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PMID: 5499754 Published · ppublish English Journal Article

The ontogenesis of haematoencephalic cation transport processes in the rhesus monkey.

The Journal of physiology ·Vol. 208 ·No. 1 ·1970-05-00 ·Pages 153-70

Bito LZ, Myers RE

Abstract

1. This investigation was undertaken to determine the time course of development of cation transport processes between blood and the extracellular fluid compartments of the central nervous system (C.N.S.) of the foetal rhesus monkey. The development of concentration gradients within the cerebrospinal fluid (c.s.f.) system was also studied in an attempt to gain information on regional variations in transport activities.2. Cerebrospinal fluid samples were obtained from the lateral ventricle, the cisterna magna, the cortical subarachnoid space and the lumbar region of the spinal subarachnoid space of adult monkeys. Foetal c.s.f. samples were obtained from the cisterna magna and the frontal region of the cortical subarachnoid space. Blood samples were taken within 3-10 min of the c.s.f. samples. The concentration of K, Mg and Ca were determined on appropriately diluted samples by atomic absorption spectrophotometry.3. The concentrations of K, Mg, and Ca in the plasma and c.s.f.s of the adult monkey are similar to those of other mammalian species. The c.s.f./blood concentration gradients of these cations are in the same direction but generally of greater magnitude than those in non-primate mammals. The indicated [Mg] in the extracellular fluid of the adult monkey's cerebral cortex is high (more than 2 m-equiv/kg H(2)O) and the [K] is low (less than 2 m-equiv/kg H(2)O).4. Accumulation of Mg into the c.s.f. system against a concentration gradient is evident in the earliest foetuses studied (50 days of intrauterine life) and by the second half of gestation the concentration gradients of this cation are similar to that of the adult.5. In the second trimester foetus, the [K] in the cisternal fluid is near the plasma ultrafiltrate level. It then decreases gradually throughout the remainder of gestation, approximating the adult value at birth.6. The very low [K] typical of the adult cortical subarachnoid fluid is observed by the sixth month following birth but not during foetal life or within the first few weeks of post-natal life. This indicates that the transport processes at the cortical region of the haematoencephalic interphase do not fully develop until well after birth.7. It is concluded that the various transport processes responsible for the elaboration and maintenance of adult type of K, Ca and Mg concentrations within the extracellular fluid compartments of the monkey C.N.S. do not develop at the same time. This temporal dissociation provides strong evidence against any direct association or coupling between the haematoencephalic K and Mg transport systems.8. Existence of normal cation concentration gradients between c.s.f. and blood may serve as a criterion for the normality of the (foetal) blood-brain barrier.

MeSH Terms
Age Factors Animals Biological Transport Blood-Brain Barrier Calcium/blood,cerebrospinal fluid Cerebral Cortex/analysis Cisterna Magna/analysis
Chemicals
Calcium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Bito L Z
Myers R E
References (13)
13 references, click to expand
  1. Local variations in cerebrospinal fluid composition and its relationship to the composition of the extracellular fluid of the cortex.
    Exp Neurol. 1966 Mar;14(3):264-80 PMID: 4951842
  2. CELLULAR AND EXTRACELLULAR SPACES IN DEVELOPING RAT BRAIN. RADIOACTIVE UPTAKE STUDIES WITH CHLORIDE AND INULIN.
    Arch Neurol. 1965 Mar;12:284-93 PMID: 14247387
  3. Active transport of sodium as the source of electric current in the short-circuited isolated frog skin.
    Acta Physiol Scand. 1951 Aug 25;23(2-3):110-27 PMID: 14868510
  4. Intracranial haemorrhage and blood-brain barrier problems in the new-born; a pathologico-anatomical and experimental investigation.
    Acta Pathol Microbiol Scand Suppl. 1954;100:8-109 PMID: 13147885
  5. Ionic environment of neurones and glial cells in the brain of an amphibian.
    J Physiol. 1968 Jul;197(2):363-80 PMID: 5716849
  6. Calcium and magnesium in human cerebrospinal fluid.
    Nature. 1960 Apr 9;186:161-2 PMID: 14405454
  7. Histogenesis of choroid plexus in man.
    Am J Anat. 1966 Jan;118(1):283-316 PMID: 5915034
  8. Stability of the potassium content of cerebrospinal fluid and brain.
    Am J Physiol. 1967 Aug;213(2):519-28 PMID: 6036340
  9. Effects of Pco2 acetazolamide and ouabain on volume and composition of choroid-plexus fluid.
    J Physiol. 1965 Dec;181(3):516-24 PMID: 5880375
  10. NA, K, CA, MG, AND C1 CONCENTRATIONS IN CHOROID PLEXUS FLUID AND CISTERNAL FLUID COMPARED WITH PLASMA ULTRAFILTRATE.
    J Neurophysiol. 1964 Jul;27:672-81 PMID: 14194965
  11. Protein measurement with the Folin phenol reagent.
    J Biol Chem. 1951 Nov;193(1):265-75 PMID: 14907713
  12. Developing blood brain barrier to trypan blue.
    Proc Soc Exp Biol Med. 1957 Apr;94(4):758-60 PMID: 13431946
  13. Factors affecting the distribution of iodide and bromide in the central nervous system.
    J Physiol. 1966 Jul;185(2):323-54 PMID: 16992225
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1970-05-00
Pages
153-70
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1348777
Subset
IM
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