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Biomedical subjects

G B Segel

Publications and source records attributed to G B Segel.

At least 55 records · Page 3Linked to original sources

Membrane alterations in lymphocyte proliferation.

The production of antibody or cell-mediated immunity to foreign antigens requires interaction with the requisite B- or T-lymphocytes. When human lymphocytes encounter antigens or plant lectins, they undergo a series of changes which ultimately result in lymphocyte proliferation and an appropriate immunologic response. Antigens or lectins first attach to specific receptors on the lymphocyte membrane. This attachment is followed by changes in membrane permeability and transport of various nutrients and cations. Some of these changes, such as the increase in the transport of sodium and potassium, are adaptive, maintain the internal cation environment, and permit mitogenesis to proceed. Others such as changes in calcium metabolism appear regulatory rather than adaptive and are closely linked with initiation of proliferation and immunologic response. The lymphocyte, like other mammalian cells, maintains a very low free internal calcium concentration. Changes in internal ionized calcium can regulate secretion, contraction, and cell proliferation. The mechanism of calcium regulation is currently under investigation. Calcium may interact directly with cellular enzymes or regulate lymphocyte metabolism in conjunction with a regulatory calcium binding (modulator) protein, "calmodulin".

B-Lymphocytes↗

The measurement of lymphocyte volume: importance of reference particle deformability and counting solution tonicity.

We have determined the influence of reference particle deformability and suspending buffer tonicity on the measurement of lymphocyte volume by an electronic particle volume analyzer. When the volume analyzer was standardized with latex spherules having a shape factor (fe) of 1.5, red cell volume was 96 cu micron and lymphocyte volume was 289 cu micron. The red cell volume corresponded closely to the true red cell volume; the true lymphocyte volume, however, was 218 cu micron when measured by the lymphocytocrit/lymphocyte count and 203 cu micron by wet lymphocyte weight and density (mean approximately 210 cu micron). The difference between the electronic volume (Ve) of 289 cu micron and true lymphocyte volume of 210 cu micron was due to the influence of lymphocyte deformability (shape factor) as it traverses the sizing aperture. Since the true volume equals the Ve/fe, the red cells with a shape factor near 1.0 were sized appropriately by this method. In contrast, the lymphocyte shape factor was 1.38; thus, the true lymphocyte volume was 289 cu micron/1.38 or 210 cu micron. The tonicity of the suspending solution also influenced the measurement of particle volume when osmotically inactive standard particles (e.g., latex spherules) were used as a reference. Whereas the true lymphocyte volume was 210 cu micron at 286 mosmole/liter, it was 194 cu micron at 330 and 229 cu micron at 250 mosmole/liter. The standard counting solution, Isoton, is hyperosmolar (330 mosmole/liter) and causes an 8% shrinkage of osmotically active cells.

Buffers↗

The apparent discrepancy of ouabain inhibition of cation transport and of lymphocyte proliferation is explained by time-dependency of ouabain binding.

Mitogenesis of human blood lymphocytes in culture is inhibited by concentrations of ouabain that are approximately one order of magnitude lower than those that block Na and K transport. For example, the 50% inhibition (ID50) of Na-K transport, 280 nM, is seven-fold greater than the Id50 for RNA synthesis, DNA synthesis, or blastogenesis, approximately 40 nM. Yet, inhibition of transport and consequent reduction in cell K is considered responsible for the effects of ouabain on mitogenesis. Since synthetic processes are assessed at least 24 hours after lymphocyte stimulation, this discrepancy could be explained by either 1) a progressive increase in K leak, or 2) a progressive inhibition of Na-K transport by ouabain during 24 hours of PHA treatment. We found that the lymphocyte membrane leak rate of K increased immediately after PHA treatment but did not increase further from 4 to 24 hours. In contrast, the ouabain sensitivity of 42K uptake was markedly increased with time: ID50 for 42K uptake of 35 nM at 24 hours as compared to 280 nM at 30 minutes. Measurement of ouabain binding revealed a seven-fold increase in the lymphocyte-associated ouabain after 24 hours compared to binding at 1 hour. These data indicate that the dose response of ouabain inhibition of active K transport and lymphocyte proliferation are closely correlated if one considers the slow membrane binding of ouabain at low concentrations.

