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J Durlach

Publications and source records attributed to J Durlach.

At least 55 records · Page 3Linked to original sources

Nuclear microanalysis of the monovalent ion distribution in the human amnion. I. Effect of magnesium.

The effect of the addition of MgCl2 on the Na+, K+, and Cl- concentration and distribution in epithelial and compact layers of the human amniotic membrane was investigated using the Bordeaux nuclear microprobe. Particle-induced X-ray emission and Rutherford backscattering spectrometry techniques were used to provide quantitative measurements. In physiological medium (Hanks' solution), the monovalent ion concentrations were identical in both layers. The addition of Mg2+ ions in Hanks' solution induced a decrease of, K+, and Cl- concentration in both layers and, Na+ concentration in the compact layer. The results obtained from nuclear microanalysis might be explained from electrophysiological data which indicate that the addition of Mg2+ ions results in an increase in the cellular, paracellular and exchanger ion pathways.

Amnion↗

Magnesium and therapeutics.

Two different types of therapy with magnesium are used: physiological oral magnesium supplementation which is totally atoxic since it palliates magnesium deficiencies by simply normalizing the magnesium intake and pharmacological magnesium therapy which may induce toxicity since it creates iatrogenic magnesium overload. Primary and secondary magnesium deficiencies constitute the sole indication of physiological oral magnesium therapy. It is therefore necessary to be well acquainted with the clinical and paraclinical pattern of magnesium deficit and to discriminate between magnesium deficiency due to an insufficient magnesium intake which only requires oral physiological supplementation and magnesium depletion related to a dysregulation of the control mechanisms of magnesium status which requires more or less specific regulation of its causal dysregulation. Physiological oral magnesium load constitutes the best tool for diagnosis of magnesium deficiency and the first step of its treatment. Physiological oral magnesium supplementation (5 mg/kg/day) is easy and can be carried out in the diet or with magnesium salts, with practically only one contra-indication: overt renal failure. Specific and aspecific treatments of magnesium depletion are tricky using for example magnesium sparing diuretics, pharmacological doses of vitamin B6, physiological doses of vitamin D and of selenium. In order to use the pharmacological properties of induced therapeutic hypermagnesaemia, high oral doses of magnesium (> 10 mg/kg/day) are advisable for chronic indications and the parenteral route is suitable for acute indications. There are 3 types of indications: specific (for the treatment of some forms of magnesium deficit i.e. acute), pharmacological (i.e. without alterations of magnesium status) and mixed--pharmacological and aetiopathogenic--(for example complications of chronic alcoholism). Today pharmacological magnesium therapy mainly concerns the obstetrical, cardiological and anaesthesiological fields. The main indications are eclampsia, some dysrhythmias (torsades de pointe particularly) and myocardial ischaemias. But it is now difficult to situate the exact place of the pharmacological indications of magnesium. Magnesium infusions can only be envisaged in intensive care units with careful monitoring of pulse, arterial pressure, deep tendon reflexes, hourly diuresis, electrocardiogram and respiratory recordings. High oral magnesium doses besides their laxative action may bring latent complications which may reduce lifespan. There may remain some indications of the laxative and antacid properties of non soluble magnesium, particularly during intermittent haemodialysis. Lastly local use of the mucocutaneous and cytoprotective properties of magnesium is still valid, in cardioplegic solutions and for preservation of transplants particularly.

Administration, Oral↗

Effect of various serotoninergically induced manipulations on audiogenic seizures in magnesium-deficient mice.

