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Biomedical subjects

S S Percival

Publications and source records attributed to S S Percival.

18 recordsLinked to original sources

Manganese enhances phosphorylation of a 47 kD protein in retinoic acid-induced HL-60 cells.

We previously observed that HL-60 cells treated with manganese (Mn) during differentiation displayed an enhanced oxidative burst. Since a Mn-dependent kinase has been identified and phosphorylation is involved in burst activation, the objective of this research was to identify proteins in retinoic acid-induced HL-60 cells whose phosphorylation after phorbol myristate acetate (PMA) stimulation was affected by Mn treatment. Cells received Mn during differentiation and were then harvested, labeled with [32]P-orthophosphate, and stimulated with PMA. Cytosolic proteins were separated by isoelectric focusing, SDS-PAGE, and two-dimensional (2-D) gel electrophoresis. Time studies showed that Mn treatment did not alter the rate of PMA activated phosphorylation. Isoelectric focusing revealed that PMA stimulation resulted in the appearance of three phosphoproteins at pI's of 6.8, 7.3, and 7.8. Size separation gels showed a 200% increase in phosphorylation of a 47 kD protein in Mn-treated cells after stimulation. The 2-D gels showed that the pI of this protein was 6.8. Therefore, Mn treatment resulted in greater phosphorylation of a 47 kD protein, pI 6.8, in phorbol ester-stimulated cells.

Cell Differentiation

Copper and immunity.

The immune system requires copper to perform several functions, of which little is known about the direct mechanism of action. Animal models and cells in culture have been used to assess copper's role in the immune response. Some of the recent research showed that interleukin 2 is reduced in copper deficiency and is likely the mechanism by which T cell proliferation is reduced. These results were extended to show that even in marginal deficiency, when common indexes of copper are not affected by the diet, the proliferative response and interleukin concentrations are reduced. The number of neutrophils in human peripheral blood is reduced in cases of severe copper deficiency. Not only are they reduced in number, but their ability to generate superoxide anion and kill ingested microorganisms is also reduced in both overt and marginal copper deficiency. This mechanism is not yet understood. Neutrophil-like HL-60 cells accumulate copper as they differentiate into a more mature cell population and this accumulation is not reflected by increases in Cu/Zn superoxide dismutase or cytochrome-c oxidase activities. The identity of copper-binding proteins in this cell type may be useful in learning new functions of copper or assessing copper status. Neutrophils, because they are short-lived and homogeneous cell populations, are predicted to be an effective and valuable tool for assessing nutrient status in human populations.

Animals

Arrested maturation of granulocytes in copper deficient mice.

The objective of this study was to examine the role of copper in neutrophil development and function. Mice were made copper deficient by feeding dams a diet containing 1.05 microg copper starting at parturition. Control mice were fed the same diet containing 6 microg copper. The pups were weaned to the diet and killed when they were 5-6 wk old. Peripheral blood cell counts, margination and cell maturity were measured. The response to an intraperitoneal injection of lipopolysaccharide (LPS) was also determined. Copper deficiency resulted in twice as many neutrophils and fewer than half the number of lymphocytes. Half as many cells in copper-deficient mice expressed Ly-6G, a granulocytic marker of cell maturity. In addition, copper-deficient cells expressed only half the amount of Ly-6G per cell than was expressed by copper-adequate cells. This suggested that the cells were younger, or arrested in their maturation as a result of copper deficiency. An arrest of maturation has been proposed as the cause of neutropenia in human copper deficiency. Injection of LPS in copper-adequate mice resulted in twice as many Ly-6G-expressing cells in the periphery. LPS injection into copper-deficient mice resulted in a severe leukopenia but did not influence Ly-6G expression any more than did copper deficiency alone. LPS treatment caused an increase in myeloperoxidase activity associated with the lungs of copper-deficient mice. The results suggest that although the neutrophils of copper-deficient mice are immature, they can be sequestered by the lung when stimulated to do so.

Animals

Reduced copper enzyme activities in blood cells of children with cystic fibrosis.

