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Suspensional reaggregates of human foetal neocortex and tegmentum as objects of neurotransplantation.

Suspensional reaggregates were obtained from human neocortical and tegmental anlagen (7 weeks of gestation), using 0.1% tripsin solution, and cultivated in Medium 199. Suspensional reaggregates, formed after 2 days in vitro, were grafted into the Wistar rat striatum. Incipient stages of histogenesis in the reaggregates and their interaction with host brain were investigated using light and electron microscopy, with antibodies against vimentin, glial fibrillary acidic protein (GFAP), proliferating cell nuclear antigen (PCNA), ferritin, as well as lectin ricinus communis agglutinin (RCA). The reaggregates showed a low level of tissue organisation. An intermediate condition between suspension and the true tissue could be observed in them. These reaggregates had two evident features: a rather irregular cell arrangement (without parallel bundles of radial glia), and the presence of special intercellular junctions. Some cells made up fragments of neuroepithelial sheet in the form of true rosettes. The one-week-old grafts were integrated with the host brain as well as dissociated and contained host astrocytes. Degenerated cells and detritus appeared rarely. The data of this work let us conclude that the suspensional aggregate grafting combines some advantages of suspensional and solid grafting methods.

Animals↗

[Formation of neocortex in rats after prenatal hypoxia].

Exposure of pregnant rats to the atmosphere containing 7.56% of oxygen for one hour was found to cause the disturbances in the nerve system development in their offspring. The exposure to acute hypoxia at days 13 or 16 of embryonic development induced an attenuation and underdevelopment of brain cortical layers, disturbances in cell orientation and differentiation, i.e. caused the modifications of basic histogenetic processes that were active during this period, including proliferation, migration and differentiation, thus resulting in the changes of structural characteristics of neocortical layers. The effect of hypoxia during the later fetal period--at day 19 of embryonic development, when cell proliferation in the brain ceases while the processes of differentiation are enhanced,--is less damaging. The cortical layers formed in experimental animals are not significantly different from those in control rats, however the death of individual neurons and gliocytes takes place.

Animals↗

Nonrenewal of neurons in the cerebral neocortex of adult macaque monkeys.

The concept that, after developmental periods, neocortical neurons become numerically stable and are normally nonrenewable has been challenged by a report of continuous neurogenesis in the association areas of the cerebral cortex in the adult Macaque monkey. Therefore, we have reexamined this issue in two different Macaque species using the thymidine analog bromodeoxyuridine (BrdU) as an indicator of DNA replication during cell division. We found several BrdU+/NeuN+ (neuronal nuclei) double-labeled cells, but cortical neurons, distinguished readily by their size and cytological and immunohistochemical properties, were not BrdU positive. We examined in detail the frontal cortex, where it is claimed that the largest daily addition of neurons has been made, but did not see migratory streams or any sign of addition of new neurons. Thus, we concluded that, in the normal condition, cortical neurons of adult primates, similar to other mammalian species, are neither supplemented nor renewable.

Age Factors↗

Dead-space microdomains hinder extracellular diffusion in rat neocortex during ischemia.

During ischemia, the transport of molecules in the extracellular space (ECS) is obstructed in comparison with healthy brain tissue, but the cause is unknown. Extracellular tortuosity (lambda), normally 1.6, increases to 1.9 in ischemic thick brain slices (1000 microm), but drops to 1.5 when 70,000 Mr dextran (dex70) is added to the tissue as a background macromolecule. We hypothesized that the ischemic increase in lambda arises from diffusion delays in newly formed dead-space microdomains of the ECS. Accordingly, lambda decreases when dead-space diffusion is eliminated by trapping dex70 in these microdomains. We tested our hypothesis by analyzing the diffusion of several molecules in neocortical slices. First we showed that diffusion of fluorescent dex70 in thick slices declined over time, indicating the entrapment of background macromolecules. Next, we measured diffusion of tetramethylammonium (TMA+) (74 Mr) to show that the reduction of lambda depended on the size of the background macromolecule. The synthetic polymer, 40,000 Mr polyvinylpyrrolidone, reduced lambda in thick slices, whereas 10,000 Mr dextran did not. The dex70 was also effective in normoxic slices (400 microm) after hypoosmotic stress altered the ECS to mimic ischemia. Finally, the dex70 effect was confirmed independently of TMA+ using fluorescent 3000 Mr dextran as a diffusion marker in thick slices: lambda decreased from 3.29 to 2.44. Taken together, these data support our hypothesis and offer a novel explanation for the origin of the large lambda observed in ischemic brain. A semiquantitative model of dead-space diffusion corroborates this new interpretation of lambda.

Animals↗