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Biomedical subjects

M D Habgood

Publications and source records attributed to M D Habgood.

13 recordsLinked to original sources

Permeability of the developing and mature blood-brain barriers to theophylline in rats.

1. In the present study, the uptake of theophylline and L-glucose into the adult and neonatal rat brain has been investigated. Steady state cerebrospinal fluid (CSF) and brain concentrations of theophylline were reached within 1 h following a single intraperitoneal (i.p.) injection, whereas steady state CSF and brain concentrations of L-glucose were not approached until after 5 h. 2. Steady state brain:plasma and CSF:plasma concentration ratios for theophylline and L-glucose in neonatal rats were significantly higher than ratios in adult rats. Erythrocyte:plasma ratios for theophylline in neonatal rats were also significantly higher than ratios in adult rats. Steady state ratios for theophylline were significantly higher than those for L-glucose in both neonatal and adult rats. 3. Respiratory acidosis (pH 6.9-7.0) did not affect steady state CSF:plasma or brain:plasma ratios for theophylline in neonatal or adult rats. In contrast, steady state CSF:plasma and brain:plasma ratios for L-glucose were increased by respiratory acidosis. 4. The lower steady state CSF:plasma, brain:plasma and erythrocyte:plasma ratios for theophylline in adult rats are likely to be due to a higher concentration of plasma proteins in adult blood compared with neonates, with a greater retention of protein-bound (non-exchangeable) theophylline in adult blood, and are unlikely to be due to p-glycoprotein-mediated efflux of theophylline at the adult blood-brain barrier.

Acidosis, Respiratory

Albumin transfer across the choroid plexus of South American opossum (Monodelphis domestica).

1. Blood-cerebrospinal fluid (CSF) transfer of various exogenous albumins has been investigated in developing Monodelphis domestica (South American grey short-tailed opossum) and compared with the steady-state CSF: plasma ratios for endogenous (Monodelphis) albumin. Ratios for Monodelphis albumin and human albumin were similar and were the highest at postnatal day 5 (P5) (48.2 +/- 4.4 and 40.6 +/- 4.5%, respectively). The ratio for bovine albumin was similar to the steady-state ratio for Monodelphis albumin at P7-8 but became consistently lower than the Monodelphis albumin ratio at all other ages until P32-36 when all albumins tested attained a similar low ratio. The CSF:plasma ratio of chemically modified (succinylated) bovine albumin was always significantly lower than that of other albumins, except at the oldest age examined (P32-36). 2. Immunocytochemistry showed that within the brain, albumin was confined to the lumen and endothelial cells of blood vessels. In the choroid plexus only a small proportion (0.2-1.7% of the total cell number) of epithelial cells was positive for albumin, both endogenous and exogenous, at all ages studied (except the 3rd ventricle where cells were only positive from P8). The CSF was strongly positive for all albumins. The peak proportion of positive cells and of albumin concentrations in CSF occurred at P8. These findings suggest that the primary route for penetration of albumin into CSF is directly across the choroid plexus rather than via the brain. 3. Double-labelling immunocytochemistry revealed that the same epithelial cells contained both endogenous (Monodelphis) and exogenous (human) albumin. In contrast, for succinylated albumin, at P7 only about 35% (lateral ventricle) and 50% (4th ventricle) of Monodelphis albumin-positive cells were also positive for succinylated albumin, but by P30 this proportion increased to 90% at both sites. 4. Thus the developing choroid plexus distinguishes between different albumins. Chemical modification of albumin (succinylation) disrupts this mechanism. It is proposed that in older animals (P32-36) all of the albumin in the CSF is derived from plasma by diffusion (as in adult animals). At earlier stages of development, a proportion of the albumin in CSF also appears to be transferred from the plasma by diffusion with an additional component transferred by a mechanism that can distinguish between different species of albumin. The main route of entry of albumin to CSF seems likely to be via the choroid plexus epithelial cells.

Albumins

Uptake of Ga-67 into rat cerebral hemisphere and cerebellum. Comparison with Fe-59.

Transferrin and transferrin receptors play an important role in the transport of iron into the brain. To determine whether gallium enters the brain by the same mechanism, uptakes of 67Ga and 59Fe have been compared under controlled conditions. Rates of gallium penetration into brain (K(in)) were four times slower than those for 59Fe. K(in) for 67Ga when infused with citrate were 0.88 +/- 0.24 and 0.94 +/- 0.39 x 10(-3) ml g-1h-1 for cerebral hemisphere and cerebellum, respectively. When infused as the transferrin complex, 67Ga uptake into the brain was not different from that when infused with citrate. The presence of the anti-transferrin receptor antibody OX-26 significantly reduced uptake of 59Fe by 60% and 64% into cerebral hemisphere and cerebellum, respectively. By contrast, pretreatment of rats with OX-26 enhanced the uptake of 67Ga into brain, particularly when infused with citrate; mean increases in uptake of 67Ga were 120% and 144% for cerebral hemisphere and cerebellum, respectively. Purified 67Ga-transferrin was also taken up into both brain regions examined in the presence of OX-26. These results indicate that the transport of non-transferrin bound gallium is an important mechanism for gallium uptake into brain.

