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Biomedical subjects

B L Horecker

Publications and source records attributed to B L Horecker.

At least 55 records · Page 3Linked to original sources

The primary structure of rat parathymosin.

Parathymosin has been isolated from rat thymus and from rat liver. Its primary structure is reported as follows: (Sequence; see text). The blocking group at the NH2 terminus was identified by mass spectrometry as acetyl. Regions homologous to amino acid sequences in prothymosin alpha were found to be located between residues 14-20, 23-25, 33-39, 41-43, and 83-87 of parathymosin.

Amino Acid Sequence↗

Cytolytic effects of neutrophils: role for a membrane-bound neutral proteinase.

A neutral serine proteinase, purified 250-fold from the plasma membrane fraction of human neutrophils, differs in its catalytic and molecular properties from the well-known neutral proteinases present in azurophil (primary) granules. Stimulation of neutrophils with low concentrations of phorbol 12-myristate 13-acetate (PMA) results in the release into the medium of the membrane-bound proteinase and the concomitant production of oxygen radicals. These concentrations of PMA also induce full cytolytic activity measured with 51Cr-labeled ox erythrocytes. A role for the neutral serine proteinase in the cytolytic activity of PMA-stimulated neutrophils is supported by the following observations: (i) the lytic activity of the stimulated neutrophils is correlated with the quantity of neutral proteinase present in the membranes; (ii) the extracellular medium from PMA-stimulated neutrophils causes the cytolysis of 51Cr-labeled erythrocytes that have been exposed to nonlytic concentrations of H2O2; (iii) cytolysis of H2O2-treated erythrocytes is also observed with the crude proteinase solubilized from neutrophil membranes or with the purified proteinase from the same source; and (iv) in each case the cytolytic activity is proportional to the proteinase activity present and is prevented by the addition of serine proteinase inhibitors. We conclude that cytolysis of target cells by PMA-activated neutrophils can result from the cooperative effects of oxygen radicals and the membrane-bound neutral serine proteinase. The participation of enzymes from specific (secondary) granules is excluded because, with the low concentrations of PMA employed, very little release of secondary granule constituents is observed.

Cytotoxicity, Immunologic↗

Purification and properties of rabbit liver cathepsin M and cathepsin B.

Cathepsins M and B from rabbit liver lysosomes were separated by chromatography on Ultrogel AcA34 at low ionic strength and purified to homogeneity, and their catalytic and molecular properties were compared. Cathepsin M was relatively inactive with synthetic peptide substrates. Thus, it hydrolyzed benzoyl arginine naphthylamide at only one-fifth the rate observed with cathepsin B, and no activity was detected with Gly-Phe naphthylamide which is a relatively good substrate for cathepsin B. On the other hand, cathepsin M exhibited a preference for protein substrates. It was more active than cathepsin B in catalyzing the inactivation of the following enzymes: rabbit muscle or liver fructose-1,6-bisphosphate aldolases, rabbit liver fructose-1,6-bisphosphatase and pyruvate kinase, yeast glucose-6-phosphate dehydrogenase, and rabbit muscle glyceraldehyde-3-phosphate dehydrogenase. With glucagon as substrate, both enzymes showed similar peptidyl dipeptidase activities with some minor differences in peptide bond specificity. Cathepsins M and B are similar in size, with apparent molecular weights of 30,200 for cathepsin M and 28,800 for cathepsin B, and in amino acid composition and carbohydrate content. Each contains approximately 2-3 equivalents/mol glucosamine, 3 equivalents/mol mannose, and no fucose or galactosamine. They also show similar microheterogeneity in sodium dodecylsulfate-gel electrophoresis and isoelectric focusing; this microheterogeneity is probably related to differences in glycosylation. Extensive homology in primary structure for the two proteins was indicated by the similar patterns of peptides formed on digestion with trypsin.

Amino Acids↗

A radioimmunoassay for thymosin alpha 1 that detects the native polypeptide, prothymosin alpha.

A radioimmunoassay, developed for thymosin alpha 1, can also be utilized for the quantitation of the intact native polypeptide, prothymosin alpha, which contains the thymosin alpha 1 sequence at its NH2-terminus (Haritos et al., 1984a). The major epitope was characterized and found to include residues 1-10 at the NH2-terminus of thymosin alpha 1. As little as 5 pmol of prothymosin alpha can be detected in tissue extracts with this radioimmunoassay.

Amino Acid Sequence↗

Role of phospholipids in the activation of the Ca2+-dependent neutral proteinase of human erythrocytes.

Activation of the Ca2+-dependent neutral proteinase of human erythrocytes in the presence of Ca2+ and a digestible substrate (Pontremoli, S., Sparatore, B., Melloni, E., Michetti, M. and Horecker, B.L. 1984, Biochem. Biophys. Res. Communs. 123, 331-337) is promoted by phospholipids such as phosphatidylcholine, phosphatidylinositol and phosphatidylserine. The presence of at least one unsaturated fatty acid chain is essential and metabolic derivatives such as dioleylglycerol, phosphorylserine and free fatty acids are ineffective. The most effective promoter was a freshly prepared mixture of phospholipids from human erythrocyte membranes. Activation involves conversion of the 80 kDa proenzyme (procalpain) subunit to the 75 kDa active proteinase and is irreversible. Phospholipids act by producing a large decrease in the concentration of Ca2+ required for the conversion of procalpain to active calpain.

Calcium↗

Binding to erythrocyte membrane is the physiological mechanism for activation of Ca2+-dependent neutral proteinase.