Biological Transport, Active↗

Total and exchangeable calcium in lymphocytes: effects of PHA and A23187.

Calcium has been suggested as an internal second messenger when lymphocytes are stimulated by mitogens to enter the cell cycle. We have assessed the effect of 2 lymphocyte stimulants, the plant lectin phytohemagglutinin (PHA) and the calcium ionophore A23187, on human lymphocyte nucleic acid synthesis, total cell calcium content, and 45Ca labeling. We have used an ultrasensitive method for the measurement of total cell calcium in the same samples used for radiolabeling. Mitogenic concentrations of A23187 (approximately .25 mumole/liter) caused an increase in both total cell calcium and 45Ca labeling. These increases were almost completely blocked by inhibitors of mitochondrial respiration, suggesting that the calcium increment after ionophore treatment was located in the mitochondria. In contrast, total cell calcium was not altered at optimal mitogenic PHA concentrations (0.1 microgram/ml and above). However, at the minimum PHA concentrations that caused stimulation (0.025 to 0.1 microgram/ml), the dose response of 45Ca uptake was very similar to that of DNA synthesis. Importantly, we could not stimulate DNA synthesis with PHA without increasing lymphocyte 45Ca labeling. Thus, an increase in total cell calcium is not essential for mitogenesis; however, an increase in 45Ca exchange is closely associated with the mitogenic effects of A23187 and PHA.

Anti-Bacterial Agents↗

Glucocorticoid suppression of human lymphocyte DNA synthesis: influence of phytohemagglutinin concentration.

Glucocorticoids have been shown to suppress lectin-stimulated lymphocyte DNA synthesis in some studies, whereas in other studies, the hormones have had little effect. We have found that the position on the PHA dose-response curve that is studied is the most important determinant of whether cortisol inhibits 3H-thymidine incorporation into lymphocyte DNA. The proportion of monocytes in culture also influenced the cortisol effect, but it was quantitatively less important than PHA concentration. Cortisol (5 nM to 100 microM) had little effect on blastogenesis or thymidine incorporation into DNA in cultures that contained both a high concentration (14% +/- 2 (S.E.)) of monocytes and a concentration of PHA (0.6 to 1.2 microgram/ml) that produced maximal stimulation of mitogenesis. When monocytes were reduced from 14% to 1.4%, cortisol (5 microM) caused a 30% reduction in thymidine incorporation in cultures stimulated by 0.6 to 1.2 microgram/ml PHA. Much greater cortisol suppression of thymidine incorporation occurred if the concentration of PHA was reduced. For example, reduction of the PHA concentration from 1.2 to 0.075 microgram/ml resulted in an increase in suppression by 5 microM cortisol from 5% to 90% even in the presence of 14% monocytes. These data indicate that the suppressive effects of glucocorticoids on blastogenesis and thymidine incorporation in vitro depend principally on the concentration of PHA used to stimulate blastogenesis and secondarily on the proportion of monocytes in the culture system.

Binding Sites↗

An ultrasensitive method for the measurement of human leukocyte calcium: lymphocytes.

Studies of the transport and distribution of calcium in leukocytes have been severely hampered by the inability to measure accurately and reproducibly the concentration of calcium in small numbers of cells. We have applied a recent development in analytical chemistry, the graphite furnace atomic absorption spectrophotometer, to this problem. The calcium content of human blood lymphocytes was determined by both graphite furnace and conventional flame atomic absorption spectrophotometry. The linearity, sensitivity and detection limits of the two techniques were compared. For measurement of calcium, the graphite furnace sensitivity was 55 times higher in aqueous samples and 60 times higher in cell samples than the flame technique. The detection limit of the graphite furnace was 800 times lower in aqueous samples and 1500 times lower in cell samples. The enhanced sensitivity of this technique allowed us to prepare samples with 20 times fewer blood cells. We have employed this graphite furnace technique to measure lymphocyte calcium content and its relationship to the calcium concentration and proportion of serum in the suspending medium. In the absence of serum, the lymphocyte calcium content approximately doubled as the medium calcium concentration was increased from 1 mumol/l to 0.5 mmol/l. At medium calcium concentrations of 0.5 mmol/l and above, the lymphocyte calcium content was 1.0 mmol/l cells. In medium adjusted to 2 mmol/l calcium, the lymphocyte calcium content approximately doubled as the medium serum concentration was increased from 0 to 2%. At medium serum concentrations of 2% and above, lymphocyte calcium content was 2 mmol/l cells. The exchangeable cell calcium, measured with 45Ca in the same samples, did not increase as serum was added to the medium.

