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Low-affinity platelet factor 4 1H NMR derived aggregate equilibria indicate a physiologic preference for monomers over dimers and tetramers.

Low-affinity platelet factor 4 (LA-PF4), unlike another related, sequentially homologous (about 50%) platelet-specific protein, platelet factor 4 (PF4), is an active mitogenic and chemotactic agent. PF4 exhibits a high binding affinity for heparin, while LA-PF4 does not. Both PF4 and LA-PF4 can exist in dimer and tetramer aggregate states. Equilibrium constants for PF4 aggregation have recently been estimated from fractional populations derived from proton nuclear magnetic resonance (NMR) integrals assigned to resonances in monomer, dimer, and tetramer states [Mayo & Chen (1989) Biochemistry 28, 9469]. On a 500-MHz NMR time scale, relatively slow exchange among LA-PF4 aggregate species has also allowed Tyr 15 ring proton resonances to be assigned for monomer, dimer, and tetramer states in LA-PF4. As a function of pH and ionic strength, equilibrium association constants for LA-PF4 dimer (KD) and tetramer (KT) formation have been estimated from Tyr 15 ring proton resonance integrals. At low ionic strength, KD reaches a minimum value of 12 M-1 at pH 3 where KT is at its maximum value of 1.6 x 10(5) M-1. At pH 4.1, KD and KT have the same value, 1.1 x 10(3) M-1, which is the minimum value for KT. KD plateaus off to its maximum value of 2.2 x 10(4) M-1 by pH 5.5. These values are significantly lower than those for PF4. Analysis of the pH dependence of KD and KT suggests that electrostatic interactions probably among Glu/Asp and Lys/Arg side chains form the predominant force in the monomer-monomer binding process, i.e., KD, while like-charge repulsion due to proximal, intersubunit Glu/Asp residues decreases KT as the pH is raised. At pH 7 and low ionic strength, the dimer state is highly favored over the tetramer state. Elevating the solvent ionic strength at pH 7 destabilizes the dimer state. Under these more physiologic conditions, i.e., pH 7 and 0.1-0.2 M NaCl, LA-PF4 monomers are highly favored over dimers and tetramers. For PF4 under similar solvent conditions, tetramers predominate. Differences in biological activities between these homologous platelet-specific proteins may be the result, at least in part, of differing aggregation properties. The biologically active state for PF4 is tetramer, while for LA-PF4 it is monomer. Quaternary structure may, therefore, account for strong heparin binding in PF4, most likely by presenting a more favorable structural matrix for effective glycosaminoglycan interactions.

Amino Acid Sequence↗

Interrelationship of protamine and platelet factor 4 in the neutralization of heparin.

To determine the interaction of platelet factor 4 (PF4) and protamine sulfate in the neutralization of heparin in plasma in vitro studies were carried out using a tritium-labeled heparin and a PF4 tagged with 14C. Plasmas treated with various combinations of PF4, protamine and heparin were chromatographed on Sephadex G200 and the fractions were tested for both radioactivity and antithrombin activity. PF4 was comparable to protamine in its ability to neutralize heparin, but the complexes formed with heparin were different. In contrast to protamine, when heparinized plasma was treated with an excess of PF4, no large PF4-heparin complexes were formed and none of the PF4-heparin complexes which did form were able to activate antithrombin III (ATIII). Also, incubation of PF4-neutralized, heparinized plasma at 37 degrees C did not result in liberation of heparin and prolongation of the thrombin clotting time as was found with protamine-neutralized plasma. The action of protamine and PF4 is complimentary. When half the neutralizing dose of each was added together to heparinized plasma, no immediate antithrombin activity remained. When a neutralizing dose of protamine was added to PF4-neutralized, heparinized plasma, the protamine displaced the PF4 from its complexes with heparin. The large protamine-heparin complexes which formed also contained PF4 but could not activate fresh ATIII as has been demonstrated with protamine-heparin complexes without PF4. On incubation of the protamine-PF4-neutralized, heparinized plasmas for 5 hours at 37 degrees C, the large complexes were broken down but no active heparin appeared. The results of these experiments may have some bearing on the amount of protamine needed for the neutralization of heparin following extracorporeal bypass procedures, when large amounts of PF4 may have been released from activated or disrupted platelets.

