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Low molecular weight protamine: a potent but nontoxic antagonist to heparin/low molecular weight protamine.

To avoid bleeding complications, protamine is routinely used after cardiovascular surgery to neutralize the anticoagulant function of heparin. However, its clinical use is associated with adverse and sometimes fatal reactions. Based on literature review of the mechanism of heparin neutralization and protamine induced immunologic toxicity, we propose the following hypothesis: If a chain shortened low molecular weight protamine (LMWP) containing the heparin neutralizing domain could be derived from native protamine, it could be a potent and yet nontoxic heparin antagonist. In this study, we present results to validate this hypothesis. LMWP fragments containing an intact arginine sequence and an average molecular weight of approximately 1,100 daltons were successfully prepared by enzymatic digestion of protamine with thermolysin. In vitro studies show that such LMWP fragments completely neutralized the anticoagulant functions of heparin and LMWH, based on the anti-Xa chromogenic and aPTT clotting time assays. In vivo results reveal that although injection of protamine to mice led to obvious production of anti-protamine antibodies, injection of LMWP did not elicit any detectable immunogenic responses. In addition, these LMWP fragments exhibited a markedly reduced antigenicity and cross-reactivity toward the mice anti-protamine antibodies.

Animals↗

Protamine-mediated transport of albumin into brain and other organs of the rat. Binding and endocytosis of protamine-albumin complex by microvascular endothelium.

High doses of intravenous protamine cause generalized vascular permeability changes in brain and other organs, and concomitant hypoproteinemia. The present investigations test the hypothesis that protamine has a dual action of both binding serum proteins and of undergoing absorptive-mediated transcytosis through microvascular endothelial barriers. Binding of albumin to protamine was demonstrated using equilibrium dialysis, and protamine was shown to selectively augment the uptake of albumin, but not sucrose, in isolated bovine or human brain capillaries. In contrast, the anionic macromolecule, dextran sulfate, resulted in an increased capillary uptake of both albumin and sucrose in vitro. The selective effects of protamine on albumin transport were also documented in vivo using an external organ technique; the intravenous injection of 1.5 mg/kg protamine resulted in a marked and selective influx of albumin into brain, heart, kidney, lung, and liver, and the increased albumin transport exceeded the increased sucrose uptake in some organs by an order of magnitude. The transcytosis of protamine through the cerebral microvascular barrier was documented with an internal carotid artery perfusion technique. In summary, these studies provide evidence for protamine-mediated vectorial transport of albumin through microvascular barriers in brain and other organs.

Animals↗

Protamine pretreatment attenuation of hemodynamic and hematologic effects of heparin-protamine interaction. A prospective randomized study in human beings undergoing aortic reconstructive surgery.

Hemodynamic and hematologic responses to protamine sulfate reversal of heparin's anticoagulant effects were studied in 15 consecutive randomized patients undergoing aortic reconstructive surgery. In a double-blinded manner, patients were pretreated with either normal saline solution (n = 8) or protamine (0.75 mg/kg/3 min, n = 7) 5 minutes before heparinization (150 IU/kg). After aortic grafts were placed, protamine (1.5 mg/kg/3 min) was administered intravenously to reverse the heparin. Arterial blood pressure, heart rate, pulmonary artery and capillary wedge pressure, central venous pressure, and cardiac output were monitored, as were platelet count, white blood cell count, activated clotting time, total hemolytic complement levels, and C3a levels. Calculated parameters included systemic vascular resistance and pulmonary vascular resistance. Pretreatment with protamine compared with saline solution prevented the hypotension (+6 vs. -16 mm Hg, p less than 0.05) and declining pulmonary artery pressure (+1 vs. -7 mm Hg, p less than 0.01) observed with protamine reversal of heparin. Significant differences between the two groups in central venous pressure and pulmonary vascular resistance were of less clinical relevance. Protamine pretreatment lessened the thrombocytopenia found during reversal compared with saline-pretreated patients although the difference was not statistically significant. Minimal hypotension occurring after protamine pretreatment alone was not accompanied by hemodynamic or hematologic changes, other than decreased heart rate.(ABSTRACT TRUNCATED AT 250 WORDS)

Aged↗

Isolation and amino-acid sequence analysis of human sperm protamines P1 and P2. Occurrence of two forms of protamine P2.