Calcium↗

Sodium-potassium adenosine triphosphatase activity of human lymphocyte membrane vesicles: kinetic parameters, substrate specificity, and effects of phytohemagglutinin.

We have prepared human blood lymphocyte membrane vesicles of high purity in sufficient quantity for detailed enzyme analysis. This was made possible by the use of plateletpheresis residues, which contain human lymphocytes in amounts equivalent to thousands of milliliters of blood. The substrate specificity and the kinetics of the cofactor and substrate requirements of the human lymphocyte membrane Na+, K+-ATPase activity were characterized. The Na+, K+-ATPase did not hydrolyze ADP, AMP, ITP, UTP, GTP or TTP. The mean ATPase stimulated by optimal concentrations of Na+ and K+ (Na+, K+-ATPase) was 1.5 nmol of P(i) hydrolyzed, microgram protein-1, 30 min-1 (range 0.9-2.1). This activity was completely inhibited by the cardiac glycoside, ouabain. The K(m) for K+ was approximately 1.0 mM and the K(m) for Na+ was approximately 15 mM. Active Na+ and K+ transport and ouabain-sensitive ATP production increase when lymphocytes are stimulated by PHA. Na+, K+-ATPase activity must increase also to transduce energy for the transport of Na+ and K+. Some studies have reported that PHA stimulates the lymphocyte membrane ATPase directly. We did not observe stimulation of the membrane Na+, K+-ATPase when either lymphocytes or lymphocyte membranes were treated with mitogenic concentrations of PHA. Moreover, PHA did not enhance the reaction velocity of the Na+, K+-ATPase when studied at the K(m) for ATP, Na+, K+ OR Mg++, indicating that it does not alter the affinity of the enzyme for its substrate or cofactors. Thus, our data indicate that the increase in ATPase activity does not occur as a direct result of PHA action on the cell membrane.

Cell Membrane↗

Regulation of sodium and potassium transport in phytohemagglutinin-stimulated human blood lymphocytes.

Phytohemagglutinin (PHA) or concanavalin A treatment of lymphocytes causes an increase in membrane permeability so that the leak rates of Na and K increase 1.5- to 2-fold. Active Na and K transport increase proportionately in response to the increased membrane permeability. We have examined the role of lymphocyte Na concentration in sustaining the increased Na and K transport observed after PHA treatment. Cell Na concentration increases from 14.8 to 20.5 mmol/liter cell water in PHA-treated lymphocytes (P < 0.001). Four lines of evidence suggest that the 5-6 mmol/liter cell water increase in lymphocyte Na accounts for the increase in active Na and K transport in mitogen-treated lymphocytes. First, PHA does not increase directly the maximal Na, K-ATPase activity of isolated lymphocyte membrane vesicles. Second, when the Na concentration is increased by 6 mmol/liter cell water in unstimulated lymphocytes, Na and K transport increase nearly twofold. Third, the cell Na concentration (15 mmol/liter cell water) is near the K(m) for Na activation of the Na, K-ATPase in lymphocyte membranes. The ATPase activity thus, is capable of increasing as the cell Na rises above normal. Fourth, if lymphocytes are incubated in a medium containing a low Na concentration, K transport does not maintain the internal K concentration and the fall in cell K is accentuated in PHA-treated lymphocytes. These studies indicate that the adaptive acceleration of Na and K transport in mitogen-treated lymphocytes is mediated by a small increase in cell Na.

Biological Transport↗

The effects of splenectomy and glucocorticoids on survival and hepatic uptake of damaged red cells in the mouse.

