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Biomedical subjects

L Moore

Publications and source records attributed to L Moore.

At least 235 records · Page 13Linked to original sources

The early phase of experimental acute renal failure. IV. The diluting ability of the short loops of Henle.

Experiments were conducted to establish whether diminished solute reabsorption in the loop of Henle during acute renal failure could explain the loss of urinary concentration and participate in generating a tubuloglomerular feedback-mediated reduction in filtration rate. The electrolyte content of the fluid in the ascending limb of the loop of Henle was determined in situ by monitoring its electrical conductivity after propulsion into the distal tubule with a sudden burst perfusion. The value of the minimum electrolyte concentration decreased exponentially with increasing equilibration time, reaching a steady-state value equivalent to 27 +/- 9 mM NaCl in normal kidneys, 34 +/- 15 mM in mercuric chloride kidneys and 53 +/- 22 mM following ischaemia. A mathematical model was derived to describe the process of sodium chloride dilution from which it was possible to calculate both the permeability and transport velocity of the cortical thick ascending limb. In the normal kidney, the transport velocity was calculated to be 4.65 +/- 0.92 . 10(-5) cm/s, a value not significantly different from that of the mercuric chloride of ischaemic kidneys, and the estimated permeability was 1.13 +/- 0.52 . 10(-5) cm/s, not different from that of the mercuric chloride kidneys but significantly lower than that calculated for the ischaemic kidneys. It is concluded that for the more severely damaged ischaemic model, the loss of urinary concentrating ability was accompanied by a reduction in diluting ability of the ascending limb of the short loop of Henle, which appears to be due, at least in part, to an elevation of the passive permeability to sodium chloride in this segment.

Acute Kidney Injury↗

A calcium requirement for movement of cultured cells.

When calcium is removed from culture medium, motility of cultured cells is decreased. The effect is rapid, reversible and pronounced. Decreased motility is observed with normal mouse Balb/c 3T3 cells, mouse L929 cells, rat kidney fibroblasts and chick embryo fibroblasts. The calcium dependence of movement can be observed both with individual cells and with the movement of the margin of a monolayer into a wound. Magnesium will not substitute for calcium to maintain motility. Strontium will substitute, but is not as effective as calcium for maintaining cell movement. Low concentrations of the divalent cation ionophore A23187 (0.5-1 micron) partially reverse the reduced migration observed at low calcium concentrations. These results are consistent with the hypothesis that movement of non-muscle cells occurs through mechanisms similar to those important in the contraction of muscle.

Animals↗

Effect of cell density on energy-dependent calcium uptake by Balb/c 3T3 membranes is independent of protein synthesis and attachment to substratum.

Membranes isolated from subconfluent cultures of Balb/c 3T3 cells have low energy-dependent calcium uptake activity. Replating confluent cells at low density results in a prompt fall of energy-dependent calcium uptake by membrane fractions. The level to which uptake activity falls is a function of the density at which the cells are plated (Moore and Pastan, '77b). To determine if regulation of energy-dependent uptake of calcium by membrane fractions is dependent upon attachment to a substrate and to further characterize conditions that regulate the process, we examined calcium uptake activity of membranes isolated from cells in suspension. With cells in suspension energy-dependent calcium uptake activity of isolated membranes falls promptly if cells are diluted to a low density (less than 10(5) cells/ml) and is a function of cell density. When cells in suspension at low cell densities are concentrated to high cell densities (greater than 2 x 10(6) cells/ml), calcium uptake activity of the isolated membrane fraction is increased as a function of cell density. These changes of membrane calcium uptake activity occur promptly and do not require protein synthesis.

Animals↗

Influence of glomerular filtration rate on renal PAH secretion rate in the rat kidney. Dependency of PAH extraction on renal filtration fraction.

PAH secretion (TPAH) was studied in rats at spontaneously occurring glomerular filtration rate (GFR). At saturated transport, TPAH was found to be correlated to GFR. This relationship was also observed at unsaturated transport where TPAH depends upon the PAH concentration in arterial plasma. However, no significant correlation between TPAH and renal PAH load or renal plasma flow rate was found when the effects of GFR were removed by partial correlation analysis. A dependency of TPAH on GFR explains the correlations found between filtration fraction (FF) and renal PAH extraction (EPAH) or renal tubular PAH extraction fraction (EPAH--FFPAH). Thus, even at low PAH concentration in a. plasma, renal PAH extraction may only be assumed to be constant if the filtration fraction is constant.

