximum flip angle of said plurality of flip angles is about 120 degrees, said pulse sequence has an echo time of about 38 milliseconds and an echo train length of about 60 pulses, and analyzing said RF response signals includes analyzing said plurality of RF response signals with a three-dimensional isotropic resolution of 400 cubic microns or less.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2014
From: WASSERMAN, BRUCE A.; QIAO, YE
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 033055/0082 →
Continuity (2)
Provisional Application 61661520 · Jun 19, 2012
Related Publication 20130335083A1 · Dec 19, 2013