Cystic fibrosis patients are at risk for nutrient deficiencies from malabsorption related to exocrine pancreatic insufficiency. This research examined the copper homeostasis of children with cystic fibrosis. Our objective was to measure cytochrome oxidase and copper-zinc superoxide dismutase activities in mononuclear cells, neutrophils, and erythrocytes of adolescents with cystic fibrosis, as well as plasma copper and ceruloplasmin. Thirteen adolescents with pancreatic insufficiency caused by cystic fibrosis were compared with 10 age- and sex-matched control subjects. Serum copper concentrations and ceruloplasmin measurements were not significantly different between the two groups. Cytochrome oxidase activity was significantly lower in the mononuclear cells and copper-zinc superoxide dismutase activity was significantly lower in the neutrophils and erythrocytes of the cystic fibrosis group. Other measures of trace element status such as hemoglobin concentration, serum ferritin, serum zinc, glutathione peroxidase activity, and manganese superoxide dismutase activity were not different between the two groups. Reductions in the activity of two copper-dependent enzymes suggest abnormal copper homeostasis in this population.

Adolescent

Neutropenia caused by copper deficiency: possible mechanisms of action.

Although copper is an essential nutrient in the human diet, overt or severe copper deficiency is not a major public health concern in the United States. A marginal or borderline deficiency has been suggested by researchers, although the widespread nature of copper deficiency has yet to be established. Reports indicate that copper deficiency occurs secondary to gastric resection, unsupplemented total parenteral nutrition, high levels of zinc intake, or general malnutrition. An early clinical sign of copper deficiency is a reduction in the number of circulating neutrophils. Although copper is known to play a wide variety of roles in the organism and in the immune system, the molecular mechanism for copper-deficient neutropenia is not known. Very little data exist with which to examine this question. This paper will summarize our existing knowledge of the mechanism by which copper deficiency results in neutropenia. Although the data are scarce, analysis of this question will allow us to better understand additional molecular roles of this trace element, and, in turn, to promote an improved knowledge of immune cell functions and cellular differentiation.

Cell Differentiation

Effects of long-term moderate exercise on iron status in young women.

The impact of long-term (6-month) moderate exercise on the iron status of previously sedentary women was determined by randomly assigning 62 college-age women into one of the following four groups: 1) 50 mg.d-1 iron supplement, low iron diet (N = 16); 2) Placebo, free choice diet (N = 13); 3) Meat supplement to achieve 15 mg.d-1 iron intake (N = 13); and 4) Control, free choice diet (N = 20). All groups except the Control group exercised 3 d.wk-1 at 60%-75% of their heart rate reserve. VO2max was measured at baseline and week 24. Blood was sampled at baseline and every 4 wk thereafter for 24 wk to measure iron status and to elucidate the causes for alterations in iron status. Subjects had depleted iron stores throughout the study as indicated by their serum ferritin levels (< 15 ng.ml-1). Serum iron, total iron binding capacity and transferrin saturation were not compromised with exercise. Mean hemoglobin level in the Placebo/Ex group was significantly (P < 0.05) lower than the 50 Fe/Ex and the Meat/Ex groups by week 24. However, changes in serum albumin, haptoglobin, and erythropoietin data from the study cannot explain these changes.

Adult

Manganese stimulates the oxidative burst of differentiated HL-60 cells.

Incubation with manganese results in a twofold increase in the oxidative burst of differentiated HL-60 cells. This stimulation was characterized by examining the dose response, length of incubation time, and specificity of manganese. Manganese only stimulated the burst in cells induced to differentiated with retinoic acid and not in undifferentiated HL-60 cells. Incubation with manganese did not result in a greater number of differentiated cells. The maximum stimulation occurred at 0.2 mumol/L manganese. Stimulation of the oxidative burst required 96 h of incubation with manganese, since cells incubated with the same levels of manganese for the last 24 h of culture did not result in any stimulation. Magnesium, present in the incubation medium at physiological serum levels (820 mumol/L) also stimulated the oxidative burst, whereas iron (0.3 mumol/L), zinc (18 mumol/L), and copper (12 mumol/L) had no effect. To determine whether manganese and magnesium stimulated the burst differently, the initial rates of superoxide anion production was determined. The initial rate of the reaction proceeded rapidly in cells incubated with manganese, whereas there appeared to be a lag before magnesium-treated cells produced superoxide anion. Thus, manganese seems to stimulate the oxidative burst differently than magnesium.

Analysis of Variance

Cu/Zn superoxide dismutase activity does not parallel copper levels in copper supplemented HL-60 cells.

