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Updated: Jun 10, 2026

Registered Bioimaging of Nanomaterials for Diagnostic and Therapeutic Monitoring
Published on: December 9, 2010
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.
Abstract:
One of the hallmarks of diffusion NMR and MRI is its ability to utilize restricted diffusion to probe compartments much smaller than the excited volume or the MRI voxel, respectively, and to extract microstructural information from them. Single-pulsed field gradient (s-PFG) MR methodologies have been employed with great success to probe microstructures in various disciplines, ranging from chemistry to neuroscience. However, s-PFG MR also suffers from inherent shortcomings, especially when specimens are characterized by orientation or size distributions: in such cases, the microstructural information available from s-PFG experiments is limited or lost. Double-pulsed field gradient (d-PFG) MR methodology, an extension of s-PFG MR, has attracted attention owing to recent theoretical studies predicting that it can overcome certain inherent limitations of s-PFG MR. In this review, we survey the microstructural features that can be obtained from conventional s-PFG methods in the different q regimes, and highlight its limitations. The experimental aspects of d-PFG methodology are then presented, together with an overview of its theoretical underpinnings and a general framework for relating the MR signal decay and material microstructure, affording new microstructural parameters. We then discuss recent studies that have validated the theory using phantoms in which the ground truth is well known a priori, a crucial step prior to the application of d-PFG methodology in neuronal tissue. The experimental findings are in excellent agreement with the theoretical predictions and reveal, inter alia, zero-crossings of the signal decay, robustness towards size distributions and angular dependences of the signal decay from which accurate microstructural parameters, such as compartment size and even shape, can be extracted. Finally, we show some initial findings in d-PFG MR imaging. This review lays the foundation for future studies, in which accurate and novel microstructural information could be extracted from complex biological specimens, eventually leading to new forms of contrast in MRI.
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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