Chromatography↗

Further characterization of antibody and antigen in heparin-induced thrombocytopenia.

Patients with immune heparin-induced thrombocytopenia (HIT) possess antibodies that bind to a complex of platelet factor 4 (PF4) and heparin. We observed that HIT antibodies will also bind to PF4 alone adsorbed on polystyrene ELISA wells but not to soluble PF4 in the absence of heparin. Having developed a technique to affinity-purify anti-PF4-heparin HIT IgG, we are able to provide the first estimates of the avidity of HIT IgG. HIT IgG displayed relatively high functional affinity for both PF4-heparin (Kd = 7-30 nM) and polystyrene adsorbed PF4 alone (Kd = 20-70 nM). Furthermore, agarose beads coated with PF4 alone were almost as effective as beads coated with PF4 plus heparin in depleting HIT plasmas of anti-PF4-heparin antibodies. We conclude that the HIT antibodies which bind to polystyrene adsorbed PF4 without heparin are largely the same IgG molecules that bind PF4-heparin and therefore most HIT antibodies bind epitope(s) on PF4 and not epitope(s) formed by part of a PF4 molecule and part of a heparin molecule. Binding of PF4 to heparin (optimal) or polystyrene/agarose (suboptimal) promotes recognition of this epitope.

Aged↗

Structural and functional comparison of the genes for human platelet factor 4 and PF4alt.

Platelet factor 4 (PF4) is a 70 amino acid heparin-binding protein released from the alpha-granules of activated platelets. Its exact biologic function is not known, although PF4 is a member of a multigene family involved in chemotaxis, coagulation, inflammation, and cell growth. We previously cloned the cDNA for human PF4 from a human erythroleukemic (HEL) cell expression library. We now report the isolation and sequence determination of the gene for human PF4. This gene contains three exons and spans approximately 1,000 basepairs (bp). Concurrently, we have cloned a highly homologous gene that we have called PF4alt. We show that PF4 and PF4alt are non-allelic genes: the human PF4 gene is encoded on a 10 kilobasepairs (kb) EcoRI fragment, and its DNA sequence agrees with protein and cDNA data for PF4, while PF4alt is encoded in a polymorphic 3 or 5 kb EcoRI fragment. Compared with PF4, this gene has 14% DNA and 38% amino acid divergence in the signal peptide region, and 2.6% DNA and 4.3% amino acid divergence in the coding region of the mature protein. PF4alt contains three amino acid substitutions (P58----L, K66----E, and L67----H) near the C-terminus, in a region known to be critical for PF4 function. Primer extension studies show the 5'-untranslated region of PF4 is 73 bp long. A TATA box is present 30 bp 5' to the transcription start site. A 90 bp stretch of pyrimidines (including 53 consecutive thymidine residues) begins at -227 bp and is analogous to a similar region of 30 residues 5' to the rodent PF4 gene. This pyrimidine-rich region is absent from the PF4alt gene; however, DNA homology exists between the two human genes in the 5'- and 3'-flanking regions and extends for over 3.6 kb. Alternating purine/pyrimidine tracts occur both 5' and 3' to PF4 and PF4alt but do not define the endpoints of the gene duplication, which extend beyond these sequences at least at the 5' end. Northern blot analysis using gene-specific oligonucleotides and platelet RNA showed an 800 or 900 nucleotide (n) message for PF4 and PF4alt, respectively. Northern blot and primer extension studies show that steady-state platelet PF4 mRNA levels are approximately one magnitude greater than PF4alt mRNA levels. Thus, these studies demonstrate that PF4alt mRNA is expressed in platelets. Whether PF4alt protein is expressed remains to be determined, and the nature of its biologic function needs to be studied.(ABSTRACT TRUNCATED AT 400 WORDS)

Base Sequence↗

Role of kidney in the catabolic clearance of human platelet antiheparin proteins from rat circulation.