The aim of our study was to analyse the possible implication of the serotoninergic system in the pathophysiology and the lethality of audiogenic seizures induced by magnesium deficiency, either by decreasing cerebral serotonin (5-HT) levels (p-chlorophenylalanine) or by increasing 5-HT levels in the brain (5-hydroxytryptophan, L-tryptophan, nialamide, fluoxetine). In magnesium-deficient mice, the percentages of audiogenic seizures and of fatal seizures were dependent on the time lapse between the p-chlorophenylalanine (PCPA) injection and the audiogenic test. The percentage was at least 24 h after the injection: in OF1 and C57BL/6 strains, PCPA fully protected the mice from seizure occurrence, whereas it only partially protected the animals of the other strains. 5-Hydroxytryptophan caused a decrease in the audiogenic seizures in magnesium-deficient OF1 mice as well as in control DBA/2 mice. In contrast L-tryptophan did not reduce the number of wild courses or of clonic and tonic seizures in either the magnesium-deficient OF1 strain or control DBA/2 mice. Nialamide and fluoxetine were only effective in decreasing the numbers of clonic and tonic convulsions of the audiogenic seizure without affecting the wild courses. The combination of nialamide and tryptophan caused a cessation of the audiogenic seizure phases in both magnesium-deficient OF1 and control DBA/2 mice. In contrast, the fluoxetine-tryptophan combination did not have the same effect on magnesium-deficient and non-magnesium-deficient mice. This work showed that the serotoninergic system plays a secondary role in the pathophysiology of audiogenic seizures in magnesium-deficient mice rather than in that of genetically audiosusceptible mice.

5-Hydroxytryptophan↗

Effect of magnesium supplement in a biological medium (milk) on multiple ionic exchangers in a human membrane.

The effects of magnesium supplement in a biological medium (milk) diluted in a survival medium (1/20 dilution in Hanks' solution) have been studied on the multiple ionic exchangers in a human membrane, the amniotic membrane, which is a leaky and asymmetrical membrane. In normal milk, the Ca/Mg molar ratio (MR) is equal to 6.0. In this study, this ratio has been modified to between 0.36 and 6.0, with particular attention to MR values of 0.36, 0.6, 1.0, and 2.0. The transamniotic conductance, Gt, is a function of the Ca/Mg MR: Gt decreases when the MR increases from 0.36 to 6.0, with an inflexion point to 0.7. In the human amnion, Gt is the sum of three paracellular components (Gp) and nine cellular components (Gc). The addition of normal milk (MR = 6) or magnesium-supplemented milk (MR = 0.36, 0.6, 1.0 or 2.0) induces variation in 2 Gp (GpNa and GpK) and three cellular conductances (Na+ and K+ channels and Na/Mg exchanger). Among the MR values studied, MR = 0.36 increased all five components. These data show the relationship between magnesium and milk components and the cellular targets of magnesium supplements and define the best Ca/Mg molar ratio in the biological medium.

Amnion↗

Comparative effects of MgCl2 and MgSO4 on the ionic transfer components through the isolated human amniotic membrane.

The effects of MgCl2 and MgSO4 are different on the total transfer through the human amniotic membrane: MgCl2 at low concentration (1 mM) decreases the total conductance Gt and increases it at high concentration (4 mM) on the fetal side (FS) and on the maternal side (MS), while MgSO4 has no effect on the MS and increases Gt on the FS. Moreover, whatever the concentration, MgCl2 increases the flux ration F1/F2 while MgSO4 decreases it to reach a value near to 1. Gt is the sum of various components: three paracellular components (Gp) and nine cellular components (Gc constituted from channels, exchangers, antiporters and cotransporters). All components of Gt, on the two faces, are decreased by 1 mM MgCl2 and increased at 4 mM. MgCl2 also has an effect on all ionic exchangers across the membrane. In contrast, on the MS, MgSO4 (1 mM) decreases GpNa, increases GpK and the antiport Na/H component and has no effect on any of the other components, while at 4 mM, MgSO4 has no effect. On the FS, MgSO4 (1 mM) increases GpNa and GpK, but does not modify the other components. At 4 mM, the effect is the same, except for an increase of GpCl. These data show the importance of the anion-cation association in the ionic exchanges through a membrane: MgCl2 and MgSO4 have a different action--MgCl2 interacts with all the exchangers, while the effect of MgSO4 is limited to paracellular components without interaction with cellular components excepted the antiport Na/H.

Amnion↗

Dietary magnesium affects susceptibility of lipoproteins and tissues to peroxidation in rats.

