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P Cuisinier-Gleizes

Publications and source records attributed to P Cuisinier-Gleizes.

At least 37 records · Page 2Linked to original sources

The mineralized ring, a single structure peculiar to long bone growth.

Mineralized ring, an elongated tubular structure ensheathing bone metaphysis, is described at successive stages of long bone growth. It is shown that the mineralized ring is characterized by different morphological aspects during its development, corresponding to successive growth stages of one and the same anatomical formation. Its origin is different from periosteal bone and its development is parallel to that of the metaphysis.

Animals↗

Rat calcium-binding proteins: distribution, development, and vitamin D dependence.

The tissue distribution, developmental changes, and the vitamin D dependence in the rat of two calcium-binding proteins [CaBPs, 28,000 and 10,000 Mr (28 and 10 K)] were examined. The radioimmunoassays used employed specific antibodies to either the human cerebellar CaBP (28 K protein) or to the smaller rat intestinal CaBP (10 K protein). The assay for the 28 K CaBP may be used to detect this protein in a number of mammalian species and tissues, whereas the 10 K CaBP assay appears to be specific only for the rat intestinal CaBP. This report demonstrates that the tissue distribution of the two CaBPs is different in the rat. High levels of the 28 H protein were found in the cerebellum and kidney, whereas the smaller CaBP was concentrated in the duodenum, jejunum, and cecum. Many other organs and tissues contained small quantities of both CaBPs. Developmental studies indicated some variability in the concentration of the CaBPs. Duodenum, kidney, and cerebellum all contained small amounts of one of the CaBPs prior to birth. Adult levels in all three tissues were already reached at 30 postpartum days. Levels of both CaBPs began to decline in rats older than 2 mo. The vitamin D dependence appeared to reflect cell turnover in that the duodenal and kidney CaBPs showed a vitamin D dependence not observed for the cerebellar protein.

Aging↗

Parathyroid hormone effects on calcium metabolism in the rat are impaired by 5-ethyl-5'-(1-methylpropyl)-2-thiobarbiturate (inaktin).

The mechanism by which inaktin, a thiobarbiturate, promotes a moderate drop in serum calcium has been investigated. The effect was cancelled in hypocalcemic parathyroidectomized rats. On the other hand inaktin antagonized the serum calcium raising effects of parathyroid extract in these animals. In rats wit intact parathyroid glands inaktin caused a two-fold increase in urinary calcium excretion and a marked decrease in body and bone calcium turnover (measured with 45 Ca). These results support the view that inaktin impairs the parathyroid hormone effects on calcium metabolism.

Anesthetics↗

Biochemical evidence for a cytoplasmic 1 alpha,25-dihydroxyvitamin d3 receptor-like protein in rat yolk sac.

The yolk sac in rats is an organ of exchanges between the mother and fetus. A vitamin D-dependent calcium-binding protein (CaBP) has been recently described in this organ. This led us to investigate the presence of 1,25-dihydroxyvitamin D3 (1,25-(OH)2D3) receptor-like proteins in the yolk sac cytosol. For this purpose we have utilized sucrose gradient centrifugation, Scatchard analysis, and DNA-cellulose chromatography. Our results show that cytosol prepared from rat yolk sacs contains a 3.3 S binding protein for 1,25-(OH)2D3. The binding is a highly specific, saturable process with high affinity(2 X 10(-10) M at 25 degrees C). The sterol-protein complex binds to DNA-cellulose. The 1,25-(OH)2D3 binding protein is present in the yolk sac from at least the 15th day until the 21st day of gestation. In contrast, such a binding protein is not found in the amnion, the other component of fetal membranes. The biochemical parameters of the 1,25-(OH)2D3 binding protein in the yolk sac are similar to those of 1,25-(OH)2D3 cytosolic receptors in vitamin D target organs. This strongly suggests that the 3.3 S protein in the yolk sac may function as a specific receptor, indicating that this organ may be a new target organ for vitamin D.

Animals↗

Regulation of intestinal calcium-binding protein in rats: role of parathyroid hormone.

Intestinal calcium-binding protein (CaBP) levels of rats fed a high (1.5%) Ca diet were the same whether the animals were parathyroidectomized (PTX), sham-operated controls pair-fed with the PTX animals, or sham-operated controls fed ad libitum. Consequently, a given base level of CaBP seems to be parathyroid hormone independent and not closely related to feed intake. On the other hand, whereas the ad libitum fed controls more than doubled their intestinal CaBP in response to a 2-day low-calcium (0.02%) regimen, neither the parathyroidectomized animals nor the pair-fed sham-operated controls were able to do so. Since the latter two groups consumed less feed and therefore less vitamin D than the ad libitum fed animals, the inability to increase CaBP in response to a low-calcium diet may have been caused by a restricted vitamin D intake rather than by the absence of parathyroid hormone.

Animals↗

Intestinal calcium-binding protein (CaBP) and bone calcium mobilization in response to 25R,26 and 25S,26-dihydroxycholecalciferol in intact and nephrectomized rats.