The objective of this research was to develop a method for measuring Cu/Zn-superoxide dismutase (Cu/Zn-SOD) (E.C. 1.15.1.1) in HL-60 cells and subsequently examine the relationship between cellular copper levels and the activity of this copper-requiring enzyme. In cells such as the neutrophil or HL-60 promyelocyte cell line, the activity of Cu/Zn-SOD cannot be measured because of an increase in the oxidation rate of the substrate by some unknown compound in the cells. Others have utilized heat treatment to inactivate the responsible compounds, however, we found that heat treatment of HL-60 cells resulted in a loss of over half of the activity of the enzyme. The method described here utilizes sodium azide to inhibit the substance(s) that are responsible for the enhanced rate of pyrogallol's oxidation. Gel filtration data confirmed that the compound responsible for the enhanced rate of pyrogallol oxidation was sensitive to azide and did not affect Cu/Zn-SOD activity. When HL-60 cells were incubated with various levels of copper, Cu/Zn-SOD activity did not reflect the cellular copper levels.

Azides

Retinoic acid-induced HL-60 cell differentiation is augmented by copper supplementation.

The objective of this study was to determine how copper influences the ability of HL-60 cells to differentiate into cells of the granulocytic lineage. We hypothesized that granulopoiesis requires copper because copper-deficient humans become neutropenic. Differentiation of HL-60 cells along the granulocytic lineage with retinoic acid was enhanced by copper. The results showed a greater number of cells were more differentiated when copper was added to the medium for 96 h. The respiratory burst activity of retinoic acid-induced cells was increased by copper supplementation, but intracellular superoxide anion generation was not affected. Supplementation with copper resulted in more cell-associated copper in both noninduced and induced cells; however, the induced cells accumulated three times more copper than the noninduced cells. Even though the amount of copper associated with retinoic acid-treated cells was greater than in untreated cells, the activity of a copper-requiring enzyme, copper/zinc superoxide dismutase, was significantly lower. Copper supplementation increased the activity of this enzyme in both retinoic acid-treated and untreated cells. Cytochrome c oxidase activity was not affected by retinoic acid treatment or by copper supplementation. Copper seems to play a specific role during the early stages of granulocyte differentiation.

Cell Differentiation

Copper is required to maintain Cu/Zn-superoxide dismutase activity during HL-60 cell differentiation.

The objective of these studies was to characterize the relationship between copper levels and Cu/Zn superoxide dismutase (Cu/Zn-SOD) during cellular differentiation. It was hypothesized that the decrease in Cu/Zn-SOD activity that accompanied differentiation would be reversed by supplementing the culture medium with copper. HL-60 cells, a human promyelocytic cell line, were induced to differentiate with retinoic acid and were concurrently supplemented with copper or a copper chelator, tetraethylenepentamine. The results showed that retinoic acid-treated cells contained more copper after differentiation. When the medium was supplemented with copper during retinoic acid treatment, the differentiating cells accumulated more copper than the nondifferentiating cells. Differentiation was accompanied by a significant reduction in Cu/Zn-SOD activity and a slight reduction in Cu/Zn-SOD protein. Activity returned to control values when an extracellular source of copper was provided. Incubation of retinoic acid-treated cells with the chelator showed that they lost proportionally less copper than the noninduced controls. Levels of Cu/Zn-SOD protein were not affected by the copper or chelator treatments. It was concluded that the requirement of differentiating HL-60 cells for copper is not related to providing copper for Cu/Zn-SOD activity. If a supplemental source is not supplied in the medium, then the cells may acquire copper from an intracellular source, namely Cu/Zn-SOD.

Analysis of Variance

HL-60 cells can be made copper deficient by incubating with tetraethylenepentamine.

A system for studying copper deficiency was developed in a cell culture model. HL-60 cells were incubated with three chelators known to bind copper. One chelator, tetraethylenepentamine (TEPA), reduced cellular copper levels and the activities of two copper-requiring enzymes, Cu/Zn-superoxide dismutase (Cu/Zn-SOD) and cytochrome c oxidase. The specificity of the chelator was assessed by incubating cells with both copper and TEPA and, in other experiments, with zinc and TEPA. Copper levels, Cu/Zn-SOD activity and cytochrome c oxidase activity were restored to control values when copper and TEPA were added to cultures simultaneously, indicating the TEPA was responsible for reducing these aspects of copper metabolism. Incubating with both zinc and TEPA reduced copper levels relative to the control, but did not reduce Cu/Zn-SOD activity to the same extent as TEPA alone. The chelation of copper was a time-dependent process that was stable for at least 4 d. Cell growth and viability were not affected by TEPA. Respiratory burst activity, an indicator of differentiation, was not affected by TEPA, demonstrating that the reduction of Cu/Zn-SOD activity was due to copper chelation and not due to changes in Cu/Zn-SOD protein levels that occur during differentiation. Loss of copper, as well as a reduction of the activity of two copper-requiring enzymes, provides evidence that TEPA is a useful compound for creating a functional copper deficiency in cell culture.