Animals

The nature of increased blood-cerebrospinal fluid barrier exchange during CO2 inhalation in newborn and adult rats.

Exposure of newborn (2-day-old) and adult rats to increasing levels of inspired carbon dioxide (5-15% CO2) resulted in increased steady-state cerebrospinal fluid/plasma ratios for a wide range of different-sized, lipid-insoluble permeability markers (molecular radius ranged from 0.43 nm for L-glucose to 5.3 nm for immunoglobulin G). In control animals breathing room air and animals exposed to an elevated level of inspired CO2, steady-state CSF/plasma ratios for all permeability markers were proportional to their free diffusion coefficient. Steady-state CSF/plasma ratios in newborn animals were significantly higher than in adult animals, and at all ages the ratios for animals exposed to CO2 were higher than the ratios in control animals. In contrast to the increased steady-state CSF/plasma ratios in animals exposed to elevated levels of inspired CO2, there was no significant difference in short-term (10 min after i.v. injection) CSF/plasma ratios for [14C]L-glucose between 10- to 20-day-old control rats and rats of similar age exposed to 10% inspired CO2. Steady-state experiments confirmed that CSF/plasma ratios for [14C]L-glucose in 20-day-old rats exposed to 10% inspired CO2 were raised significantly (twice those measured in control animals breathing room air). The lack of effect of raised CO2 on short-term CSF/plasma ratios indicates that the significant increases in steady-state CSF/plasma ratios, in animals exposed to elevated levels of inspired CO2, are not due to a general increase in the permeability of the blood-CSF or blood-brain barriers; they are likely to be accounted for by CO2-induced reductions in the rate of CSF secretion.

Animals

The nature of the decrease in blood-cerebrospinal fluid barrier exchange during postnatal brain development in the rat.

1. The blood-cerebrospinal fluid (CSF) exchange of a wide range of passively transported lipid insoluble compounds (0.43-5.4 nm molecular radius) has been investigated in rats at different stages of postnatal development (2 days old to adult). A novel 'litter-based' model for investigating blood-CSF barrier exchange in immature animals is described. 2. At each age investigated there was a clear inverse correlation between molecular radius and blood-CSF barrier exchange, in addition to an overall decrease in blood-CSF barrier exchange with increasing age. 3. The decrease in blood-CSF barrier exchange with age was not consistent with a reduction in pore diameters, nor does it appear to be due to an increase in the CSF sink effect with age. It seems likely to be due to a relative decrease in the number of a population of large diameter pores.

Animals

Growth of axons through a lesion in the intact CNS of fetal rat maintained in long-term culture.

The ability of neurons in the central nervous system (CNS) to grow through a lesion and restore conduction has been analysed in developing spinal cord in vitro. The preparation consists of the entire CNS of embryonic rat, isolated and maintained in culture. Conduction of electrical activity and normal morphological appearance (light microscopical and electron microscopical) were maintained in the spinal cord of such preparations for up to 7 d in culture. A complete transverse crush of the spinal cord abolished all conduction for 2 d. After 3-5 d, clear recovery had occurred: electrical conduction across the crush was comparable with that in uninjured preparations. Furthermore, the spinal cord had largely regained its gross normal appearance at the crush site. Axons stained in vivo by carbocyanine dyes had, by 5 d, grown in profusion through the lesion and several millimetres beyond it. These experiments, like those made in neonatal opossum (Treherne et al. 1992) demonstrate that central neurons of immature mammals, unlike those in adults, can respond to injury by rapid and extensive outgrowth of nerve fibres in the absence of peripheral nerve bridges or antibodies that neutralize inhibitory factors. However, unlike the opossum, in which outgrowth occurred at 24 degrees C, although there was prolonged survival of rat spinal cords at this temperature, outgrowth of axons across the lesion required a temperature of 29 degrees C. With rapid and reliable regeneration in vitro it becomes practicable to assay the effects of molecules that promote or inhibit restoration of functional connections.

Animals

Origin and fate of fetuin-containing neurons in the developing neocortex of the fetal sheep.