Magnesium (Mg)-deficient and control diets were pair-fed to weanling Wistar rats for 8 days. Plasma lipoproteins were separated into various density classes by sequential preparative ultracentrifugation. The extent of lipid peroxidation was measured in terms of thiobarbituric acid reactive substances in lipoproteins and tissue homogenates before or after iron-induced lipid peroxidation. Hyperlipemia in Mg-deficient rats was accompanied by increased oxidation of very-low-density lipoproteins and low-density lipoproteins. Moreover, very-low-density lipoproteins and high-density lipoproteins from Mg-deficient rats were more susceptible to oxidative damage following iron incubation. Mg deficiency increased lipid peroxidation in liver, heart and skeletal muscles. Their homogenates were more susceptible to in vitro peroxidation. Mg deficiency has been discussed as a possible contributory factor in the development of cardiovascular disease and was associated with tissue damage and membrane alteration. These results demonstrate for the first time that Mg affects the susceptibility of lipoproteins to peroxidation and suggest that the mechanism responsible for the pathological consequences of Mg deficiency may be mediated by lipid peroxidation products.

Animals↗

Effect of acute magnesium deficiency on the masking and unmasking of the proton channel of the uncoupling protein in rat brown fat.

The short term regulation of heat production in brown adipose tissue mitochondria (BAT) of acutely Mg-deficient rats was demonstrated by comparing several parameters of mitochondrial energization. Mg deficiency in vivo had absolutely no effect on the BAT uncoupling protein concentration (UCP) which was only modified by thermal conditions. The same high concentration was observed 10 d cold exposed control and Mg-deficient rats. Four days of warm re-exposure at thermal neutrality led to a moderate 26 per cent decrease with both diets which was not modified by cold stress for 1 h. Proton conductance. CmH+, and proton motive force, delta p, were calculated from membrane potential and respiration rate measurements. The same high level CmH+ was observed in cold exposed rats with both diets. Compared to warm re-exposed control rats, CmH+ was threefold higher in the corresponding Mg-deficient group which indicated a much lower masking of the proton channel of UCP with the Mg-deficient diet. This difference was not dependent on the presence of magnesium in vitro. The basal CmH+, independent of UCP, was not altered by magnesium deficiency. These results emphasize that acute regulation of thermogenic BAT activity through the masking and unmasking process is altered when magnesium supply is limited in vivo.

Adipose Tissue, Brown↗

Magnesium and ageing. I. Experimental data: importance of oxidative damage.

Magnesium status may be compromised with ageing for two reasons: insufficient intake (magnesium deficiency) or alterations in magnesium metabolism (magnesium depletion). There is a large volume of literature suggesting that magnesium deficit contributes to the ageing process and to the vulnerability to age-related diseases. One of the biological changes associated with ageing is an increase in free radical formation with subsequent damage to cellular processes. Prime targets of the more reactive free radicals are unsaturated lipids in cell membranes, amino acids in proteins, and nucleotides in DNA. The accumulation of unrepaired oxidative damage products may be a major factor in cellular ageing. Magnesium-deficient animals show an increased susceptibility to an in vivo oxidative stress and their tissues are more susceptible to in vitro peroxidation. Moreover, the protective properties of various antioxidant drugs and nutrients suggest that free radicals are involved in the injury process of magnesium deficiency. The consequences on stress susceptibility, defective membrane functions and perturbation of intracellular calcium metabolism, inflammation, cardiovascular diseases including atherosclerosis and ischaemia/reoxygenation injury, diabetes, fibrosis, immune dysfunction and other diseases associated with ageing are presented and discussed.

Aging↗

Magnesium and ageing. II. Clinical data: aetiological mechanisms and pathophysiological consequences of magnesium deficit in the elderly.