Copper

Iron metabolism is modified by the copper status of a human erythroleukemic (K562) cell line.

Copper deficiency is known to result in a microcytic, hypochromic anemia. Red cells of copper-deficient animals have less hemoglobin than their copper-adequate counterparts. The objective of this work was to determine what role copper plays in maintaining hemoglobin levels. It was hypothesized that the primary defect lies in intracellular iron metabolism. The influence of copper supplementation on iron uptake and storage was examined in a cell line capable of hemoglobin synthesis. The results demonstrated that copper supplementation of human K562 cells was associated with higher cytosolic iron levels and ferritin levels. Copper supplementation of the cell culture altered the initial rate of iron uptake from transferrin and enhanced iron uptake in noninduced cells; however, in hemin-induced K562 cells, which express fewer transferrin receptors on the cell surface, copper appeared to reduce iron uptake. Subsequent studies showed that the cells were able to take up the same amount of iron from transferrin when incubated over a longer period of time (24 hr). In the noninduced (non-hemoglobin synthesizing) cells, proportionally more iron was associated with the ferritin. We concluded from these studies that copper affects both uptake and storage of iron and that copper supplementation reduces cellular iron turnover.

Cell Line

Regulation of Cu,Zn superoxide dismutase with copper. Caeruloplasmin maintains levels of functional enzyme activity during differentiation of K562 cells.

K562 cells, a human erythroleukaemic cell line blocked for differentiation, commit towards erythrocytes when exposed to haemin (20 microM). The cells synthesize fetal haemoglobins and show site-specific binding of caeruloplasmin, a plasma copper protein. These events are set into motion by haemin. On the assumption that the binding of caeruloplasmin could reflect a greater need for copper, we sought to determine whether the transfer of 67Cu from caeruloplasmin was accelerated in haemin-induced compared with non-induced K562 cells. Cu,Zn superoxide dismutase (CuZnSOD) was the recipient. Haemin induction caused the K562 cells to lose CuZnSOD activity. By 96 h, the level of SOD activity was less than 60% of that of non-induced cells. The loss was confined entirely to the CuZn form, MnSOD activity staying essentially unchanged. Although CuZnSOD activity declined with the haemin induction, the incorporation of [4,5-3H]lysine into immunoprecipitable CuZnSOD protein was unaffected. There was also no change in CuZnSOD mRNA concentration in haemin-induced cells. Thus a loss of enzyme did not correlate with a decline in the synthesis de novo of CuZnSOD protein. When 48 h-induced cells were transferred to a medium supplemented with 0.2 microM-caeruloplasmin, CuZnSOD activity was restored to control levels in 24 h. Caeruloplasmin also stimulated the incorporation of [3H]lysine into immunoprecipitable CuZnSOD protein. Caeruloplasmin addition may have affected a post-translational regulatory site for CuZnSOD biosynthesis, possibly by providing copper for the newly synthesized enzyme.

Biological Transport

A role for ascorbic acid in copper transport.

Scurvy-like symptoms have been seen in experimental copper deficiency. This forecasts a role for the vitamin in copper metabolism. Ascorbate has been known to antagonize the intestinal absorption of copper. More recent studies have characterized a postabsorption role for ascorbate in the transfer of copper ions into cells. The vitamin reacts directly or indirectly with ceruloplasmin, a serum copper protein, specifically labilizing the bound copper atoms and facilitating their cross-membrane transport. Ascorbate at physiological levels and above impedes the intracellular binding of copper to Cu,Zn superoxide dismutase. The mechanism is unclear but nonetheless suggests both positive and negative regulatory functions for ascorbate in copper metabolism.

Absorption

Copper transport from ceruloplasmin: characterization of the cellular uptake mechanism.