The two protamines of human sperm cell nuclei, P1 and P2, were isolated in pure form after extraction with 6M guanidine/5% mercaptoethanol and alkylation with vinyl pyridine by reversed-phase high-performance liquid chromatography. The amino-acid sequence of protamine P1 was determined by analysing the intact protein and the fragments obtained by cyanogen bromide cleavage. Out of the 50 amino-acid residues 24 are arginines and 6 are cysteines. The sequence of protamine P2 was determined by analysing the intact protein and the fragments resulting from cleavage with endoproteinase Lys-C and thermolysin. Protamine P2 was found to occur in two forms which only differ in their N-terminal regions. The form P2' is three amino-acid residues longer at the N-terminus than the form P2''. Out of the 57 amino-acid residues in the longer form 27 are arginines and 5 are cysteines. Human protamine P1 is highly homologous with the protamines isolated from bull, boar, ram and mouse sperm cells, but human protamine P2 shows a novel type of structure, although also here the dominant amino acids are arginine and cysteine.

Amino Acid Sequence↗

The primary structure of a chondrichthyan protamine: a new apparent contradiction in protamine evolution.

We have determined the primary structure of protamine R3 from ratfish (Hydrolagus colliei), a species belonging to the order Chimaeriformes (an old phylogenetic line among the chondrichthyes). Protamine R3 contains 48 residues organized as follows: ARRRH SMKKK RKSVR RRKTR KNQRK RKNSL GRSFK (Q/A)HGFL KQPPR FRP. Comparison of this sequence with both protamine Z3 from Scyliorhinus canicula (a chondrichthyan) and typical protamines from bony fish generates an apparent contradiction: Two relatively close species (H. colliei and S. canicula, both chondichthyes) display different protamines, whereas species more distant in evolution (S. canicula and bony fish) contain very similar protamine molecules. We note that this is not an isolated case in the evolution of sperm nuclear basic proteins (SNBPs) and discuss the possible significance of this fact.

Amino Acid Sequence↗

Genomic analysis of the mouse protamine 1, protamine 2, and transition protein 2 gene cluster reveals hypermethylation in expressing cells.

To understand the role of chromatin structure in the expression of the mouse protamine 1, protamine 2, and transition protein 2 genes during spermatogenesis, we have examined the genomic organization of this cluster of "haploid-specific" genes. As seen in the human genome, protamine 2, transition protein 2, and approximately 2.8 kb of a CpG island, hereafter called CpG island-dTP2, were clustered in a small region. Methylation analyses of this region have demonstrated that i) unlike most other tissue-specific genes, the protamine 1, protamine 2, and transition protein 2 genes were located in a large methylated domain in round spermatids, the cell type where they are transcribed, ii) the protamine 1 gene was only partially methylated in somatic cells and in testes from 7-day-old mice, and iii) the approximately 2 kb upstream and downstream of the CpG island-dTP2 were only partially methylated in somatic tissues. DNase I analysis revealed the presence of at least five strong DNase I hypersensitive sites over the CpG island-dTP2 in somatic tissues, but not in germ cells, and sequence analysis indicated that the CpG island-dTP2 is homologous to a CpG island located approximately 10.6 kb downstream of the human transition protein 2 gene. Although the nature of a CpG island-dTP2 and the function of a CpG island-dTP2-containing somatic tissue-specific DNase I hypersensitive sites in close proximity to the germ cell-specific gene cluster are unclear, the "open" chromatin structure of the CpG island-dTP2 may be responsible for the partial methylation pattern of the flanking sequences including the transition protein 2 gene in somatic tissues.

