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Biomedical subjects

J T Tupper

Publications and source records attributed to J T Tupper.

At least 19 recordsLinked to original sources

Growth factor regulation of membrane transport in human fibroblasts and its relationship to stimulation of DNA synthesis.

Serum stimulation of serum-deprived or density-inhibited normal cells enhances the level of various nutrient and ionic transport systems. Certain of these systems have been implicated in the regulation of cell proliferation. However, the use of serum stimulation to activate quiescent cells leads to enhancement of numerous transport systems with little understanding of which component or components of serum are related to activation of which transport systems. In this study we attempt to identify the specific effect of three known growth promoting factors (insulin, dexamethasone and epidermal growth factor [EGF]) on the activation of four membrane transport systems (A-amino acids, L-amino acids, glucose and K+) in normal and SV40-transformed WI38 human fibroblasts. We have also evaluated the effect of these growth factors on the stimulation of DNA synthesis in growth factor deprived cells. Thus, we can correlate the effect on a given transport system with the relative mitogenic stimulation produced by the growth factor. We conclude a) that a growth factor can effect a transport system differently in a normal versus transformed cell, b) that a specific growth factor can effect multiple transport systems and, c) with the exception of K+ transport, enhanced transport induced by a given growth factor does not necessarily correlate with the mitogenic potency of the growth factor. This latter point is of particular significance since the activation of K+ transport reflects, based on other studies, activation of the Na+-H+ exchanger which has been implicated in cell-cycle activation.

Amino Acids↗

Calmodulin antagonists decrease the binding of epidermal growth factor to transformed, but not to normal, human fibroblasts.

Four psychoactive agents which inhibit calmodulin activity were used to study their effect on the binding of epidermal growth factor (EGF) to normal and simian-virus-40-transformed human fibroblasts (WI38). These calmodulin antagonists decreased the binding of 125I-labelled EGF to the transformed, but not to the normal, cell in a dose-dependent manner. The mechanism of this effect appears to be due to a decrease in the apparent affinity of the plasma-membrane EGF receptor for the EGF molecule.

Calmodulin↗

Intracellular calcium pools and their metabolic dependence in normal versus simian virus 40-transformed human fibroblasts.

Previous studies indicate that although normal and Simian virus (SV40)-transformed WI38 human fibroblasts have similar levels of intracellular Ca++ on a per mg protein basis, their ability to maintain this intracellular Ca++ against a low concentration of extracellular Ca++ differs markedly. The transformed but not the normal cells rapidly lose Ca++ when exposed to low extracellular Ca++, suggesting Ca++ transport and/or sequestration differ in the two cell types. In this study we have extended our investigations of Ca++ metabolism in the two cell types. We observe that normal WI38 cells, when exposed to metabolic inhibitors to deplete intracellular ATP, undergo a twofold increase in intracellular Ca++ levels. Under similar conditions and over the same time course, no comparable change in Ca++ level is observed in the SV40-transformed cell, despite the extensive depletion of ATP. 45Ca++ desaturation curves indicate that the bulk of the net increase in cell Ca++ following ATP depletion of the normal WI38 cell comes to reside in a slowly exchanging Ca++ pool. The data also indicate that glycolysis, and not oxidative phosphorylation, drives the active extrusion of Ca++ from these cells, an observation consistent with previous studies on the Na+-K+ pump in other cell types. Finally, the data indicate that in these cells mitochondria do not appear to be the major subcellular organelle responsible for regulation of at least the two cellular Ca++ pools measurable using isotope desaturation analysis. This is based on the inability of the respiratory inhibitor rotenone to alter significantly the size of either of these Ca++ pools. These pools compose 80-90% of total cell Ca++ in both cell types.

Adenosine Triphosphate↗

Calcium effects on epidermal growth factor receptor-mediated endocytosis in normal and SV40-transformed human fibroblasts.