Ageing constitutes a risk factor for magnesium deficit. Primary magnesium deficit originates from two aetiological mechanisms: deficiency and depletion. Primary magnesium deficiency is due to insufficient magnesium intake. Dietary amounts of magnesium are marginal in the whole population whatever the age. Nutritional deficiencies are more pronounced in institutionalized than in free-living ageing groups. Primary magnesium depletion is due to dysregulation of factors controlling magnesium status: intestinal magnesium hypoabsorption, reduced magnesium bone uptake and mobilization, sometimes urinary leakage, hyperadrenoglucocorticism by decreased adaptability to stress, insulin resistance and adrenergic hyporeceptivity. Secondary magnesium deficit in ageing largely results from various pathologies and treatments common to elderly persons, i.e., non-insulin dependent diabetes mellitus and use of hypermagnesuric diuretics. Magnesium deficit may participate in the clinical pattern of ageing, particularly in neuromuscular, cardiovascular and renal symptomatologies. The consequences of hyperadrenoglucocorticism-the simplest marker of which is non-response to the dexamethasone suppression test-may include immunosuppression, muscle atrophy, centralization of fat mass, osteoporosis, hyperglycaemia, hyperlipidaemia, atherosclerosis, and disturbances of mood and mental performance through accelerated hippocampal ageing particularly. It seems very important to point out that magnesium deficit and stress aggravate each other in a true 'pathogenic vicious circle', particularly in the stressful state of ageing. The importance of magnesium deficit in the aetiologies of insulin resistance, and the adrenergic, osseous, oncogenic, immune and oxidant disturbances of ageing is still uncertain. Oral physiological magnesium supplementation (5 mg Mg/kg/d) is the best diagnostic tool for establishing the importance of magnesium deficiency. Too few open and double blind studies on the effects of the treatment of magnesium deficiency and of magnesium depletion in geriatric populations have been done. Further study is necessary to assess the true place of magnesium deficit in the pathophysiology of ageing.

Adrenocortical Hyperfunction↗

Regulation of sodium and potassium pathways by magnesium in cell membranes.

Magnesium plays an important role in a large number of cellular processes by acting as a cofactor in enzymatic reactions and transmembrane ion movements. Magnesium is a modulator of Na,K ion transport systems in numerous tissues. In this study, the interactions between magnesium and Na,K pathways are described. In the paracellular pathway, Na,K transports are generally increased by Mgo. In the cellular pathway, there are various processes: (1) Potassium channels-Mgi blocks the outward currents, first by interfering with the passage of K+ ions and inducing rectification of the channel current-voltage relationship, and secondly by completely blocking the channel pore and reducing the channel open probability: Mgo increases the K+ channel permeability in a leaky membrane. (2) Sodium channels-Mgi blocks outward currents in a voltage- and dose-dependent manner, acts as a fast blocker by screening of surface charges, and produces an open channel block in several Na+ channels; Mgo increases Na+ transport in toad bladder and human amnion at high concentration by acting on the driving force of the sodium pump. (3) Na/K pump-Mgi and Mgo stimulate the Na/K exchange at low concentration and inhibit it at high concentration, by a stabilization of E2 forms of the enzyme which would reduce the rate of turnover of the pump. (4) Na-K-2Cl cotransport increasing Mgo concentration stimulates this system in red cells and human amnion, and the bumetadine-sensitive K+ transport is sensitive to Mgi (5) Kcl cotransport-The increase in Mgi inhibits this cotransport. (6) Na-H antiport-Na/H exchange responds to manipulations of cell magnesium but the effect is probably not a direct one; magnesium is required not for the transport process per se, but for the transduction of the volume stimulus (7) H-K pump Mg activates this system. (8) Na-Ca antiport-The activity of this antiporter is inhibited by Mgo; the inhibition by magnesium is competitive with calcium. (9) Na-Mg exchange-in this system, the Na+ gradient provides the energy for net Mg2+ extrusion. In conclusion, intracellular and extracellular magnesium may be an important physiological regulator of the sodium and potassium pathways in the cell.

Animals↗

Audiogenic seizures in magnesium-deficient mice: effects of magnesium pyrrolidone-2-carboxylate, magnesium acetyltaurinate, magnesium chloride and vitamin B-6.