We have studied the effects of splenectomy and glucocorticoids on the survival and sequestration of Heinz body-containing red blood cells (RBC-HZB). Mice were injected with phenylhydrazine damaged 51Cr labeled isologous red blood cells (RBCs). The spleen removed 36% and the liver 19% of the injected dose after 120 hrs. Red cell survival (T 1/2) fell from 180 hrs for undamaged red cells to 16 hrs for RBC-HZB. Splenectomy resulted in an increase in hepatic uptake of damaged RBCs (36% of the injected dose) and a modest improvement in red cell survival (T 1/2 54 hrs). Treatment of non-splenectomized mice with glucocorticoids reduced the splenic uptake to 16% and the hepatic uptake to 14% of the injected dose. The reduction of splenic upatke was associated with a decrease in splenic mass rather than a decrease in uptake per unit weight of splenic tissue, while reduction in hepatic uptake was associated with both a decrease in hepatic mass and uptake per unit weight. A marked decrease was observed in hepatic uptake and in phagocytosis by Kupffer cells in glucocorticoid-treated splenectomized mice. These data suggest that increased hepatic uptake may decrease the effectiveness of splenectomy in RBC-HZB hemolytic anemia and that glucocorticoids may decrease the hepatic uptake by reducing phagocytosis by Kupffer cells.

Animals↗

Decreased membrane potassium permeability and transport in human chronic leukemic and tonsillar lymphocytes.

Human blood T-lymphocytes increase their potassium (K+) permeability and active K+ transport following lectin or antigen stimulation. We have studied the permeability and active transport of K+ by lymphocytes in chronic lymphocytic leukemia (CLL) to determine if their membrane K+ transport was similar to resting or lectin-stimulated normal blood lymphocytes. K+ transport was assessed both by the rate of isotopic 42K+ uptake and by the rate of change in cell K+ concentration after inhibition of the K+ transport system with ouabain. CLL lymphocytes had a marked decrease in membrane K+ permeability and active transport of K+ when compared to blood T lymphocytes. K+ transport in five subjects with CLL (10 mmol.1 cell water-1.h-1) was half that in normal blood T-lymphocytes (20 mmol.1 cell water-1 h-1). Phytohemagglutinin (PHA) treatment of CLL lymphocytes did not increase significantly their active K+ transport, whereas K+ transport by normal T-lymphocytes increased by 100%. Since there were 73% T-lymphocytes in normal blood and 14% in CLL blood, the difference in membrane K+ turnover could be related either to neoplasia or to the proposed B-lymphocyte origin of CLL. We studied human tonsillar lymphocytes which contained a mean of 34% T-cells. In five studies of tonsils, K+ transport was 14 mmol.1 cell water-1.h-1 and treatment with PHA increased K+ transport only 30%. The intermediate values of basal K+ transport and K+ transport in response to PHA in tonsillar lymphocytes were consistent with the proportion of T-lymphocytes present. These data suggest that B-lymphocytes have reduced membrane permeability and active transport of K+. Thus the marked decrease in CLL lymphocyte membrane K+ permeability and transport may be a reflection of its presumed B-cell origin, rather than a membrane alteration related to malignant transformation.

B-Lymphocytes↗

Exodus of 42K+ and 86Rb+ from rat thymic and human blood lymphocytes exposed to phytohemagglutinin.

We have found that PHA produces an alteration in the lymphocyte membrane which allows 86Rb+ or 42K+ in prelabeled lymphocytes to exchange for cations present in washing solutions. These observations suggested that PHA might induce an increase in the exodus of intracellular potassium during incubation in physiologic media. We, therefore, examined 86Rb+ and 42K+ efflux from rat and human lymphocytes during incubation in tissue culture medium. The rate constant for efflux, Ke, was significantly increased by PHA. 86Rb+ efflux was increased by 27% in rat thymic lymphocytes and by 78% in human blood lymphocytes following PHA treatment.

Animals↗

Human lymphocyte potassium content during the initiation of phytohemagglutinin-induced mitogenesis.

The K+ content of human lymphocytes has been examined during the initial 24 hours after exposure of cells to phytohemagglutinin (PHA). We have reconfirmed that lymphocyte K+ exchanges rapidly for extracellular counterions during preparative washing if cells are exposed to PHA. By using a technique to measure cation content which does not require removal of cells from their culture medium, we have shown that K+ does not change for 24 hours following PHA treatment. Previous reports have demonstrated that an enhanced uptake of K+ occurs in lymphocytes treated with PHA. This increased uptake may be a compensatory change for an increased exodus, explaining the failure of K+ to change following lectin treatment.

