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Updated: Sep 11, 2026

Improved Method for the Preparation of a Human Cell-based, Contact Model of the Blood-Brain Barrier
Published on: November 12, 2013
The development of the human blood-brain and blood-CSF barriers
Insights
The fetal blood-brain and blood-cerebrospinal fluid (CSF) barriers are mature from early development, contrary to common belief. High fetal CSF protein levels result from synthesis, not immature barriers.
Area of Science:
- Neuroscience
- Developmental Biology
- Physiology
Background:
- Fetal blood-brain and blood-cerebrospinal fluid (CSF) barriers are widely considered immature.
- High protein concentration in fetal CSF is often attributed to barrier immaturity.
Purpose of the Study:
- To review and re-evaluate the developmental maturity of fetal brain barrier systems.
- To investigate the morphological basis of brain barrier systems in developing humans.
Main Methods:
- Review of previous studies incorporating new data on axonal transport, circumventricular organs, and immunocytochemistry.
- Analysis of original data on human fetal brain barrier development using freeze-fracture and thin-section electron microscopy.
- Experiments with horseradish peroxidase in animal models.
Main Results:
- Brain barrier systems in chick, rat, and monkey are protein-tight from early development.
- Well-formed and complex tight junctions are present in cerebral endothelial and choroid plexus cells as soon as they differentiate.
- A novel barrier ('strap junctions') identified in the germinal matrix.
- High fetal CSF protein concentration is not explained by immature tight junctions.
Conclusions:
- Fetal brain barrier systems are mature and possess complex tight junctions early in development.
- High protein levels in fetal CSF are likely due to synthesis by the brain and choroid plexuses, not barrier immaturity.
- Revises the understanding of fetal brain barrier function and CSF protein regulation.
Abstract:
The commonly held belief that the fetal blood-brain and blood-CSF barriers are immature is reviewed. Results obtained from carefully conducted experiments with horseradish peroxidase and optimal freeze-fracturing suggest that the chick, rat and monkey brain barrier systems to proteins are tight from the earliest stages of development. Previous studies are reviewed in the light of new information on retrograde axonal transport, circumventricular organs, the proper use of horseradish peroxidase, freeze-fracturing, immunocytochemistry and plasma protein gene expression in the developing human brain. Original data on the development of human brain barrier systems are included. Tight junctions between cerebral endothelial and choroid plexus epithelial cells form the morphological basis for these systems. CSF in the fetus contains a remarkably high concentration of protein in contrast to adult CSF which is characterized by a very low protein concentration. This has previously been interpreted as due to immaturity of barriers in the fetal brain. Tight junctions between cerebral endothelial cells and between choroid plexus epithelial cells have been investigated in human embryos and fetuses by freeze fracture and thin section electron microscopy. As soon as the choroid plexus and the brain capillaries differentiated they exhibited well formed tight junctions. These junctions were very complex at early stages of development. A new barrier consisting of 'strap junctions' was found in the developing germinal matrix. The very high concentration of protein in early human fetal CSF cannot be accounted for by a lack of tight junctions in the developing brain barrier systems. Some transfer of proteins from blood to CSF, possibly via an intracellular route, has been demonstrated in immature experimental animals, but it seems that an important contribution to CSF proteins in the fetus may be synthesis by the developing brain and choroid plexuses with subsequent release into the CSF.
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