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Positron Emission Tomography Imaging for In Vivo Measuring of Myelin Content in the Lysolecithin Rat Model of Multiple Sclerosis
Published on: February 28, 2021
Macromolecular Proton Fraction as a Myelin Biomarker: Principles, Validation, and Applications
Alena A Kisel1,2, Anna V Naumova1, Vasily L Yarnykh1,2
1Department of Radiology, University of Washington, Seattle, WA, United States.
Abstract:
Macromolecular proton fraction (MPF) is a quantitative MRI parameter describing the magnetization transfer (MT) effect and defined as a relative amount of protons bound to biological macromolecules with restricted molecular motion, which participate in magnetic cross-relaxation with water protons. MPF attracted significant interest during past decade as a biomarker of myelin. The purpose of this mini review is to provide a brief but comprehensive summary of MPF mapping methods, histological validation studies, and MPF applications in neuroscience. Technically, MPF maps can be obtained using a variety of quantitative MT methods. Some of them enable clinically reasonable scan time and resolution. Recent studies demonstrated the feasibility of MPF mapping using standard clinical MRI pulse sequences, thus substantially enhancing the method availability. A number of studies in animal models demonstrated strong correlations between MPF and histological markers of myelin with a minor influence of potential confounders. Histological studies validated the capability of MPF to monitor both demyelination and re-myelination. Clinical applications of MPF have been mainly focused on multiple sclerosis where this method provided new insights into both white and gray matter pathology. Besides, several studies used MPF to investigate myelin role in other neurological and psychiatric conditions. Another promising area of MPF applications is the brain development studies. MPF demonstrated the capabilities to quantitatively characterize the earliest stage of myelination during prenatal brain maturation and protracted myelin development in adolescence. In summary, MPF mapping provides a technically mature and comprehensively validated myelin imaging technology for various preclinical and clinical neuroscience applications.
Insights
Macromolecular proton fraction (MPF) mapping is a validated MRI technique for myelin imaging. It offers insights into myelin in neurological conditions and brain development.
Area of Science:
- Neuroimaging
- Biophysics
- Quantitative MRI
Background:
- Macromolecular proton fraction (MPF) quantifies magnetization transfer effects.
- MPF represents protons bound to macromolecules with restricted motion.
- MPF is increasingly recognized as a key biomarker for myelin.
Purpose of the Study:
- To summarize MPF mapping methods.
- To review histological validation of MPF.
- To outline MPF applications in neuroscience.
Main Methods:
- MPF maps are generated using quantitative magnetization transfer (MT) methods.
- Feasibility demonstrated with standard clinical MRI sequences.
- Methods balance scan time, resolution, and clinical applicability.
Main Results:
- Strong correlations found between MPF and histological myelin markers in animal models.
- MPF accurately monitors demyelination and re-myelination.
- Clinical studies show MPF provides insights into white and gray matter pathology in multiple sclerosis.
Conclusions:
- MPF mapping is a technically mature and validated myelin imaging technology.
- MPF aids in understanding myelin's role in neurological disorders and brain development.
- MPF offers significant potential for preclinical and clinical neuroscience research.