Lowering of extracellular Ca2+ levels will reversibly arrest the growth of human fibroblasts (WI38). Simian virus40(SV40)-transformed WI38 cells do not exhibit this Ca2+-dependent arrest. One possibility for this difference in Ca2+ requirement is that extracellular or surface membrane-bound Ca2+ may be required for growth factor receptor-mediated endocytosis and this Ca2+ requirement may differ in normal versus transformed cells. In this study we have evaluated the role of Ca2+ in the binding, internalization, and degradation of epidermal growth factor (EGF) in the WI38 and SV40WI38 cell. The binding of [125I]EGF to the cell surface is not significantly altered by lowering of Ca2+ to 10(5)-M levels in either the normal or transformed cell. At this Ca2+ level, growth of the normal cell is inhibited. The subsequent internalization of EGF is reduced nearly threefold in the normal cell but not in the transformed cell following Ca2+ deprivation. Degradation of the EGF-receptor complex is also sensitive to Ca2+. A twofold reduction in the rate of release of acid-soluble 125I occurs in the normal but not the transformed cell under conditions of lowered medium Ca2+. In contrast, 2-chloro-10-3-aminopropyl phenothiazine (CP), an inhibitor of the Ca2+-dependent regulator protein calmodulin, causes an inhibition of [125I]EGF internalization and degradation in both the normal and transformed WI38 cell, and a marked inhibition of [125I]EGF binding to the cell surface receptor of the transformed cell but not the normal cell.

Calcium↗

Membrane transport properties differ following return of serum-deprived versus Ca++-deprived human fibroblasts to a proliferative state.

Human lung fibroblasts (W138) can be brought to a quiescent state by removal of serum from the medium or by lowering of the extracellular Ca++. Upon return of Ca++ or serum, the cells enter the G1 phase and progress to S within 15-18 hours. Since multiple G1 phase blocks have been demonstrated, we wished to determine whether the Ca++ and serum block were equivalent since previous data suggested that these two medium components may act at a common point in the initiation of proliferation. We have evaluated the membrane transport of 86Rb, 3-O-methylglucose, AIB, and cycloleucine following stimulation of quiescent cells by Ca++ or serum. Serum stimulation results in large increases in the influx of all the substances tested. These increases are prevented if Ca++ is absent upon serum stimulation or they are rapidly diminished following Ca++ removal. In contrast, Ca++ stimulation of Ca++-deprived cells causes little or no enhancement of any of the transport system, yet the cells progress to S phase in a manner similar to serum-stimulated cells. These results indicate that the Ca++ and serum G0 and G1 block are not equivalent and that the serum-induced change in transport of these components does not appear necessary for successful G1 phase progression. Furthermore, the data suggest that the sequence in which Ca++ or serum are presented to the cells alters the ability of Ca++ to modulate the transport systems. Quiescent cells which are exposed to Ca++ prior to serum possess a Ca++ modulation of several transport systems. Cells which are exposed to Ca++ subsequent to serum do not appear to possess this Ca++ regulation.

Biological Transport↗

Down regulation and recovery of the epidermal growth factor receptor in serum supplemented versus defined medium.

The down regulation of surface membrane receptors for 125I) epidermal growth factor (EGF) has been evaluated in normal and SV40-transformed human fibroblasts (WI38) under conditions of serum-supplemented versus defined growth media. Both normal and transformed WI38 cells down regulate and recover the EGF receptor and these processes do not differ significantly in serum-supplemented versus defined media. These data are in contrast to a recent study that reported that the HeLa cell does not down regulate the EGF receptor in defined media, whereas it does in serum-supplemented media.

Cell Division↗

Intracellular ionic changes in normal and transformed human fibroblasts after extracellular Ca2+ deprivation.