The development of the neocortex has previously been extensively studied in carnivores (cat and ferret), rodents (rat and mouse) and primates (monkey and human). In these species, it has been shown that the initial population of cells migrating from the ventricular zone forms the primordial plexiform layer. This is subsequently split into marginal zone and subplate zone by the insertion of later-migrating cells into the primordial plexiform layer, to form the cortical plate proper. Many of the cells derived from the split primordial plexiform layer are transient. The neurons of the subplate zone are found in the deeper part of layer VI, and white matter deep to layer VI in the more mature cortex; most of these neurons disappear by adulthood. [3H]-thymidine labelling in the present study has shown a similar pattern of neocortical development in Artiodactyla (sheep). In addition it has been shown that the previously described staining of subplate and cortical plate cells for the fetal protein fetuin indicates that fetuin is a useful marker for a proportion of this transient population of neurons and defines its extent in neocortical development more clearly. Dividing cells were labelled by a single intra-amniotic injection of [3H]-thymidine at E26 to E35 (birth is at E150). The brains were subsequently examined at E40 or E80 for [3H]-thymidine labelling and fetuin staining by a combination of autoradiography and immunocytochemistry. The earliest generated neocortical cells detected in this study (E26) were found in two layers by E40, the outer marginal zone and inner subplate zone. Neurons of the marginal zone were generated up to E28; those of the early subplate zone were generated up to E31. The cortical plate proper was generated by cells "born" on E32 and later. This sequence is similar to that described in other species, especially the cat. A proportion of the early-generated neurons in the marginal zone, subplate zone and early cortical plate stained for fetuin. By E80 these earliest-generated, fetuin-positive cells were found in the white matter deep to the forming neocortical layers and in layer VI. In adult brains no fetuin-positive neurons could be identified in the neocortex, and neurons had almost entirely disappeared from the white matter. The fetal glycoprotein fetuin seems to be specifically associated with a population of cells that has the same developmental history as the transient marginal zone and subplate neurons described in other species.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

A developmentally regulated blood-cerebrospinal fluid transfer mechanism for albumin in immature rats.

1. The transfer of albumin between the blood and the cerebrospinal fluid (CSF) has been investigated in neonatal (3 days old) and juvenile (20 days old) rats. At both stages of postnatal development, all of the albumin present in the CSF can be accounted for by transfer from the blood. Thus it is unlikely that in situ synthesis of albumin contributes to the naturally high levels of albumin in CSF in the developing brain. 2. The high concentration of albumin in CSF of the neonatal rat brain cannot be accounted for solely by diffusion from the blood. In the 3-day-old rat, only about one quarter of the albumin in CSF enters by diffusion from the blood, whilst the remainder appears to be transported into the CSF by a specific mechanism which can discriminate between different species of albumin. The specific transport component of albumin transfer between the blood and the CSF appears to be developmentally regulated and is not apparent in 20-day-old rats. 3. Chemical modification of albumin resulting in either an increase or a decrease in electrophoretic mobility (at pH 7.4), significantly reduces blood-CSF transfer of albumin in 3-day-old rats, but has little effect in the 20-day-old rat. Thus overall molecular charge does not appear to be an important feature of the species-specific blood-CSF albumin transport mechanism in neonatal rats.

Age Factors

Cerebral blood flow in the anaesthetized immature sheep fetus and the response to hypercapnia.

Regional cerebral blood flow (CBF) has been measured in eight anaesthetized, exteriorized, fetal sheep between 58 and 62 days gestation; four were controls, four were hypercapnic (PaCO2 = 78 +/- 5 mmHg, mean +/- S.E.M.). Blood flow values were calculated from quantitative autoradiography following the infusion of [14C]iodoantipyrine into a cannulated fetal placental vein, for the cerebellum, medulla, and five layers of the developing neocortex: cortical plate (CP), subplate zone (SP), intermediate zone (IZ), subventricular zone (SV), and the ventricular zone (VZ). The highest control CBF rates were recorded in the cortical plate (49.3 +/- 7.4 ml min-1 (100 g)-1, mean +/- S.E.M., posterior cortex) and in the ventricular zone (40.5 +/- 4.8, posterior cortex), which at this stage of development are the regions of greatest cell density. The lowest CBF rates were recorded in the subplate zone (23.8 +/- 6.8, anterior cortex) and in the intermediate zone (23.4 +/- 7.6, anterior cortex), which are the regions of lowest cell density. Experimentally induced hypercapnia increased CBF in all brain regions and enhanced the regional pattern of flow. The results provide evidence that CBF in the immature fetal sheep brain (at 58-62 days gestation) is heterogeneous under both control and hypercapnic conditions (especially in the neocortex). Blood vessels of the fetal sheep brain at this early stage of development are clearly responsive to CO2.

Animals

Species-specific transfer of plasma albumin from blood into different cerebrospinal fluid compartments in the fetal sheep.