Animals↗

Human sperm protamines. Amino-acid sequences of two forms of protamine P2.

Human protamine P2 was purified to homogeneity by solubilizing whole spermatozoa in guanidinium X HCl containing 2-mercaptoethanol, alkylating the resulting protamine thiols with vinylpyridine, removing acid-insoluble material by acid dialysis and using CM-cellulose chromatography to remove non-protamine basic proteins and separate protamines P1 and P2. The P2 preparation contained two components, P2a and P2b, which were sequenced completely without being separated. The peptides obtained from thermolysin and endoproteinase Lys-C digestions were purified by reverse-phase high-pressure liquid chromatography and sequenced using a gas-phase sequencer. P2a contains 57 amino acids and has a relative molecular mass of 7636 while P2b contains 54 amino acids, which are identical to residues 4-57 of P2a, and has a relative molecular mass of 7242. Protamine P2a is approximately 50% homologous with human protamine P1. The amino acid sequence of P2a is: (sequence; see text)

Amino Acid Sequence↗

Anaphylaxis to subcutaneous neutral protamine Hagedorn insulin with simultaneous sensitization to protamine and insulin.

We report an insulin-treated diabetic patient who suffered, in a 2-month period, three severe anaphylactic reactions immediately after self-administered subcutaneous injections of neutral protamine Hagedorn (NPH) human recombinant-DNA insulin. These reactions consisted of local and systemic symptoms, including dyspnea and hypotension. A simultaneous sensitization to human insulin and to protamine was demonstrated, both by skin tests and by the determination of serum specific IgE. Suspecting protamine allergy, we performed a test dose to human lente insulin with perfect tolerance. After a 1-year follow-up with lente-insulin treatment, no reactions have occurred, despite treatment interruptions. Therefore, protamine IgE-mediated allergy probably caused our patient's reactions. In conclusion, protamine sensitization should be ruled out in any patient with a history of reactions to subcutaneous protamine-containing insulins, even if insulin sensitization is present.

Adult↗

Improved protamine-sensitive membrane electrode for monitoring heparin concentrations in whole blood via protamine titration.

An improved protamine-sensitive electrode based on a polymeric membrane doped with the charged ion exchanger dinonylnaphthalenesulfonate (DNNS) is used for monitoring heparin concentrations in whole blood. The electrode exhibits significant nonequilibrium potentiometric response to polycationic protamine over the concentration range of 0.5-20 mg/L in undiluted whole-blood samples. The sensor can serve as a simple end point detector for the determination of heparin via potentiometric titrations with protamine. Whole-blood heparin concentrations determined by the electrode method (n > or = 157) correlate well with other protamine titration-based methods, including the commercial Hepcon HMS assay (r = 0.934) and a previously reported potentiometric heparin sensor-based method (r = 0.973). Reasonable correlation was also found with a commercial chromogenic anti-Xa heparin assay (r = 0.891) with corresponding plasma samples and appropriate correction for whole-blood hematocrit levels. Whereas a significant positive bias (0.62 kU/L; P < 0.001) is observed between the anti-Xa assay and the protamine sensor methods, insignificant bias is observed between the protamine sensor and the Hepcon HMS tests (0.08 kU/L; P = 0.02). The possibility of fully automating these titrations offers a potentially simple, inexpensive, and accurate method for monitoring heparin concentrations in whole blood.

Bias↗

Lethal effect of protamine and histone on competent Bacillus subtilis cells. Inhibition of genetic transformation by protamine in sublethal concentration.

Under experimental conditions of genetic transformation, protamine and total histone were bactericidal for Bacillus subtilis cells. The abilities to cause lethality were very similar for both, either protamine or histone, with no antagonistic effects amongst these natural polycations. With both basic proteins acting simultaneously the enhancement was higher than a summation of the separate lethal effects. Sublethal concentration of protamine added at the beginning of transformation time, produced a strong inhibition of transforming efficiency. The same concentration added later than 10 min from the start of transformation had no inhibitory effect. These facts together with the absence of inhibition by simple pretreatment of DNA alone as well as the cell protection by protamine against lytic activity of lysozyme, suggest a protamine-cell surface interaction which impedes DNA uptake events.