The lowering of extracellular Ca2+ concentration in the growth medium reversibly blocks normal, but not SV40-transformed WI38 diploid fibroblasts in the early G1/G0 phase of the cell cycle. This growth response is characterized by specific changes in ionic content and transport. Ca2+ deprivation (0.03 mM) has little effect on the K+ content of either normal or transformed cells. Na+ content, however, is increased nearly 2-fold in the normal cells. This increase is presumably due to a 3-fold increase in unidirectional Na+ influx in Ca2+-deprived cells. The increased intracellular Na+ also gives rise to a nearly 3-fold enhancement of the active (ouabain-sensitive) Na+ efflux. Ca2+ deprivation causes only slight increases in Na+ influx, ouabain-sensitive Na+ efflux and intracellular Na+ in the transformed cell. In contrast, the transformed cells lose nearly 60% of their intracellular Ca2+ on deprivation, whereas normal WI38 cells lose only 10%. The data suggest that the growth arrest exhibited by the normal cell but not the transformed cell may be related to different membrane-transport and permeability changes in response to Ca2+ deprivation.

Biological Transport↗

Related effects of calcium and serum on the G1 phase of the human W138 fibroblast.

Deprivation of extracellular Ca or serum inhibits the proliferation of WI38 human diploid fibroblasts. Under these conditions, the cells become quiescent at a point in the cell cycle typical of early G1 or G0 phase-arrested cells. Exit of the cells from this point in the cycle appears to require both the presence of serum and Ca simultaneously. If quiescent cells are serum-stimulated in low Ca medium (0.01 mM), they do not progress through G1 to the S phase, which normally requires 14-18 hr. However, they remain competent to do so. Addition of Ca for up to 48 hr after serum stimulation results in an equal fraction of the cells progressing G1 phase as compared to the presence of Ca at the time of serum addition. In contrast, if quiescent cells are serum-stimulated in the presence of Ca, which is then removed, the cells can remain competent to enter S phase for only 10-12 hr. Re-addition of Ca beyond this time does not allow G1 progression on a normal schedule. These data suggest that Ca and serum are both required to trigger, in whole or in part, the pleiotypic response. Ca appears also to render the cells competent to enter S phase, but this competence is labile; an observation consistent with the PDGF-induced competence observed previously in the 3T3 cell. These observations are in contrast to previous data from other cell types which suggest that Ca is required only in late G1 phase for successful entrance to S phase.

Calcium↗

Calcium transport and exchange in mouse 3T3 and SV40-3T3 cells.

The kinetics of Ca++ uptake have been evaluated in 3T3 and SV40-3T3 mouse cells. The data reveal at least two exchangeable cellular compartments in the 3T3 and SV40-3T3 cell over a 50-min exposure to 45Ca++. A rapidly exchanging compartment may represent surface-membrane-localized Ca++ whereas a more slowly exchanging compartment is presumably intracellular. The transition of the 3T3 cell from exponential growth (at 3 day's incubation) to quiescence (at 7 days) is characterized by a 7.5-fold increase in the size of the fast component. Quiescence of the 3T3 cell is also characterized by a 3.2-fold increase in the unidirectional Ca++ influx into the slowly exchanging compartment and a 3.6-fold increase in its size. The increase in size of the slow compartment at quiescence may result from a redistribution of intracellular Ca++ to a more readily exchangeable compartment, possibly reflecting a release of previously bound Ca++. In contrast, no significant change in any of these parameters is observed in the proliferatively active SV40-3T3 cells after corresponding period of incubation, even though these cells attained higher growth densities and underwent postconfluence.

Animals↗

Effect of imposed serum deprivation on growth of the mouse 3T3 cell. Dissociation from changes in potassium ion transport as measured from [86Rb)rubidium ion uptake.

Decreased serum concentrations that substantially alter the growth of normal 3T3 cells alter neither the active and non-active components of unidirectional (86)Rb(+) influx nor the intracellular K(+) content when compared with cells in exponential growth. Thus the changes in K(+) transport (measured with (86)Rb(+) as an analogue for K(+) movements) that occur on density-dependent growth inhibition of the mouse 3T3 cell are not mimicked by serum deprivation of the cells before density inhibition.

Animals↗

Serum-stimulated changes in calcium transport and distribution in mouse 3T3 cells and their modification by dibutyryl cyclic AMP.

