From single-pulsed field gradient to double-pulsed field gradient MR: gleaning new microstructural information and

Noam Shemesh1, Evren Ozarslan, Michal E Komlosh

  • 1School of Chemistry, The Raymond and Beverly Sackler Faculty of Exact Sciences, Tel Aviv University, Tel Aviv, Israel.

NMR in Biomedicine
|August 7, 2010
PubMed

Insights

Double-pulsed field gradient (d-PFG) MR overcomes limitations of single-pulsed field gradient (s-PFG) MR, enabling accurate microstructural parameter extraction. This advanced diffusion MRI technique reveals compartment size and shape, even with size distributions.

Area of Science:

  • Magnetic Resonance Imaging (MRI)
  • Diffusion MRI
  • Neuroscience
  • Materials Science

Background:

  • Diffusion NMR and MRI leverage restricted diffusion to probe microstructures.
  • Single-pulsed field gradient (s-PFG) MR is widely used but limited by orientation or size distributions.
  • Double-pulsed field gradient (d-PFG) MR offers potential solutions to s-PFG limitations.

Purpose of the Study:

  • To review microstructural information obtainable from s-PFG MR and its limitations.
  • To present the experimental aspects and theoretical underpinnings of d-PFG MR.
  • To highlight d-PFG's ability to extract accurate microstructural parameters from complex specimens.

Main Methods:

  • Survey of microstructural features from conventional s-PFG methods.
  • Presentation of experimental aspects and theoretical framework of d-PFG MR.
  • Validation of d-PFG theory using phantoms with known ground truth.

Main Results:

  • d-PFG MR overcomes limitations of s-PFG MR, particularly with size distributions.
  • Experimental findings show excellent agreement with theoretical predictions.
  • Accurate microstructural parameters, including compartment size and shape, can be extracted.

Conclusions:

  • d-PFG MR methodology provides new microstructural parameters and overcomes s-PFG limitations.
  • The technique shows robustness towards size distributions and reveals angular dependences.
  • d-PFG MR holds promise for extracting novel microstructural information from biological specimens and enhancing MRI contrast.

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