UNLABELLED: Stimulated platelets release at least two antiheparin proteins: platelet factor 4 (PF4) and low affinity platelet factor 4 (LA-PF4) from which beta-thromboglobulin (beta TG) is derived. We have found previously marked elevation of LA-PF4/beta TG antigen in platelet poor plasma of patients with chronic renal failure, whereas levels of PF4 remained normal. Therefore, we examined the role of the kidneys in the metabolic clearance of LA-PF4/beta TG and PF4. The supernates of aggregates of thrombin-stimulated human platelets were injected into sham operated control rats, nephrectomized rats, and into rats with acute ureteral ligation. The disappearance of human LA-PF4/beta TG antigen and PF4 in rat plasma determined by specific radioimmunoassays followed biphasic exponential curves. The half-lives (t1/2) for the fast and slow components of LA-PF4 in control rats were 6.4 and 68.4 min. Nephrectomy significantly increased these times to 9.7 and 144 min, while ureteral ligation resulted in no significant change. Comparison of the level of LA-PF4/beta TG antigen and of creatinine in aorta and in renal vein showed 25%-30% extraction of these compounds by the kidney. Less than 0.1% of the total LA-PF4 antigen injected was recovered in the urine of control rats. In contrast to these results, the clearance of PF4 was not affected by nephrectomy. IN CONCLUSION: (1) functional renal tissue is necessary for normal clearance of LA-PF4/beta TG, but renal excretion does not play a major role in its elimination suggesting that the protein is catabolized by the kidney; and (2) catabolic clearance of PF4 does not depend on functioning kidney tissue.

Animals↗

Inhibitory effect of platelet factor 4 on human erythroleukemic cells is dependent on cell surface heparan sulfate.

We have previously reported that platelet factor 4 (PF4) inhibits human erythroleukemic (HEL) cell growth in a dose-dependent fashion in vitro and that PF4 binds to HEL cells in a specific, saturable, and concentration-dependent manner. In this article we demonstrate that the binding of PF4 on HEL cells and its inhibitory effect on HEL cell growth were mediated by heparan sulfate. We found that binding of iodine 125-labeled PF4 to HEL cells was inhibited by heparin, heparan sulfate, and dermatan sulfate and to a smaller extent by chondroitin sulfate. Ninety percent of 125I-labeled PF4 bound to HEL cells was released by cells after exposure to heparin and heparan sulfate. Treatment of cells with heparitinase and heparinase induced a decrease in the binding of 125I-labeled PF4 to cells. Binding of 125I-labeled PF4 was partially inhibited by the presence of increasing concentrations of protamine sulfate and basic fibroblast growth factor. To test whether PF4 bound to cell surface proteoglycans, proteoglycan synthesis was inhibited by using 4-methylumbelliferyl-beta-D-xyloside. The binding of 125I-labeled PF4 on treated cells was decreased, and xyloside treatment of cells abrogated the biologic activity of PF4 in a plasma clot culture system. The inhibitory effect of PF4 was retained in a serum-free agar culture system, which indicates that the binding of PF4 to HEL cells induces cell growth inhibition in a direct fashion. Taken together, these findings suggest that PF4 directly acts on HEL cell growth by fixation on heparan sulfate proteoglycans on the HEL cell surface.

Cell Division↗

Negative regulation of human megakaryocytopoiesis by human platelet factor 4 and beta thromboglobulin: comparative analysis in bone marrow cultures from normal individuals and patients with essential thrombocythaemia and immune thrombocytopenic purpura.

