Literature DB >> 16848154

Transient cellular structures in developing corpus callosum of the human brain.

Natasa Jovanov-Milosević1, Vesna Benjak, Ivica Kostović.   

Abstract

The corpus callosum connects two cerebral hemispheres as the most voluminous fiber system in the human brain. The developing callosal fibers originate from immature pyramidal neurons, grow through complex pathways and cross the midline using different substrates in transient fetal structures. We analyzed cellular structures in the human corpus callosum on postmortem brains from the age of 18 weeks post conception to adult, using glial fibrillary acidic protein, neuron-specific nuclear protein, and chondroitin sulphate immunocytochemistry. We found the presence of transient cellular structures, callosal septa, which divide major fiber bundles and ventrally merge with subcallosal zone forming grooves for callosal axons. The callosal septa are composed of glial fibrillary acidic protein reactive meshwork, neurones and the chondroitin sulphate immunoreactive extracellular matrix. The developmental window of prominence of the callosal septa is between 18-34 weeks post conception which corresponds to the period of most intensive growth of callosal axons in human. During the early postnatal period the callosal septa become thinner and shorter, lose their neuronal and chondroitin sulphate content. In conclusion, transient expression of neuronal, glial and extracellular, growing substrate in the callosal septa, as septa itself, indicates their role in guidance during intensive growth of callosal fibers in the human brain. These findings shed some light on the complex morphogenetic events during the growth of the corpus callosum and represent normative parameters necessary for studies of structural plasticity after perinatal lesions.

Entities:  

Mesh:

Year:  2006        PMID: 16848154

Source DB:  PubMed          Journal:  Coll Antropol        ISSN: 0350-6134


  6 in total

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4.  Growth of the human corpus callosum: modular and laminar morphogenetic zones.

Authors:  Natasa Jovanov-Milosević; Marko Culjat; Ivica Kostović
Journal:  Front Neuroanat       Date:  2009-06-09       Impact factor: 3.856

5.  fMRI reveals neural activity overlap between adult and infant pain.

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Journal:  Elife       Date:  2015-04-21       Impact factor: 8.140

6.  After over 200 years, 7 T magnetic resonance imaging reveals the foliate structure of the human corpus callosum in vivo.

Authors:  Christopher J Wiggins; Andreas Schäfer; Bibek Dhital; Denis Le Bihan; Robert Turner
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  6 in total

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