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M C Ballesteros

Publications and source records attributed to M C Ballesteros.

2 recordsLinked to original sources

MR imaging of the developing human brain. Part 1. Prenatal development.

To establish a baseline of the magnetic resonance (MR) imaging appearance of the fetal brain in early stages of development, the authors undertook a study of fixed and fresh specimens of embryos and fetuses of 6-28 weeks gestational age. Images of formalin-preserved and fresh specimens were comparable in their depiction of anatomic structures. On MR images of embryos of 6 weeks gestational age, the rhombic and cervical flexures, aqueduct of Sylvius, diencephalon, cerebellum, cerebral hemisphere, and fourth ventricle could be differentiated. The optic recess and chiasm, pituitary gland, pineal recess, third ventricle, pons, olfactory lobe, corpus striatum, insula, and parietal and temporal lobes could be distinguished as early as 11 weeks gestation. Although MR imaging is impractical as a screening tool for intrauterine abnormalities, it can demonstrate the fetus in great detail and allows a more specific evaluation of fetal anatomy. With the information provided by MR imaging, it may be possible to establish guidelines for assessment of the stage of development during intrauterine life.

Brain↗

MR imaging of the developing human brain. Part 2. Postnatal development.

In vivo magnetic resonance (MR) images of the brain in neonates and infants up to 24 months of age were retrospectively studied to evaluate normal maturation patterns in the brain. Sequential changes in myelination of various brain structures and development of the corpus callosum were noted. At birth and for the first 4-6 months of life, signal intensities of gray and white matter are the reverse of those seen in an adult brain, with the signal intensity of white matter being lower than that of gray matter on T1-weighted images and higher than that of gray matter on T2-weighted images. With advancing age, white matter shows a progressive increase in signal intensity on T1-weighted images. On T2-weighted images, high-signal-intensity unmyelinated white matter progressively changes to myelinated white matter of a signal intensity lower than that of gray matter. At birth, the corpus callosum is isointense relative to white matter and progressively increases in signal intensity, so that at age 8 months the corpus callosum has an appearance identical to that of an adult. Familiarity with the temporal sequence of normal myelination as seen with MR imaging is helpful in the diagnosis of pathologic processes involving white matter.

Age Factors↗