The effect of human platelet factor 4 (PF4) and beta-thromboglobulin (BTG) on megakaryocyte colony formation in normal subjects as well as in essential thrombocythaemia (ET) and in immune thrombocytopenic purpura (ITP) was studied. Both PF4 and BTG were found to be capable of inhibiting the development of isolated megakaryocytes and their colonies in normal marrow cultures in a dose-dependent fashion. A significant 50% inhibition was seen at a PF4 or BTG concentration of 1-2.5 micrograms/ml, and complete inhibition in the range of 5-10 micrograms PF4 or BTG/ml. The two platelet proteins had similar effects on megakaryocyte development. A combination of PF4 and BTG resulted in an additive effect. Antibodies against PF4 or BTG could effectively neutralize the inhibitory effect of PF4 or BTG respectively. In ET and ITP, in vitro megakaryocyte development was also inhibited by PF4 and BTG in a similar way to that seen in normal subjects, suggesting that the responsiveness of megakaryocyte progenitors to PF4 and BTG is normal in these two disorders. PF4 and BTG did not affect the growth of colony forming units granulocyte-macrophage (CFU-GM) except at very high concentration (greater than or equal to 10 micrograms/ml) but they did inhibit erythroid colony formation by normal and ET burst forming units erythroid (BFU-E). However, the inhibition of BFU-E by PF4 and BTG was dose-related, and a 50% inhibition required a PF4 or BTG dose ranging from 5 to 10 micrograms/ml. These results indicate that PF4 and BTG are involved in negative regulation of normal and pathologic megakaryocytopoiesis and that their inhibition acts predominantly on the megakaryocytic lineage.

Autoimmune Diseases↗

Stimulation of histamine release from human basophils by human platelet factor 4.

Human basophils were stimulated to release histamine noncytotoxically by purified human platelet factor 4 (PF4) and the synthetic substituent peptide PF4(59-70). Histamine release was augmented significantly by 10(-7) M PF4 and 10(-5) M PF4(59-70), increased in a concentration-dependent manner, and attained a maximum at 3 X 10(-5) M PF4 and 3 X 10(-4) M PF4(59-70) similar to that achieved by goat anti-human myeloma IgE. PF4 (1-60) failed to initiate the release of histamine, which confirmed that the critical determinant of activity is in the carboxy-terminal sequence. Histamine release from basophils by optimally effective concentrations of PF4 and PF4(59-70) reached a plateau by 1-3 min, as contrasted with 10 min or longer for anti-IgE. The elimination of calcium and magnesium from the buffer suppressed the release of histamine by anti-IgE by 79-83%, but had no effect on that elicited by PF4(59-70). The rate of uptake of [125I]PF4 by purified basophils was similar on a molar basis to the rate of release of histamine by the same concentrations of PF4. The noncytotoxic release of histamine from human basophils by PF4 thus is temporally and biochemically distinct from that mediated by IgE and may be similar to that evoked by other polycationic stimuli.

Antibodies, Anti-Idiotypic↗

Platelet factor 4 and other CXC chemokines support the survival of normal hematopoietic cells and reduce the chemosensitivity of cells to cytotoxic agents.

The effects of platelet factor 4 (PF4) on the viability and chemosensitivity of normal hematopoietic cells and cancer cell lines were studied to determine the mechanisms whereby PF4 functions as either an inhibitor or a protector and to evaluate its clinical significance. Two other chemokines, interleukin-8 (IL-8) and neutrophil-activating peptide-2 (NAP-2), were also studied in comparison to PF4. Using a tetrazolium salt assay for cell viability, we observed that PF4 at 1 to 50 microg/mL supported the viability of normal human bone marrow cells. Approximately 45% of cells cultured for 48 hours survived, whereas 80% or more survived in the presence of PF4 5 microg/mL. PF4 also supported the viability of CD34+ cord blood (CB) cells and protected them from apoptosis induced by transforming growth factor beta1 (TGFbeta1) and cytotoxic drugs. Pretreatment of CD34+ cells by PF4, but not by TGFbeta1, caused an increase in the number of megakaryocyte colonies after these cells were replated in secondary cultures. Flow cytometry analysis showed that when CD34+ cells were preincubated with PF4 or TGFbeta1 for 12 days in hematopoietic growth factor-rich medium, an increased number of remaining CD34+ cells was observed only for PF4-treated cells. Furthermore, PF4 significantly reduced the chemosensitivity of bone marrow cells, as shown by its ability to increase the 50% inhibition concentration (IC50) of several cytotoxic agents. Like PF4, IL-8 and NAP-2 at 0.1, 0.6, and 1 microg/mL supported the survival of myeloid progenitors, including colony-forming units granulocyte, erythroblast, monocyte, megakaryocyte (CFU-GEMM), CFU-megakaryocyte (CFU-MK), CFU-granulocyte/macrophage (CFU-GM), and burst-forming units-erythroblast (BFU-E), and reduced their sensitivity to the toxicity of etoposide (ETP). Protamine sulfate at 1 to 100 microg/mL showed no such activity of PF4. Interestingly, the three chemokines failed to affect significantly the viability and chemosensitivity of three leukemic and two other tumor cell lines. Based on these results, we conclude for the first time that PF4 and IL-8 and NAP-2 support the survival of normal hematopoietic precursors and protect them from the toxicity of chemotherapeutic agents. Because such activities are unique to normal hematopoietic cells but not to the cancer cell lines evaluated, a potential clinical application of these molecules in the treatment of cancer is suggested.