Aminohippuric Acids↗

Effect of liposomes containing cholesterol on adenylate cyclase activity of cultured mammalian fibroblasts.

Liposomes prepared with cholesterol and dipalmitoyl phosphatidylcholine were incubated with a clone of normal rat kidney fibroblast of cells in culture. The cells took up [14C]cholesterol in proportion to the concentration of liposomes in the incubation medium, and the uptake increased with time over the four hours of study. Two cell membrane enzymes, adenylate cyclase and (Na+ + K+)-ATPase, exhibited decreased activity after treatment with cholesterol-containing liposomes. The decrease in adenylate cyclase activity was directly proportional to the uptake of [14C]cholesterol. When a variety of subclones of NRK 5W were examined some were found to respond to cholesterol treatment and some did not. These data are consistent with the view that membrane cholesterol content plays a role in controlling the activity of some plasma membrane enzymes.

Adenosine Triphosphatases↗

Regulation of intracellular calcium in chick embryo fibroblast: calcium uptake by the microsomal fraction.

The total membrane fraction of a chick embryo fibroblast (CEF) homogenate accumulates calcium in an energy-dependent manner. This activity can be dissociated into azide-sensitive and azide-insensitive components. The azide-sensitive component of calcium uptake is believed to represent mitochondrial calcium uptake. The azide-insensitive component of calcium uptake is enhanced by the presence of a calcium trapping agent such as oxalate, and cannot utilize, ADP, inorganic phosphate and a Krebs cycle substrate to support uptake. The distribution of the azide-insensitive calcium uptake in subcellular fractions suggests that this uptake occurs in other than mitochondrial membranes. The membranes most likely to contribute to the azide-insensitive component of calcium uptake are the endoplasmic reticulum and plasma membrane. A microsomal preparation from CEF cells is essentially devoid of the azide-sensitive calcium uptake activity. This microsomal activity is similar in characteristics to the sarcoplasmic reticulum of skeletal muscle. However the specific activity of CEF microsomal calcium uptake system is much less than that found in the skeletal muscle system. The transport of calcium by these membranes provide a mechanism for the regulation of cytosol calcium levels and may play a role in the control of movement and growth of cultured cells.

Adenosine Diphosphate↗

An effect of estradiol and testosterone on the calcium pump activity and phospholipid fatty acid composition of rat liver microsomes.

Castration of the male rat resulted in a 28% reduction of the specific activity of liver microsomal calcium uptake, three weeks after castration. Treatment of the castrated animals with testosterone during this period returned calcium uptake to control levels. Treatment with estradiol resulted in a reduction of calcium uptake to a level less than 25% of that seen in the normal male. Although testosterone treatment had only a small effect on the fatty acid composition of liver microsomal phospholipids in the castrated male, there were significant changes of linoleic acid (18:2) in phosphatidylcholines and of palmitic acid (16:0) in phosphatidylethanolamines, when compared to the untreated castrated male rat. Administration of estradiol to the castrated male rat resulted in a marked decrease of palmitic acid (16.0) and linoleic acid (18.2) in all three phospholipid fractions studied. Stearic acid (18.0) was significantly increased in the phosphatidylcholines and phosphatidylethanolamines by estradiol treatment. The phospholipid and calcium uptake changes seen after treatment of the castrated rat with testosterone or estradiol are consistent with the sex-related differences observed in the intact, adult rat liver microsomes.

Animals↗

Calcium uptake of a rat liver microsomal subcellular fraction in response to in vivo administration of carbon tetrachloride.

ATP-dependent calcium uptake of rat liver microsomes is examined following ingestion of CC14 (2.5 ml/kg). Within 30 min there is an abrupt drop in calcium uptake activity of the liver microsomes. This activity remains down for 48 hours before slowly returning to normal levels. The effect is specific for CC14 as contrasted with CHC13 and CH2Cl2. The CCl4 does not affect similar calcium uptake activity of kidney microsomes. Calcium uptake activity of the liver mitochondria is unaffected. The first 12 hours after CCl4 ingestion there is a relatively slow rise in the calcium content of the liver tissue and mitochondria. After 12 hours a much larger influx of calcium into the tissue and the mitochondria takes place. Forty-eight hours after CCl4 ingestion the process begins to slowly reverse. The following postulated sequence may relate to the CCl4 hepatotocicity. CCl4 is activated to free radicals by the liver endoplasmic reticulum. The free radical inactivate calcium pump activity of the liver endoplasmic reticulum. Calcium levels of the cytoplasm increase and significantly modify ion permeability of the plasma membrane. High levels of external calcium enter the cytoplasm and are sequestered in the mitochondria. The high level of mitochondrial calcium uptake inhibits mitochondrial oxidative phosphorylation. The specific sensitivity of the calcium pump activity of liver microsomes to CCl4 further establishes the identity of a system seperate from the mitochondrial system. The above postulated sequence of events would suggest a critical role in liver metabolism for calcium pump activity of the endoplasmic reticulum.