Serum stimulation of quiescent 3T3 cells returns the cells to a proliferative state. Changes in Ca content, transport and distribution during the transition through G1 and S phase have been investigated following serum stimulation of these cells. 45 Ca exchange data indicate at least two kinetically defined cellular compartments for Ca; a rapidly exchanging component presumably representing surface Ca which is removable by EGTA and a slowly exchanging component presumably representing cytoplasmically located Ca. Previous studies (Tupper and Zorgniotti, '77) indicate that the approach to quiescence in the 3T3 cells is characterized by a large increase in the surface Ca component. The present data demonstrate that this component is rapidly lost following serum stimulation. Furthermore, the serum induces an 8-fold increase in Ca influx into the cytoplasmic compartment and a reduction in the unidirectional efflux rate coefficient for Ca. The increased Ca uptake peaks at approximately six hours (mid G1) and is accompanied by a parallel increase in cellular Ca. Prior to entrance of the cells into S phase (10-12 hours), Ca uptake declines. This is followed by a slower decline in cytoplasmic Ca levels. Simultaneous addition to fresh serum plus 0.5 mM dibutryl cAMP inhibits the entrance of the cells into S phase. Under these conditions the loss of surface Ca is not blocked. However, the presence of 0.5 mM dibutyryl cAMP inhibits the increase in Ca uptake and, in turn, diminishes the increase in cellular Ca following serum stimulation. In contrast, a low level of dibutyryl cAMP (0.1 mM) enhances progression through G1 phase but also reduces both Ca uptake and Ca content of the cells. The data suggest that the serum induced changes in Ca content and transport are linked to intracellular cyclic nucleotide levels and progression through G1 phase and that extracellular cAMP elevating agents may enhance of inhibit these interactions in a concentration dependent manner.

Animals↗

Variation in potassium transport properties of mouse 3T3 cells as a result of subcultivation.

Unindirectional potassium influx and the fraction of this influx sensitive to ouabain, an inhibitor of the (Na + K) activated ATPase, have been evaluated as a function of subcultivation of the 3T3 and SV40 transformed 3T3 cell. Total and ouabain-sensitive K influx change little over approximately 50 passages of the transformed 3T3 cell. In contrast, these components of K influx increase nearly 5-fold over a similar number of passages of the 3T3 cell. During early passages total and ouabain-sensitive K influx of the 3T3 cell are below that of the SV40 3T3 cell on a per cell volume basis. At later passages the magnitude of these components of K transport exceed those found in the SV40 3T3 cell. Previous studies have reported the ouabain-sensitive uptake of K and the levels of (Na + K) activated ATPase as being higher, lower or equivalent in the 3T3 versus transformed 3T3 cell. The present data suggest these differences may results from the degree to which the cells were passaged at the time of the experiments. Evaluation of previous studies substantiates this conclusion.

Adenosine Triphosphatases↗

Calcium content and distribution as a function of growth and transformation in the mouse 3T3 cell.

Total Ca content and that fraction of Ca sensitive to removal by the chelator ethylene glycol-bis(beta-aminoethyl ether)N,N,N',N'-tetraacetate (EGTA) have been investigated in the mouse 3T3 cell as a function of growth stage, transformation with SV40 virus, and serum levels of the media. Cells were allowed to grow through several doublings in media containing (45)Ca. The cellular content of (45)Ca was used to access total cell Ca. That fraction of (45)Ca removed by EGTA was presumed to represent primarily surface-localized Ca. The data are expressed on a per cell volume basis to compensate for size differences as a function of growth stage and transformation. During exponential growth phase, the 3T3 cell contains 525pmol Ca/mul cell volume. Of this, approx. 457 pmol/mul is not removable by EGTA and, presumably, is cytoplasmically located. This value is in close agreement with previous studies on the HeLa cell (470 pmol Ca/mul cell water after the removal of the surface Ca). The low level of EGTA- removable Ca present in the 3T3 cell during early exponential growth (68 pmol Ca/mul cell volume) increases progressively with increasing cell density, and upon quiescence it is sevenfold greater. In contrast, SV40- transformed 3T3 cells growing exponentially possess total levels of Ca which are approximately two-thirds the levels of the normal 3T3 cell. However, their EGTA-sensitive Ca is not significantly different from that of exponentially growing, normal 3T3 cells. As the transformed cells continue to grow at high density, their total ca and their sensitivity to EGTA do not change, in contrast to the normal 3T3 cell. Thus, an increase in Ca associated with the cell surface appears to be correlated with growth inhibition. This has been investigated further by regulating growth of the normal and transformed cell with alterations in the serum level of the media. In 4 percent calf serum the normal cell is stopped from continued proliferation. Growth stoppage under these conditions is characterized by a nearly fourfold increase in EGTA-removable Ca, similar to the increase observed upon quiescence in depleted 10 percent serum. Similar treatment of the transformed cell does not reduce its growth rate, nor does it significantly alter Ca distribution. However, at 0.5 percent medium serum levels, the SV40 3T3 growth rate is substantially reduced and, under these conditions, EGTA-removable Ca increases twofold.

