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G B Segel

Publications and source records attributed to G B Segel.

68 records · Page 4Linked to original sources

Contrasting splenic mechanisms in the blood clearance of red blood cells and colloidal particles.

We have studied the blood clearance and organ uptake of colloidal particles and of antibody-coated and chemically treated Na2 51Cr O4-labeled erythrocytes (RBC) in mice. Hepatic and splenic uptake of both colloidal particles and autologous RBC coated with rabbit antibody were reduced significantly following pretreatment of animals with cortisone acetate. Hepatic removal of RBC previously treated in vitro with N-ethyl-maleimide (NEM) or phenylhydrazine-HCl (PHZ) was similarly depressed by pretreatment with cortisone. In contrast, the splenic uptake of NEM- and PHZ-altered erythrocytes was unaffected by cortisone. Scanning and transmission electron microscopic examination of perfused spleens from PHZ-injected animals demonstrated extensive mechanical trapping of Heinz body-containing RBC in sinus wall apertures, whereas little erythrophagocytosis was observed. These studies suggested that, while clearance of inert particulate matter and of antibody-coated RBC from the blood occurred primarily by a cortisone-suppressible, presumably phagocytic process in the spleen, chemically altered RBC were removed primarily by a cortisone-insensitive filtration process in the splenic microvasculature.

Animals↗

Energy metabolism in human erythrocytes: the role of phosphoglycerate kinase in cation transport.

Three models of disturbed erythrocyte metabolism, triose-depleted normal, phosphoglycerate kinase (PGK)-deficient, and pyruvate kinase (PK)-deficient cells, have been studied to examine further the role of PGK in erythrocyte cation transport. Sodium (Na-+) and potassium (K-+) transport were reduced only in cells fully depleted of triose. In such cells the PGK step presumably was inoperative due to total lack of substrate; 2,3-diphosphoglycerate (2,3-DPG) then became the sole substrate source for remaining steps in glycolysis. At increased intracellular Na-+ concentrations which normally stimulate transport and glycolysis, triose-depleted cells had marked impairment of cation transport and ouabain-inhibitable lactate and pyruvate production from 2,3-DPG. PGK-deficient cells and normal cells with high intracellular Na-+ concentrations had similar increases in transport and ouabain-inhibitable lactate production. PK-deficient cells with high intracellular Na-+ concentrations showed an appropriate increase in transport but less stimulation of lactate production. Transport was not related to total cellular adenosine triphosphate (ATP) concentration. These data suggested that normal coupled cation transport occurred despite diminished metabolite flow through PGK, as in PGK- or PK-deficient cells. Transport was diminished only in triose-depleted cells where metabolite flow through PGK was presumably absent. These data, therefore, support the concept that transport and glycolysis interact at the PGK step, although impairment of PGK must be profound before its effect on transport is evident.

Adenosine Triphosphate↗

Energy metabolism in human erythrocytes. II. Effects of glucose depletion.

Normal red cells were incubated in the absence of glucose to develop a system in which total adenosine triphosphate (ATP) turnover could be assessed. After 1 hr, the triose pool had been completely consumed. Thereafter, the metabolism of 2,3-diphosphoglycerate (DPG) to pyruvate and lactate was the sole significant source of ATP synthesis.10(-3)M CuCl(2), which did not enter the cells, diminished ATP utilization by more than 50%. This could be only partially attributed to the inhibition by copper of residual acylation and cation pumping, which were already reduced by glucose depletion. Other membrane enzymes, which presumably function in the maintenance of membrane integrity, must, therefore, use a significant portion of erythrocyte ATP. The behavior of glucose-depleted red cells with respect to cation transport was complex. The addition of ouabain did not decrease ATP utilization in these red cells. Ouabain inhibitable potassium influx was nearly normal after triose depletion, but total potassium influx was decreased. In contrast, the ouabain inhibitable sodium efflux was markedly reduced after triose depletion, although the concentration of ATP was 70% of normal. The dissociation of monovalent cation pumping suggests that the energy for active sodium transport is derived from a specific source (such as the ATP produced by the phosphoglycerate kinase reaction) distinct from that for potassium transport.

Adenosine Triphosphate↗

Prohibitin expression is increased in phorbol ester-treated chronic leukemic B-lymphocytes.

Chronic lymphocytic leukemia (CLL) is characterized by the gradual accumulation of immature B-lymphocytes. CLL B-lymphocytes mature to a plasmacytoid phenotype when treated in vitro with phorbol esters. CLL B-cell apparent maturation is associated with altered expression of specific plasma membrane and mitochondrial proteins including heightened expression of a 30-kDa heat shock protein 60 (hsp60) analog. During our efforts to further characterize this hsp60 analog by mass spectrometry, we detected the mitochondrial protein prohibitin in phorbol-ester-matured CLL B-lymphocytes. Prohibitin modulates cell proliferation and inhibits cell cycle traverse in several systems, although few data are available for lymphocytes. A twofold increase in prohibitin concentration was observed in phorbol-ester-matured compared to resting CLL B-cells as determined by quantitative Western immunoblot analysis. A similar increase in prohibitin was observed in phorbol-ester-treated normal human B-lymphocyte populations. An antisense oligonucleotide complementary to the 5' coding region of the prohibitin gene blunted the increase in prohibitin protein in phorbol-ester-treated CLL B-cells by 42%. These data suggest that increased prohibitin expression is associated with and may facilitate B-cell maturation.

Antineoplastic Agents↗

Plateletpheresis residues: a source of large quantities of human blood lymphocytes.

The residue from single-donor plateletpheresis contains a large number of human mononuclear cells. We have been able to harvest more than 1 X 10(9) viable lymphocytes for laboratory study from the leukocyte-rich sediment that previously had been discarded. Prior to removal by adherence 5 X 10(8) monocytes were also available for future purification, if desired. The physical properties and response to phytohemagglutinin were very similar when lymphocytes isolated from plateletpheresis residues were compared with those obtained directly from veneous blood.

Blood Platelets↗

Cloning of rabbit Cct6 and the distribution of the Cct complex in mammalian tissues.

Cct6 protein is one of the subunits of the Cct complex involved in ATP-dependent folding of cellular proteins. We used the cDNA of the human CCT6 subunit to obtain a full-length cDNA from a rabbit kidney cortex library. Two transcripts of 2 and 2.5 kb were detected in rabbit kidney and liver by Northern analysis. The rabbit CCT6 was 93% identical to the human gene; the deduced amino acid sequence was 97% identical. A phylogenetic analysis of Cct6 proteins from mouse, rabbit, human, and yeast showed greater similarities of Cct6 protein among the species than among other Cct subunits. The ATP-binding sites were perfectly conserved among mammals and yeast, supporting the role of Cct complex in ATP-dependent protein folding. Using a polyclonal antibody to human Cct6 protein and Western analysis, we found expression of this subunit in a variety of rabbit organs and tissues, as well as in bovine testes, human lymphocytes, human and rabbit reticulocytes, and in two cultured kidney cell lines. We also found Cct1 protein by Western analysis in several rabbit organs as well as in bovine testes. These data characterize the rabbit Cct6 subunit and compare it to its homologues. The Western analyses support the concept that Cct complex is widely distributed among tissues and highly conserved among eukaryotes.

Amino Acid Sequence↗