Adenosine Triphosphate↗

Energy-dependent calcium uptake activity of microsomes from the aorta of normal and hypertensive rats.

Energy-dependent calcium uptake activity of microsomes isolated from the rat aorta has been characterized. The microsomes consist of smooth membrane vesicles which in the presence of MG-ATP as an energy source continuously sequester calcium over a 60-min period. This calcium uptake is greatly stimulated by oxalate anion which serves as a calcium trapping agent. Unlike the calcium uptake of mitochondria this uptake is not inhibited by sodium azide. Sucrose density gradient analysis of the microsomal calcium uptake suggests that the system is associated with the sarcoplasmic reticulum. In presence of 5 mM Mg-ATP and 20 muM calcium approximately 38 nmol of calcium per mg of microsomal protein are taken up in 20 min. In the absence of ATP, less than 2 nmol of calcium per mg of protein are taken up in the first 2 min with no further uptake of calcium in subsequent time periods. When calcium uptake activity is plotted against calcium or ATP concentration of the medium, half maximal activity is calculated for 24.3 muM calcium and for 1.6 mM ATP. The calcium uptake characteristics of the rat aorta microsomes are compatible with a postulated role in the relaxation of the vascular smooth muscle and the provision of an intracellular calcium store for muscle contraction. Aorta microsomes from SHR rats (a genetic strain that is spontaneously hypertensive) have a significantly reduced uptake when compared with the corresponding nonhypertensive control strain. The level of calcium and ATP for half maximal activity of the rat aorta microsomal calcium uptake system is approximately the same in the SHR and the control strain. The rate of release of calcium from rat aorta microsomes is apparently identical in SHR strain and control. The calcium uptake activity of kidney and liver microsomes isolated from the SHR strain and control. The calcium uptake activity of kidney and liver microsomes isolated from the SHR rat appears to be identical to that found in the control strain.

Adenosine Triphosphate↗

Energy-dependent calcium sequestration activity in rat liver microsomes.

MgATP-dependent calcium sequestering activity of rat liver microsomes has been characterized. This activity is linear over a 90-min period and specifically requires MgATP. Substitution of CTP, UTP, GTP, or ADP will not support calcium uptake. Oxalate, which serves as a trapping agent in calcium uptake of skeletal muscle microsomes, is required to maintain net accumulation of calcium. The reaction is temperature-dependent and has an apparent Vmax of 11.2 nmol/mg of protein/min. The apparent Km for calcium is 23.2 muM calculated from total calcium concentration, and approximately 4.6 muM based on free calcium concentration, and apparent Km for ATP is 1.8 mM. Calcium uptake activity normally measured in presence of 100 mM KCl is only slightly depressed if 100 mM NaCl is substituted and is considerably depressed when 200 mM sucrose replaces KCl. An appropriate hydrolysis of ATP is associated with the calcium uptake. Separation of smooth and rough endoplasmic reticulum on sucrose gradients indicates a considerably lower specific activity per mg of protein in the fraction enriched with rough endoplasmic reticulum. Azide, at a level which completely inhibits liver mitochondrial calcium sequestration, has no effect on the liver microsomal system. Oligomycin, which inhibits ATP-dependent calcium uptake of liver mitochondria, has a considerably lesser effect on calcium uptake of liver microsomes. p-Chloromercuribenzoate and mersalyl inhibit the liver microsomal calcium pump at levels as low as 10- minus 7 M. Calcium uptake activity is considerably reduced in adult female rats. Weanling rats, both male and female, have calcium uptake activities like that of the adult males. Because of the higher activity in the male rat, the fatty acid composition of the liver microsomal phospholipids was analyzed. The male rat had a higher percentage of linoleic and palmitic acids in the microsomal phospholipids. Endoplasmic reticulum and plasma membrane are postulated to play a role in regulation of the levels of free cytoplasmic calcium in the mammalian liver.

Adenosine Triphosphate↗