Magnesium deficiency in mice causes and increases audiogenic seizures. This effect was reversed by oral administration of magnesium acetyltaurinate (ATaMg), magnesium pyrrolidone-2-carboxylate (PCMH), MgCl2. When treatment was discontinued, audiogenic seizures recurred only in the groups treated with PCMH or MgCl2. Following intraperitoneal administration of AtaMg, the mice were protected against audiogenic seizures after 4 h and this protection persisted for up to 72 h after the treatment. With the other magnesium salts (PCMH and MgCl2) maximum protection occurred by 6 h after the injection, but after that time the number of seizures increased sharply. Intraperitoneal taurine alone only reduced the severity of the audiogenic seizures. The length of treatment needed to inhibit audiogenic seizures was reduced by treatment with a combination of vitamin B-6 (a magnesium fixing agent) and PCMH or MgCl2. However this combination of vitamin B-6 and magnesium salts did not prevent the recurrence of audiogenic seizures, which was only achieved by ATaMg. The results suggest that audiogenic seizures in magnesium-deficient mice form a model of magnesium depletion. This depletion is completely inhibited by the combination of an inhibitory neurotransmitter (taurine) and magnesium, in the form of magnesium acetyltaurinate.

Acoustic Stimulation↗

Magnesium and blood pressure. I. Animal studies.

The relationship between experimental magnesium deficiency and blood pressure is complex and still the subject of much debate. The effect of Mg deficiency and blood pressure in Wistar rats receiving a Mg deficient diet (0.080 g/kg) for 40 weeks was examined. Deficient rats, when compared to controls, showed an initial transitory phase of hypotension, followed by normalization of blood pressure and then hypertension beginning after 15 weeks on the deficient diet. During the whole experimental period, heart rate was significantly increased in deficient rats as compared to controls. The fact that hypotension resulting from Mg deficiency of short duration can be inhibited by antihistamines and by indomethacin suggests that various mediators seen during the inflammatory period of Mg deficiency could be involved. Mg deficiency of long duration was accompanied by hypertension. When Mg-deficient rats received the control diet for a period of 3 weeks, Mg supplementation only partially corrected the hypertension. The hypertension was not a consequence of stimulation of the renin-angiotensin system since the plasma renin activity was not modified and ACE activity was reduced. These deficient rats showed a significantly lower vasopressor response to noradrenaline than control rats. Several factors such as increase in collagen, changes in elastin and arterial elasticity, total lipid content, and calcifications may account for the hyporesponsiveness to contractile agonists.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Magnesium and blood pressure. II. Clinical studies.

Magnesium deficit may be considered as a cardiovascular risk because of its aetiopathogenic role in the genesis of atherogenous dyslipidaemias and the so-called "idiopathic" mitral valve prolapse. It does not, however, constitute a major antihypertensive factor, though it may sometimes be an accessory co-factor. Plasma magnesium is generally normal in untreated hypertensive patients and normotension is the rule during magnesium deficit. An inverse relationship between magnesium and renin in the plasma of hypertensives has not been confirmed. In practice, plasma magnesium seems to be related to the evolution of the disease. An inverse correlation between blood pressure and erythrocyte total and free magnesium levels has been observed in diverse selected populations but no adjustment has been made in these studies for important covariables. A weak positive association between blood pressure and erythrocyte free magnesium was lost in a multivariate regression analysis. As a rule there is no difference between erythrocyte, leucocyte, and lymphocyte magnesium in hypertensives and controls. More often no relation between urinary magnesium and blood pressure is observed. Daily urine magnesium may be increased with increased excretion of urine adrenaline. Epidemiological data on dietary magnesium, particularly in drinking water, should be carefully scrutinized: these studies do not establish a major role for magnesium as an antihypertensive factor but confirm the importance of magnesium deficit as a nephrocardiovascular risk factor and sometimes gives support for a role of magnesium as an antihypertensive cofactor. The use of magnesium-depleting drugs in hypertensive patients may induce magnesium depletion which must be palliated.(ABSTRACT TRUNCATED AT 250 WORDS)

Blood Pressure↗