Since intestinal calcium-binding protein (CaBP) can be regarded as an expression of the hormone-like action of 1,25-dihydroxyvitamin D3 (1,25-(OH)2D3) on the duodenal enterocyte we have investigated the potential biological activity of 25R and 25S,26-(OH)2D3 (two recently synthesized epimers of vitamin D3 metabolite) to promote intestinal CaBP production as compared to bone calcium mobilization in vitamin D and calcium-deficient rats. In our assay steroids exhibited a 72 hour calcemic response. Our results show a linear relationship between CaBP synthesis and the logarithm of the dose (130-2080 pmol dose range) of either 25R or 25S epimer. The CaBP response was comparable for both epimers. Similarly bone calcium mobilization response was dose related as a linear function of the logarithm of the administered dose. Again, calcemic response was comparable for both epimers. In our model these two epimers were about as active on intestine to increase CaBP amount as on bone to elevate serum calcium level. Bilateral nephrectomy abolished CaBP response to a large dose (1040 pmol) of either 25R or 25S epimer but did not abolish it to a 130 pmol dose of 1alpha,25-(OH)2D3.

Animals↗

Duodenal calcium-binding protein (CaBP) and phosphorus deprivation in growing rats.

The present study has been undertaken to elicit the effects of a low-phosphorous diet on intestinal calcium absorption. Measurements of duodenal calcium-binding protein (CaBP), mucosal calcium, fractional calcium absorption and duodenal calcium transport capacity has been performed in growing rats fed for three weeks a low-phosphorous diet adequate in vitamin-D3. In animals on low-phosphorous diet, the mucosal concentration of CaBP measured by a quantitative competitive binding assay has increased in parallel with the mucosal calcium concentration, the fractional absorption and the calcium transport capacity. Analytical gel electrophoresis of calcium-binding protein in animals fed low-phosphorous diet has shown the presence of a protein band which would involve more than the effect of the stimulated biosynthesis of 1alpha,25-DHCC.

Animals↗

[Increase in the renal calcium-binding protein (CaBPr) in the presence of vitamin D in growing, phosphate deficient rats. Possible role in tubular calcium reabsorption].

Vitamin D-dependent CaBP isolated from Rat renal cortex (rCaBP) was measured in phosphorus-depleted (OP) and control (C) Rats, either vitamin D-deficient (OD) or vitamin D-supplemented (1 or 10 i. u.). A low molecular weight fraction was isolated from renal cortex by "Sephadex G-100" chromatography and rCaBP activity quantitated by saturation analysis using a 45 Ca chelex assay. The results indicated that phosphorus deprivation resulted in the increase in the vitamin D-dependent rCaBP as well as in the intestinal CaBP. As a marked hypercalciuria was noted in all OP Rats and as the rCaBP activity was high in vitamin D-supplemented Rats and hardly detectable in vitamin D-deficient Rats, the implication of the rCaBP in the large hypercalciuria can be definitely ruled out. Furthermore when vitamin D-supplementation ranged from 1 to 10 i. u. vitamin D, while the serum calcium level was increasing a decrease could be noticed in the large hypercalciuria. This deserves to be related to the increase in rCaBP activity. The high CaBP activity probably resulting from the renal synthesis of 1,25-dihydroxycholecalciferol stimulated by phosphorus-deprivation could represent the molecular basis of the calcium tubular reabsorption increased by vitamin D. Thus a vitamin D-dependent protein implicated in an ion-selective transport could be involved in the tubular calcium reabsorption as well as in the intestinal calcium absorption.

Animals↗

Bone resorption measurement with unusual bone markers: critical evaluation of the method in phosphorus-deficient and calcium-deficient growing rats.

An in vivo method to evaluate bone resorption in rats, by using unusual bone seekers not dependent on renal tubular transfer, is described and a critical evaluation of the method is made. In our experimental conditions, 85Sr and 177Lu are virtually exclusively localized in bone whereas 237Np remains unchanged in different soft organs, so that the concomitant use of these markers can be used for measuring bone resorption. If osteolysis occurs 21 days after the injection of these markers, under our experimental conditions, any increase in the urinary excretion of 177Lu and 237Np represents a rise in bone resorption, whereas an increase in Sr excretion reflects both and renal tubular events. According to our bone localization studies, the enhancement of Lu and Np excretion reflects primarily an increase in cortical bone resorption localized at the endosteal (Lu) and at the periosteal (Np) surfaces respectively. In addition, strontium is considered to be the marker of mineral resorption whereas Lu and Np, under our experimental conditions, would reflect the organic bone resorption. This method is tested in phosphorus-deficient rats and in calcium-deficient rats which exhibit disturbances of calcium metabolism at both the bone and kidney levels. In agreement with previous investigations, the use of these bone markers to evaluate osteolysis shows: (a) after a 1-week phosphorus deficiency, a slight increase in cortical bone resorption with a simultaneous fall in calcium and strontium renal tubular reabsorption, and (b) after a 1-week calcium deficiency, a high rise in cortical bone resorption with a simultaneous increase in the renal tubular reabsorption of calcium and strontium.

Animals↗