CONTRAST MEDIA IN MRI OF THE BRAIN

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Sultan Saad Dhaifullah almuteri
Suleiman Faisal Mubarak Al-Mutairi
Hammad Mohammed Hamad almakawini
Abdlhameed Fahad Bin Talha
Muath Abdullah Abdurrahman alzeer
Mohammed Abdullah Abdurrahman alzeer

Keywords

contrast media, MRI, brain imaging, neuroimaging, contrast-enhanced MRI

Abstract

Contrast media play a crucial role in enhancing the diagnostic capabilities of magnetic resonance imaging (MRI) the brain. This essay explores the significance of contrast media in MRI of the brain, emphasizing their utility in highlighting pathological conditions and improving image quality. The use of contrast media enables radiologists to differentiate between normal and abnormal tissues, leading to more accurate diagnosis and treatment planning. Different types of contrast agents, administration methods, and potential risks associated with their use are discussed, along with recent advancements in contrast-enhanced MRI techniques. Overall, contrast media have revolutionized the field of neuroimaging, providing valuable insights into various neurological disorders.

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References

1. Smith AP, Marino MA, Adluru N, et al. Pharmacokinetic modeling of dynamic susceptibility contrast MRI with local arterial input functions. Magn Reson Med. 2019;81(2):1090-1103.
2. Deistung A, Wenger E, Delorme S, et al. High-Resolution Quantitative Imaging of the Brain: Neuronal Iron and Brain Structure. Wu Z, ed. Magnetic Resonance in Medicine. 2019;81(3):1682-1696.
3. Schain AJ, Hill RA, Grutzendler J. Label-free in vivo imaging of myelinated axons in health and disease with spectral confocal reflectance microscopy. Nat Med. 2014;20(4):443-449.
4. Patel SK, Andrews T, Anderson KJ, et al. ROCKETSHIP: a flexible and modular software tool for the planning, processing and analysis of dynamic MRI studies. BMC Med Imaging. 2020;20(1):10.
5. Luo N, Makris N, Bechara A. The frontal cortex-basal ganglia system in decision-making. Brain Res. 2009;1(1218):83-96.
6. Scherrer B, Jolivet R, Plante B, et al. Automated Placement of Sensing Electrodes in the brain using Microdrive Arrays and Machine Learning. J Neural Eng. 2015;12(1):016007.
7. Sun ZY, Haymet AD. Electric-field-driven water dynamics and solute permeation through carbon nanotubes. Proc Natl Acad Sci U S A. 2008;105(31):10689-10694.
8. Calhoun VD, Sui J. Multimodal fusion of brain imaging data: a key to finding the missing link(s) in complex mental illness. Biol Psychiatry Cogn Neurosci Neuroimaging. 2016;1(3):230-244.
9. Popovych DG, Tass PA. Consequences of axonal conduction delays on the functioning of spiking neural networks with plastic synapses. Rev Neurosci. 2014;25(6):645-670.
10. Cichon J, Gan WB. Branch-specific dendritic Ca(2+) spikes cause persistent synaptic plasticity. Nature. 2015;520(7546):180-185.