Biological Transport↗

Potasssium transport in human blood lymphocytes treated with phytohemagglutinin.

We have confirmed that phytohemagglutinin (PHA) rapidly enhances the uptake of potassium (K+) by human blood lymphocytes. PHA, however, did not produce an increase in lymphocyte K+ concentration. The apparent steady-state of cell K+ concentration despite the marked increase in uptake of 42K+ could be explained by either an increase in K+-K+ exchange or an increase in concentrative (active) K+ accumulation in association with an increase in the leak of K+ from the cell. We compared, therefore, the uptake of 42K+ with the decrement in cellular K+ content when active transport was inhibited by ouabain. These studies established that K+-K+ exchange was negligible in human blood lymphocytes and that the increase in 42K+ uptake after PHA treatment represented concentrative transport. Our studies did indicate that 42K+ exodus from PHA treated lymphocytes increased markedly from 19 to 38 mmol-1 cell water-1-h-1. Within the same time period K+ influx into PHA-treated lymphocytes increased from 20 to 38 mmol-1 cell water-1-h-1. Thus, PHA produces a marked increase in the permeability of the lymphocyte membrane to K+, and the increase in active K+ influx in PHA-treated lymphocytes may represent a homeostatic response by the membrane K+ transport system to the increase in K+ efflux. Increased K+ turnover was observed at the lowest concentrations of PHA which produced an observable increase in [3H]thymidine incorporation into DNA. Thus, PHA produces an increase in K+ permeability that closely parallels its mitogenic effect. The rapid increase in K+ influx preceding blastogenesis and mitogenesis is required, therefore, to maintain normal intracellular K+ concentration. An adequate intracellular K+ concentration is essential for the synthetic processes required for cell transformation or division.

Biological Transport↗

A rapid phytohemagglutinin induced alteration in lymphocyte potassium permeability.

The exposure of rat and human lymphoid cells to mitogenic concentrations of phytohemagglutinin resulted in an apparent decrease in cellular K+ without a significant change in cellular Na+ when the cells were washed with isotonic Hepes buffered choline chloride prior to cation determination. The apparent reduction in total cellular Na+ plus K+ concentration, however, was not accompanied by a change in cell volume. We inferred that the constant cell volume could occur only if the lost intracellular K+ was exchanged for an external cation during the washing procedure used to prepare cells for Na+ and K+ measurement. This inference was supported by the quantitative recovery of lost cellular K+ in the choline chloride washing solution and the demonstration that a comparable proportion of 86Rb+ (K+ analogue) 42K+ was lost from prelabelled cells during choline chloride washing. Use of medium 199 with Hanks salts, 150 mM NaCl, or 100 mM MgCl2 as the washing solution did not prevent K+ exchange although exchange was less in the presence of MgCl2. These findings indicate that phytohemagglutinin produces a rapid alteration in lymphocyte plasma membranes so as to allow abnormal K+ exchange. This observation is of importance because investigators who measure intracellular solutes in phytohemagglutinin-treated lymphocytes must consider the possibility of lossduring preparative washes. Also, changes in membrane permeability following phytohemagglutinin treatment may modulate mitogenesis and/or permit the transmission of chemical messages between cells.

Animals↗

Cation transport and its altered regulations in human stomatocytic erythrocytes.

Cation transport in a population of stomatocytic red blood cells (RBC) is abnormal in the following respects. First, active transport against a gradient, defined as the nonisotopic net accumulation of Na+ or loss of K+ induced by 0.1 mM ouabain, is markedly elevated (7.3 and 6.3 mEq/liter cells/hr for Na+ and K+, respectively), but the Na+:K+ active transport ratio is normal. Apparent uncoupling of the Na+ and K+ isotope transport is due to disproportionately increased ouabain-sensitive 24Na+-23Na+ exchange (32.7 mEq/liter cells/hr), which is measured as a portion of 24Na+ isotope efflux. Second, cation transport is unresponsive to variations in internal Na+ concentration but decreases with decreasing extracellular Na+.

Anemia, Hemolytic, Congenital↗