Copper uptake from 67Cu-labeled ceruloplasmin (67CuCp) was studied in K-562 cells, a human erythroleukemic cell line. 67CuCp was prepared by an ascorbate-catalyzed exchange of recrystallized ceruloplasmin with 67CuCl2. The labeled protein was treated with Chelex-100 and gel filtration to ensure that 67Cu was tightly bound to the structure. 67CuCp bound specifically to the K-562 cells at 4 degrees C. The binding was linear with protein in the range of 200-800 nM and in the presence of 3% albumin. In this concentration range, 67CuCl2 showed no binding that could be interpreted as specific; 80-90% of the cell-bound 67Cu was removed by washing the cells with acid buffer. When binding was attempted at 37 degrees C, a significant fraction of the 67Cu resisted acid washing and with time accumulated in the cells. Fractionating the cytosolic components on Percoll gradients located the 67Cu in buoyant fractions of densities 1.030-1.05, with a peak at 1.035. Repeating the experiment with 125I-labeled ceruloplasmin failed to localize any 125I label in Percoll fractions; very little 125I was detected in the cytosol. Double-labeled 67Cu-125I-ceruloplasmin confirmed that copper and not the protein moiety of ceruloplasmin was taken up by the cells. The uptake reaction was inhibited by 1 mM bathocuproine sulfonate and by 1 mM sodium iproniazid. Ascorbate (100 microM) strongly stimulated uptake. These studies provide evidence that K-562 cells are able to extract copper atoms from ceruloplasmin and transport the copper to the cytosol.(ABSTRACT TRUNCATED AT 250 WORDS)

Biological Transport

Copper transport: insights into a ceruloplasmin-based delivery system.

Ceruloplasmin binds to the membranes of K562 cells. The binding has been shown to result in a temperature-dependent transfer of ceruloplasmin-bound copper into the cytosol. Ascorbic acid (100 microM) stimulates the transmembrane transfer nearly 10-fold, depending on the initial concentration of 67Cu-ceruloplasmin. The protein moiety of ceruloplasmin does not enter the cells. Bathocuproine disulfonate, a chelator specific for cuprous copper, inhibits the uptake, suggesting copper atoms are reduced concomitant with their removal from ceruloplasmin. Cytosolic 67Cu from ceruloplasmin was found mainly bound to Cu, Zn superoxide dismutase, the major cytosolic copper protein in these cells. Evidence supporting the various phases in the ceruloplasmin-mediated transport mechanism are presented.

Ascorbic Acid

Ascorbate enhances copper transport from ceruloplasmin into human K562 cells.

Copper uptake from human ceruloplasmin (Cp) into cells of a human erythroleukemic cell line, K562, was investigated. The interaction between ascorbic acid and the copper atoms in ceruloplasmin was a focal point of the study. Nondenatured 67Cu-labeled ceruloplasmin (67Cu-Cp) was prepared by an ascorbate-catalyzed exchange of Cp with 67CuCl2 in vitro. The complex was stable, even in the presence of 1.0 mM ascorbate. Adding K562 cells and incubating at 37 degrees C resulted in an immediate transfer of 67Cu from ceruloplasmin to the cells. At 37 degrees C the copper accumulated by the K562 cells resisted dissociation by mild acid washing. The rate of transfer of 67Cu was proportional to the Cp concentration in the medium. Ascorbate (100 microM) enhanced the uptake of 67Cu at least fourfold. D-Isoascorbate worked as well as L-ascorbate, suggesting that the reducing potential of the vitamin (or its isomer) was important in the uptake of copper. Approximately 20% of the 67Cu absorbed into the cytosol was precipitable with antibodies to Cu-Zn superoxide dismutase (Cu-Zn SOD). Ascorbate, however, did not enhance the incorporation of radioactivity into Cu-Zn SOD, suggesting that copper may not be the only rate-limiting factor in the synthesis of this enzyme in K562 cells. The possible relevance of these observations to vitamin C deficiency is discussed.

Ascorbic Acid

Long term pancreatic response to feeding heat damaged casein in rats.

Rats were fed a heat damaged casein (autoclaved 24 hours, 121 degrees, 2 atm) diet to determine the effect of poorly digested protein on pancreatic enzyme levels and response to a meal. After 10 days of feeding, the pancreas showed no signs of atrophy, however, chymotrypsin and amylase activities were lower in proportion to body weight. An estimation of secretion during the meal was similar or slightly lower in rats fed heated casein (HC) as compared to the casein diet (C), but a greater levels of enzyme activity was found in the intestinal contents of rats fed HC relative to control rats. These results suggest that the turnover of enzymes in the gut is reduced when a less digestible protein is fed, and that the endogenous pancreatic secretions and the dietary protein are not digested and absorbed as well.

Amylases