Bacillus subtilis↗

The binding of protamines to DNA; role of protamine phosphorylation.

The thermodynamics of protamine-DNA interation was investigated with clupeine Z from herring labeled at its amino terminus with fluorescein. The ionic strength dependence, the influence of protamine phosphorylation, of the native DNA conformation, using native and heat-denatured DNA, and of the protamine primary structure, using two oligoarginine peptides of similar length as the clupeine, was thoroughly studied. The unusually high cooperativity of interaction found is strictly correlated to the native DNA conformation and the protamine primary structure. Cooperativity is explained by cross-linking of DNA segments resulting in an increase of the negative charge density. The importance of protamine phosphorylation lies in the fact that thermodynamically governed interaction with DNA and favorable cross-linking of DNA are shifted to physiologically reasonable ionic strengths.

Animals↗

Polymerization of protamine sulphate by carbodiimide and interaction of isolated protamine polymers with human red blood cells.

A method using a water-soluble carbodiimide to polymerize protamine sulphate is described. The behaviour of polymerized protamine in Sephadex chromatography and in polyacrylamide gel electrophoresis indicates that protamine has been polymerized into aggregates with defined molecular weights. Turbidimetrical titrations of the isolated protamine polymers with dextran sulphate show that the cationic charge density has been conserved after polymerization. The binding characteristics of the protamine polymers to human red blood cells as measured by cell electrophoresis indicate increased affinity with increased molecular weight of the polymer.

Binding Sites↗

Red cell ghost-mediated microinjection of RNA into HeLa cells. II. Cellular translation of protamine mRNA; post-translational modifications and nuclear binding of newly-synthesized protamine.

Red cell ghosts loaded with protamine messenger RNA (pmRNA) were fused to HeLa cells using polyethylene glycol, as a means of introducing the mRNA into heterologous cells. The recipient cells were capable of translating the RNA into the three protamine polypeptides, which may be resolved as three peaks (CI, CII, and CIII) by cation exchange chromatography. The synthesis of components CII and CIII was easily observed with possible traces of CI as well. The HeLa cells also phosphorylated CII after synthesis. However, this phosphorylation did not occur with CIII. In addition, CII but not CIII localized in the nucleus of the HeLa cells after synthesis. Thus, a correlation of post-translational modification with nuclear entry was observed. Localization in the nucleus, however, was not accompanied by the same tight binding of protamine to chromatin as is seen in the homologous trout testis spermatid cells. In the spermatid cells, protamine elutes from chromatin at a salt concentration of 1.2 M NaCl. In contrast, in the HeLa cells, the newly synthesized CII which had entered the nucleus, could be eluted with 0.6 M NaCl. Thus, the tight binding of protamine to chromatin in trout testis may require a series of concomitant developmental events, such as core histone hyper-acetylation (Christensen, M E & Dixon, G-H. In press) [17], which would be lacking in the HeLa cells.

Cell Compartmentation↗

Primary structure of rabbit sperm protamine, the first protamine of its type with an aberrant N-terminal.

Rabbit protamine was extracted from S-(pyridylethylated) sperm cell nuclei with hydrochloric acid and then isolated by reversed-phase HPLC. The primary structure was determined by amino acid sequence analysis of the total protein and of fragments obtained by digestion with endoproteinase Lys-C and thermolysin. The protamine contains 49 amino acid residues and is clearly homologous with mammalian type 1 protamines, 47% of the positions being invariant. Surprisingly, rabbit protamine possesses an N-terminal valine residue, whereas all mammalian and several non-mammalian protamine sequences of this type start with alanine, the N-terminal region being remarkably conserved during evolution.