Apoptosis↗

The prevalence of antibodies to the platelet factor 4 -heparin complex and association with access thrombosis in patients on chronic hemodialysis.

INTRODUCTION: Heparin-induced thrombocytopenia is a serious complication that can lead to thrombocytopenia, venous and arterial thrombosis. Patients with this disorder develop antibodies to the platelet factor 4-heparin (PF4-H) complex. Hemodialysis patients are repeatedly exposed to heparin and are at risk for developing PF4-H antibodies. We sought to determine the prevalence of PF4-H antibodies in a large cohort of patients on chronic hemodialysis and to evaluate the relationship between PF4-H antibodies and hemodialysis vascular access thrombosis in a case-control study. MATERIAL AND METHODS: Pre-dialysis blood samples were drawn on 419 patients; 107 cases with access thrombosis and 312 controls that never had access thrombosis. All samples were screened for PF4-H antibodies using an ELISA assay (GTI PF4 Enhanced, GTI Diagnostics). All positive and indeterminate samples were then tested using an IgG-specific PF4-H ELISA assay and a platelet serotonin-release assay. RESULTS: Antibodies to PF4-H were positive in 54 (12.9%) patients using the screening ELISA assay. Nine (2.1%) patients had IgG-specific PF4-H antibodies. None of the patient's had a positive platelet serotonin-release assay. No relationship between hemodialysis access thrombosis and PF4-H antibodies was noted using the screening ELISA assay (unadjusted odds ratio 0.63; 95% CI 0.30-1.30; P = 0.21), the IgG-specific ELISA assay (unadjusted odds ratio 0.83; 95% CI 0.17-4.06; P = 0.82) or indeterminate platelet serotonin-release assay results (unadjusted odds ratio 0.97;95% CI 0.10-9.44;P = 0.98). CONCLUSIONS: Hemodialysis with repeated exposure to unfractionated heparin was associated with a moderately elevated prevalence of PF4-H antibodies. However, our results do not support a relationship between PF4-H antibodies and hemodialysis vascular access thrombosis.

Adult↗

Differences in specificity of heparin-dependent antibodies developed in heparin-induced thrombocytopenia and consequences on cross-reactivity with danaparoid sodium.

Heparin-induced thrombocytopenia (HIT) is frequently associated with antibodies (Abs) to heparin-PF4 complexes (H-PF4). In order to investigate whether there are variations in specificity of Abs, we studied 63 samples from patients with suspected HIT. Two groups of samples were separated after comparing their reactivity against H-PF4 or recombinant PF4 (r-PF4) using ELISA. In group Ab1 (n = 46), Abs only or mainly bound to H-PF4 complexes and thus most of the epitopes recognized probably involved both heparin and PF4. In group Ab2 (n = 17), Abs exhibited similar reactivity to r-PF4 and H-PF4, and the antigens recognized were possibly neoepitopes mainly expressed by modified PF4 and by H-PF4 complexes. Platelet activation tests were positive with 56 samples containing high titres of Abs to H-PF4. Most samples (n = 59) contained IgG antibodies, often associated with IgA antibodies which were more frequently found in group Ab2, and/or IgM. With unfractionated heparin treatment, HIT was associated with Ab1 or Ab2 antibodies, whereas only Ab1 antibodies were detected after low-molecular-weight heparin (LMWH). Furthermore, cross-reactivity with danaparoid sodium was present only in group Ab1 and mainly involved LMWH-treated patients.

