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Establishing and Comparing the Normal Apparent Diffusion Coefficient Values of Fetal Organs and Placenta Using 1.5 Tesla and 3.0 T MRI at Various Gestational Age

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Specialty Health Services
Date 2024 May 24
PMID 38784210
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Abstract

Background: Diffusion-weighted imaging (DWI) is the random Brownian motion of water molecules within a tissue voxel. The apparent diffusion coefficient (ADC) is a quantitative parameter calculated from the DWI that directly reflects the mobility of water molecules in biological tissues. The objective of this study was to establish and compare the normal reference ADC values of fetal organs and the placenta using 1.5 T and 3.0 T MRI at various gestational ages.

Methods: This was a retrospective and prospective observational study. This study included one hundred and three (103) singleton pregnancies for each magnetic field strength. Diffusion-weighted imaging was performed using single-shot spin-echo-planar imaging (EPI) in the axial plane of the fetal head-trunk with a slice thickness of 4mm and diffusion gradient values of b = 0 and b = 700-800 s/mm.

Results: The mean ADC values of cerebral WM areas were significantly higher than the deep grey areas in the brain. The white-matter regions, lung, and placenta showed a positive and significant correlation with increasing gestational age in both field strengths. A statistically weak negative correlation was observed between increasing gestational age and ADC measurements obtained in the thalamus, cerebellum, pons, and kidney.

Conclusion: This study gives the reference values for both 1.5T and 3T MRI of vital organs. The current study shows that diffusion-weighted MRI can offer a promising technique to evaluate the structural development of fetal organs and can potentially act as a biomarker for predicting the functionality of the fetal organs in abnormalities.

Citing Articles

Dynamic Contrast Enhanced-MRI and Apparent Diffusion Coefficient Quantitation for Differentiate Hepatocellular Carcinoma from Hepatocellular Adenoma.

Alareer H, Taher H, Abdullah A Asian Pac J Cancer Prev. 2024; 25(3):931-937.

PMID: 38546075 PMC: 11152382. DOI: 10.31557/APJCP.2024.25.3.931.

References
1.
Manganaro L, Fierro F, Tomei A, La Barbera L, Savelli S, Sollazzo P . MRI and DWI: feasibility of DWI and ADC maps in the evaluation of placental changes during gestation. Prenat Diagn. 2010; 30(12-13):1178-84. DOI: 10.1002/pd.2641. View

2.
Birhanu K, Tesfaye W, Berhane M . Congenital Anomalies in Neonates Admitted to a Tertiary Hospital in Southwest Ethiopia: A Cross Sectional Study. Ethiop J Health Sci. 2022; 31(6):1155-1162. PMC: 8968368. DOI: 10.4314/ejhs.v31i6.10. View

3.
Krishnamurthy U, Neelavalli J, Mody S, Yeo L, Jella P, Saleem S . MR imaging of the fetal brain at 1.5T and 3.0T field strengths: comparing specific absorption rate (SAR) and image quality. J Perinat Med. 2014; 43(2):209-20. PMC: 5987203. DOI: 10.1515/jpm-2014-0268. View

4.
Razek A, Thabet M, Salam E . Apparent Diffusion Coefficient of the Placenta and Fetal Organs in Intrauterine Growth Restriction. J Comput Assist Tomogr. 2019; 43(3):507-512. DOI: 10.1097/RCT.0000000000000844. View

5.
Yuan X, Yue C, Yu M, Chen P, Du P, Shao C . Fetal brain development at 25-39 weeks gestational age: A preliminary study using intravoxel incoherent motion diffusion-weighted imaging. J Magn Reson Imaging. 2019; 50(3):899-909. DOI: 10.1002/jmri.26667. View