In the presence of micromolar concentrations of Ca2+ the catalytic 80 kDa subunit of human erythrocyte procalpain binds to the cytosolic surface of the erythrocyte membrane. Binding is rapid, highly specific and is reversed by the removal of Ca2+. In the bound form the 80 kDa catalytic subunit undergoes a rapid conversion to calpain, the active 75 kDa Ca2+-requiring proteinase. The activated proteinase produces extensive degradation of membrane components, particularly of band 4.1 and 2.1 proteins. Binding to membranes may represent an obligatory physiological mechanism for the conversion of procalpain to calpain.

Calcium↗

Simultaneous isolation and determination of prothymosin alpha, parathymosin alpha, thymosin beta 4, and thymosin beta 10.

A method was described for the isolation of peptides from rat thymus. Frozen, powdered tissue was suspended in boiling buffer to inactivate endogenous proteinases, the suspension was homogenized, and the peptides were isolated by a two-step procedure including gel filtration and purification by HPLC. The recoveries from rat thymus were, in micrograms per gram of whole tissue, 60-80 for prothymosin alpha, 50-80 for thymosin beta 4, and 20-30 for thymosin beta 10. The procedure also yielded smaller quantities of a fourth peptide, designated parathymosin alpha. The quantities of these peptides in vertebrate tissues can be evaluated by applying radioimmunoassays for prothymosin alpha and thymosin beta 4 to the boiled tissue extract.

Amino Acids↗

Sequence of a cloned 523-bp cDNA for thymosin beta 4.

The sequence of a 523-bp cDNA, isolated from a clone bank prepared from partially purified rat spleen mRNA coding for thymosin beta 4, was described. The 3' sequence extended through the poly(A) segment and the 5' sequence included 36 bp preceding the translated sequence. The putative amino acid sequence coded by this segment possesses some of the features of a signal peptide.

Amino Acid Sequence↗

Binding of protein kinase C to neutrophil membranes in the presence of Ca2+ and its activation by a Ca2+-requiring proteinase.

In the presence of micromolar concentrations of Ca2+, both protein kinase C and a cytosolic Ca2+-requiring neutral proteinase of human neutrophils become associated with the neutrophil membrane. Binding to the membrane results in activation of the proteinase, which then catalyzes limited proteolysis of the kinase to produce a form that is fully active in the absence of Ca2+ and phospholipid. This irreversibly activated protein kinase is released from the membrane and may thus have access, in the intact cell, to intracellular protein substrates. In the absence of the proteinase, Ca2+ promotes the binding of protein kinase C, but conversion to the Ca2+/phospholipid-independent form does not occur and the kinase remains associated with the membrane fraction.

Blood Platelets↗

Primary structure of rat thymus prothymosin alpha.

The primary structure of prothymosin alpha from rat thymus, containing 113 amino acid residues, is reported as follows: (formula; see text) The sequence of the first 28 amino acids at the NH2 terminus is identical to that of calf thymosin alpha 1. The dicarboxylic amino acids, which account for nearly half of the total residues in prothymosin alpha, are largely clustered in the central portion of the polypeptide chain. The polypeptide contains no aromatic or sulfur-containing amino acids. A computer analysis of the three-dimensional structure based on the primary sequence suggests that the molecule is composed of at least five alpha-helical regions interrupted by one short extended chain and three short random coils.

Amino Acid Sequence↗

Parathymosin alpha: a peptide from rat tissues with structural homology to prothymosin alpha.

A peptide, parathymosin alpha, containing approximately equal to 105 amino acid residues, has been isolated from rat thymus, and the sequence of the first 30 residues at the NH2 terminus has been determined. In this region, it shows 43% structural identity with thymosin alpha 1 and prothymosin alpha. The common sequences do not include residues 2-9, which accounts for the poor reactivity of parathymosin alpha with an antibody directed against this epitope in thymosin alpha 1. Parathymosin alpha appears to modulate the action of prothymosin alpha in protecting sensitive strains of mice against opportunistic infection with Candida albicans.

Adjuvants, Immunologic↗

Activation by hemoglobin of the Ca2+-requiring neutral proteinase of human erythrocytes: structural requirements.

The proenzyme form of the Ca2+-requiring neutral proteinase of human erythrocytes (procalpain) is converted to the active proteinase (calpain) by low concentrations of Ca2+ in the presence of appropriate substrates such as beta-hemoglobin or heme-free beta-globin chains. Modification of these substrates by limited proteolysis with calpain abolishes their ability to promote the conversion of procalpain. A similar requirement for the presence of unmodified beta-hemoglobin or heme-free beta-globin chains is observed for the autocatalytic inactivation of calpain. The conversion of procalpain to calpain is accompanied by a small decrease in the molecular mass of the catalytic subunit, from 80 kDa to 75 kDa; however, the activation is not accelerated by the addition of a small quantity of calpain. The autocatalytic inactivation of active CANP is related to the disappearance of the 75 kDa subunit and the formation of smaller peptide fragments.

Calpain↗

Binding of monoclonal antibody to cathepsin M located on the external surface of rabbit lysosomes.

A monoclonal antibody raised against rabbit liver cathepsin M binds to intact rabbit liver lysosomes. The binding is specific and is abolished by treating the lysosomes with trypsin, which has previously been shown to digest the membrane-bound cathepsin M [S. Pontremoli, E. Melloni, M. Michetti, F. Salamino, B. Sparatore, and B. L. Horecker (1982) Biochem, Biophys. Res. Commun. 106, 903-909]. Rabbit liver lysosomes are adsorbed onto Sepharose 4B coupled to anti-cathepsin M, but not to Sepharose 4B itself or to Sepharose coupled to a nonspecific antibody. The results confirm the location of membrane-bound cathepsin M on the outer surface of the lysosomal membrane.

Animals↗