Blood↗

Membrane transport in synchronized Ehrlich ascites tumor cells: uptake of amino acids by the A and L system during the cell cycle.

Using the double thymidine block technique. Ehrlich ascites tumor cells (ELD) carried in continuous spinner culture have been synchronized. Simultaneous monitoring of 3H-thymidine incorporation, cell number and mitotic index yielded a cell cycle time of approximately 13.5 hours. This is composed of an S period of 3-4 hours. G2 of 6-8 hours and M of 1-2 hours. No appreciable G1 is present. Ehrlich cells synchronized in this manner were used to investigate the characteristics of two neutral amino acid transport systems during progression through the cell cycle. Unidirectional influx via the Na-dependent system A was studied using C14-alpha-aminoisobutyrate (AIB) as substrate. The Na-independent system L was monitored using 3H-leucine and 14C-cycloleucine as substrates. Transport by the A system was minimal in M and early S. It underwent a three-fold increase during late S and early G2. In mid G2 the transport via this system rapidly dropped and remained low again through M and early S. The intracellular/extracellular ratios of AIB indicate that the system is actively transporting AIB thoughout the cell cycle. The minimum ratios of approximately 3 were achieved during early M and the maximum ratios of approximately 9 were achieved in late S, early G2. The uptake of leucine and cycloleucine by the L system was quite different during the cell cycle. Maximal unidirectional influx by this system occurred during early and mid S period. Upon progression into G2 the transport rate dropped and remained reduced throughout M. Intracellular/extracellular ratios of leucine or cycloleucine were near unity at the peak of the transport activity (early S) and dropped to values of 0.5 to 0.6 throughout the remainder of the cycle. This result indicates that inward transport by the L system is, for the most part, non-active in growing cells.

Amino Acids↗

Cell cycle dependent changes in potassium transport.

K transport has been investigated during progression of cultured Ehrlich ascites tumor cells through the cell cycle. Using a double thymidine block technique, Ehrlich cells carried in continuous culture have been synchronized, as verified by simultaneous monitoring of cell number, cell volume, 3H-thymidine incorporation and mitotic index. Unidirectional influx, efflux and cell content of K have been monitored throughout the cell cycle. The nature of the pump mediated, ouabain-sensitive K flux and the furosemide-sensitive component of K flux, presumably representing K-K exchange, have also been evaluated. In early S period the ouabain sensitive component, representing the Na-K pump, comprises 52% of the total unidirectional K influx and subsequently declines during G2 period to a minimum of 40% in mid G2. During M and early S the activity again rises. As the ouabain sensitive component becomes maximal in late S period, the furosemide sensitive component diminishes from approximately 30% of the total influx to approximately 10%. The same pattern is observed in the G2 period. As the pump component diminishes, the furosemide sensitive component increases. Furosemide sensitive K efflux has also been monitored and the pattern is equivalent to that observed in the invlux studies. No change in net K flux is observed in the presence of furosemide. This indicates that the furosemide sensitive component represents an exchange component for K. These results are consistent with the conclusion that the alterations in exchange and pump fluxes are physiological events associated with progression of the cell cycle.

Biological Transport, Active↗