1. The blood-cerebrospinal fluid (CSF) transfer of endogenous sheep albumin and several exogenous species of albumin has been investigated in different CSF compartments of the immature fetal sheep brain, at an early stage of development (60 days gestation, term is 150 days) when the CSF concentration of total protein is high. 2. There were marked differences in the steady-state CSF/plasma ratios for all species of albumin (including endogenous sheep albumin) between different CSF compartments. Ratios measured in the cisterna magna were significantly higher than those in the dorsal subarachnoid space, which in turn were higher than those in the lateral ventricles. The ratios for endogenous sheep albumin were (%; mean +/- S.E.M.): lateral ventricle (LV), 4.0 +/- 0.03; dorsal subarachnoid (DSA), 6.1 +/- 1.0; cisterna magna (CM), 13.7 +/- 0.8. 3. Three hours after I.V. injection, the CSF/plasma ratios for bovine albumin (LV, 2.0 +/- 0.2; DSA, 2.4 +/- 0.1; CM, 7.2 +/- 0.7%) were significantly lower than the ratio for endogenous sheep albumin in all three compartments. The ratios for human albumin (LV, 0.7 +/- 0.2; DSA, 1.0 +/- 0.2; CM, 3.9 +/- 0.4%) were significantly lower than those for bovine albumin. 4. In all three CSF compartments, the endogenous sheep albumin ratios were higher than would be expected on the basis of transfer by passive mechanisms. Conversely, steady-state CSF/plasma ratios for [3H]sucrose and [14C]inulin were consistent with passive transfer, and there were no differences between the ratios for these markers measured in each of the three CSF regions. 5. Goat albumin and [35S]sheep albumin ratios were not significantly different, 5 h after injection, from the endogenous sheep albumin levels in each of the three CSF compartments. 6. It is concluded that in the 60-day-old fetal sheep, all of the endogenous albumin in CSF is derived from the plasma by a specific transfer mechanism that can distinguish between different species of the same protein. There is also some evidence of a small passive component of blood-CSF albumin transfer. 7. Immunocytochemical evidence suggests that the route of transfer from blood to CSF is transcellular, through the choroid plexus epithelial cells. 8. Regional variations in albumin ratios are probably due to differences in specific transfer into each CSF compartment. This is reflected in a differential immunocytochemical staining for albumin in choroid plexus epithelial cells from different regions of the brain. 9. The results are discussed in terms of differences in albumin amino acid sequences, structural homologies, and transfer by a specific transcellular mechanism.

Albumins

Competition for survival between motor units in mouse skeletal muscle.

The soleus nerve on one side of neonatal mice was crushed and the soleus muscle on the same side was surgically reduced in size. Some animals also had their lumbar spinal nerve 5 (L5) cut and misdirected in the same operation. Three months later, the number of L5 and L6 soleus motor units in the operated muscles was counted electrophysiologically and the number of muscle fibers was counted histologically. The number of L6 motor units in reduced size muscles without L5 innervation was significantly greater than it was in muscles where both L5 and L6 motor units were present. This result supports the concept that motor neuron survival during development is dependent upon the number of muscle fibers available for innervation and the number of motor neurons competing to innervate them.

Action Potentials

End-plate growth exceeds nerve terminal growth in juvenile mice.

An electron microscopic investigation of neuromuscular synapses of the tensor fasciae latae muscle in juvenile mice was carried out to determine the relationship between the presynaptic (nerve terminal) and postsynaptic (end-plate plaque) elements during the major phase of postnatal growth. In the first month of life growth of the synapse was accompanied by a decrease in the size of pre- and postsynaptic elements in cross section. A decrease in the fraction of the width of end-plate plaque opposed by nerve terminal was also observed to age 2 months, and in older animal some end-plate plaques were completely unopposed by nerve terminal. This implies that end plates grow at a faster rate than nerve terminals and suggests that the availability of uninnervated, differentiated end plate permits or promotes nerve terminal growth.

Aging

Muscle size and motor unit survival in mice.

The soleus muscles in neonatal and adult mice were surgically reduced in size on one side of the animal. The experimental and control muscles were excised 6-48 weeks later and the number of motor units in each muscle was estimated by stimulating the muscle nerve and counting step increments in the electromyogram recorded in vitro. Multiple innervation in individual muscle fibres was then assessed by intracellular recording and by visualization of end-plates in the light microscope with cholinesterase stain. Muscle fibres were counted in cross-sections of each muscle in the light microscope. Surgical reductions in the size of the muscle during the first 3 weeks of life produced correlated reductions in the number of motor units in the muscle. This could not be attributed to masking of motor units by multiple innervation, which was always less than 10% in these muscles. The loss of motor units was greatest following reduction in muscle size in newborn mice, whereas in 6-week-old mice there was no significant loss of motor units following the operation. Thus, survival of neonatal motor units shows an age-related dependence on the number of muscle fibres available for innervation. In control muscles there was a highly significant correlation between motor unit and muscle fibre numbers, which is consistent with the hypothesis that motor neurone survival during the embryonic period of cell death is dependent upon the number of muscle fibres available for innervation.

Age Factors