Adult↗

Platelet factor-4 inhibits the mitogenic activity of VEGF121 and VEGF165 using several concurrent mechanisms.

The 121-amino acid form of vascular endothelial growth factor (VEGF121) and the 165-amino acid form (VEGF165) are mitogenic for vascular endothelial cells and induce angiogenesis in vivo. VEGF165 possesses a heparin binding ability and in the absence of heparin-like molecules does not bind efficiently to the VEGF receptors of vascular endothelial cells. The binding of 125I-VEGF165 to the VEGF receptors of endothelial cells, and the heparin-dependent binding of 125I-VEGF165 to a soluble extracellular domain of the VEGF receptor KDR/flk-1, were inhibited by the angiogenesis inhibitor platelet factor-4 (PF4). In contrast, PF4 was not able to inhibit the binding of VEGF121, a VEGF isoform which lacks a heparin binding capacity, to the VEGF receptors of the cells or to KDR/flk-1. These results indicate that PF4 may inhibit VEGF165 binding to VEGF receptors by disrupting the interaction of VEGF165 with cell surface heparan sulfates. Since PF4 mutants lacking a heparin binding ability retain their anti-angiogenic activity, alternative inhibitory mechanisms were also examined. 125I-PF4 bound with high affinity (Kd 5 x 10(-9) M) to VEGF165-coated wells. The binding of 125I-PF4 to the VEGF165-coated wells was inhibited by several types of heparin binding proteins, including unlabeled PF4 and unlabeled VEGF165. The binding was not inhibited by proteins which lack a heparin binding capacity, nor was it inhibited by VEGF121. Heparinase did not inhibit the binding of 125I-PF4 to VEGF165, indicating that heparin-like molecules are not required. These experiments suggest that PF4 can bind to heparin binding proteins such as VEGF165 leading to an inhibition of their receptor binding ability. In agreement with these results, we have observed that PF4 inhibits efficiently the VEGF165 induced proliferation of vascular endothelial cells. Unexpectedly, PF4 also inhibited efficiently the VEGF121-induced proliferation of the cells, indicating that PF4 can disrupt VEGF receptor mediated signal transduction using an unknown mechanism which does not interfere with VEGF121 binding.

Animals↗

Effect of CXC chemokine platelet factor 4 on differentiation and function of monocyte-derived dendritic cells.

Platelet factor 4 (PF4) is a CXC chemokine secreted by activated platelets. PF4 has been shown to promote monocyte survival and induce the differentiation of monocytes into macrophages. However, the effect of PF4 on differentiation of monocytes into dendritic cells (DC) has yet to be determined. As reported previously, monocytes cultured in RPMI medium containing FCS, granulocyte macrophage colony stimulating factor and IL-4 differentiated into CD1a+ DC. When PF4 was added, the expression of CD1a on DC was inhibited. This inhibitory effect was not observed with the other platelet-derived CXC chemokine, beta-thromboglobulin. The relative number of CD1a- DC increased from 17 to 92% when the PF4 concentration was increased from 0 to 10 micro g/ml. The inhibitory effect of PF4 on CD1a expression was reversed by 50 U/ml heparin. DC developed in the PF4-containing media appeared more adhesive to plastic culture wells and had higher light side scatter by flow cytometry. Immunophenotypically, monocyte-derived DC in the presence of increasing concentrations of PF4 proportionally expressed higher CD86 and lower HLA-DR. The levels of CD11c, CD40 and CD80 remained unchanged with or without PF4. Both CD1a+ DC and CD1a- DC were negative for CD14, CD68 and CD83. Functionally, DC developed in the presence of PF4 had their secretion of tumor necrosis factor-alpha and IL-12 reduced by 75 +/- 10 and 79 +/- 13% respectively when they were stimulated by 100 ng/ml lipopolysaccharide and 50 ng/ml IFN-gamma. CD1a- DC developed in the presence of PF4 were not as active as the control CD1a+ DC in stimulating allogeneic T cells to proliferate. In addition, CD1a- DC were less potent in priming naive CD4+ T cells to secrete both type 1 and 2 cytokines. These results indicate that PF4 can influence differentiation and function of monocyte-derived DC.