Amino Acid Sequence↗

Determination of low-molecular-weight heparins and their binding to protamine and a protamine analog using polyion-sensitive membrane electrodes.

A polycation-sensitive membrane electrode based on the ion-exchanger dinonylnaphthalene sulfonate has previously been developed and used as an end-point detector for the determination of unfractionated heparin in whole blood samples via simple potentiometric titration with protamine. Herein, we report the application of the same methodology for the quantitation of a commercial low-molecular-weight heparin (LMWH) preparation (Fragmin) in whole blood samples at concentrations up to 2 U/ml. Further, an analogous polyanion (heparin)-sensitive electrode is used to estimate the binding constants between protamine and various LMWH preparations. The equilibrium constants (Keq) and the number of binding sites per mole of heparin (n) are determined by recasting the data in the form of a Scatchard plot. Results show that the average molecular weight and molecular weight distribution of the LMWH preparation are important parameters affecting their binding with protamine. Comparable binding constants are obtained for the same LMWH preparations titrated with a synthetic protamine analog, [+18RGD] [acetyl-EA(R2A2R2A)4R2GRGDSPA-NH2].

Anticoagulants↗

Isolation and characterization of two protamines St1 and St2 from stallion spermatozoa, and amino-acid sequence of the major protamine St1.

Two protamines, St1 and St2, were isolated from stallion sperm nuclei, where they represent about 75 and 25%, respectively, of the total basic protein complement. The primary structure of protamine St1 (49 residues; Mr approximately equal to 6600) has been determined. The structure of this protamine is compared to the amino-acid sequence of other mammalian protamines already known.

Amino Acid Sequence↗

The histidine-rich protamine from ostrich and tinamou sperm. A link between reptile and bird protamines.

We have characterized for the first time the proteins of two different species of palaeognathous birds, Struthio camelus australis (ostrich) and Nothoprocta perdicaria sanborni (Chilean tinamou). Similar to what had been previously reported in neognaths, the electrophoretic mobility, amino acid composition, and primary structure of the main protamine (P-II) component of these two species of birds are similar. However, in contrast to neognathous birds, the protamines from paleognaths display a higher electrophoretic mobility and a significantly different amino acid composition and protein sequence. The sperm and the main protamine component P-II from the ostrich reveal structural and compositional characteristics intermediate between neognathous birds and reptiles. The marked differences between the protamines and sperm structure of neognaths and paleognaths provide support to a phylogenetic relationship between neornithine birds in which these two groups represent two separate phylogenetic lines. Furthermore, these results shed some additional light on the controversial origin of birds. They provide further molecular support to the fossil record that suggests that reptiles and birds are closely related.

Alligators and Crocodiles↗

Disturbances of nuclear condensation in human spermatozoa: search for mutations in the genes for protamine 1, protamine 2 and transition protein 1.

During spermiogenesis, the successive replacement of the somatic histones by basic proteins, the transition proteins and protamines, allows normal sperm nuclear condensation. It was suggested that disturbances in nuclear condensation may result in male infertility. Here we report the first molecular analysis of the structure of three genes which code for germ cell-specific nuclear proteins, namely protamine 1 (PRM1), protamine 2 (PRM2) and transition protein 1 (TNP1) in infertile men with disturbed sperm chromatin condensation. In 36 infertile men whose spermatozoa showed a positive reaction with aniline blue, which is an indication for the presence of histones in the nuclei, the complete nucleotide sequences of the coding regions and 5' and 3' untranslated regions of the three genes were evaluated. In addition, 10 infertile patients with oligoasthenoteratozoospermia were studied in the same way, as well as nine infertile patients whose spermatozoa showed a reduction of the protamine 2 content. We did not detect any mutation in the three genes in any of the patients. We assume that the disturbances in the sperm chromatin condensation of our patients, and those described in the literature, are not primarily due to mutations in the genes for PRM1, PRM2 and TNP1.

Base Sequence↗