Antigens, CD↗

Carboxy-terminal peptides (C1-24 and C13-24 but not C1-13) of platelet factor 4 inhibit murine megakaryocytopoiesis, an activity which is neutralized by heparin.

Negative regulation of megakaryocytopoiesis is a complex process involving various cytokines. One of these cytokines is platelet factor 4 (PF4), a megakaryocyte/platelet specific protein. PF4 and a carboxy-terminal peptide related to PF4 have been reported to inhibit human and murine megakaryocytopoiesis. The growth of several megakaryoblastic cell lines: human erythroleukaemia cell line (HEL). Meg-01 and Dami, was also inhibited by PF4 and a 13-24 carboxy-terminal peptide related to PF4. We report that peptides corresponding to the 1-24 and 13-24 but not 1-13 carboxy-terminal region of PF4 inhibit murine megakaryocytopoiesis both in vivo (5 micrograms/inj) and in vitro (2.5 and 5 micrograms/ml). Moreover, such an inhibitory activity of PF4-related peptides is abrogated by heparin (5 IU/dish). These overall data indicate that carboxy-terminal PF4-related peptides retain the inhibitory effect of PF4 on both murine single MK and CFU-MK in vivo and in vitro by acting on an early stage of megakaryocytopoiesis and strongly suggest that the inhibitory activity of the multi-functional PF4 might be localized in a short carboxy-terminal region which might include, in part, the PF4 heparin binding domain.

Amino Acid Sequence↗

Platelet factor 4 binds to glycanated forms of thrombomodulin and to protein C. A potential mechanism for enhancing generation of activated protein C.

Platelet factor 4 (PF4) is an abundant platelet alpha-granule heparin-binding protein. We have previously shown that PF4 accelerates up to 25-fold the proteolytic conversion of protein C to activated protein C by the thrombin.thrombomodulin complex by increasing its affinity for protein C 30-fold. This stimulatory effect requires presence of the gamma-carboxyglutamic acid (Gla) domain in protein C and is enhanced by the presence of a chondroitin sulfate glycosaminoglycan (GAG) domain on thrombomodulin. We hypothesized that cationic PF4 binds to both protein C and thrombomodulin through these anionic domains. Qualitative SDS-polyacrylamide gel electrophoresis analysis of avidin extracts of solutions containing biotinylated PF4 and candidate ligands shows that PF4 binds to GAG+ but not GAG- forms of thrombomodulin and native but not Gla-domainless protein C. Quantitative analysis using the surface plasmon resonance-based BIAcoreTM biosensor system confirms the extremely high affinity of PF4 for heparin (KD = 4 nM) and shows that PF4 binds to GAG+ thrombomodulin with a KD of 31 nM and to protein C with a KD of 0.37 microM. In contrast, PF4 had no measurable interaction with GAG- thrombomodulin or Gla-domainless protein C. Western blot analysis of normal human plasma extracted with biotinylated PF4 demonstrates PF4 binding to protein C in a physiologic context. Thus, PF4 binds with relative specificity and high affinity to the GAG- domain of thrombomodulin and the Gla domain of protein C. These interactions may enhance the affinity of the thrombin.thrombomodulin complex for protein C and thereby promote the generation of activated protein C.

Binding Sites↗

The role of platelet factor 4 in platelet aggregation induced by the antibodies implicated in heparin-induced thrombocytopenia.

Heparin-induced thrombocytopenia (HIT) is a severe side effect of heparin treatment. Recent studies using immunological methods demonstrated that antibodies contained in plasma, or in purified total immunoglobulin (Ig)G from patients suffering HIT, recognize as target antigen the complex heparin/platelet factor (PF4). In the present study, the role of PF4 in in-vitro platelet aggregation induced by purified total IgG or platelet-poor plasma from patients suffering HIT was investigated. In order to demonstrate the functional role of PF4, an anti-PF4 antibody that specifically blocked PF4 was used. In an experimental system composed of washed platelet suspension, incubation of F(ab')2 fragments (0.125 microg/ml) of the polyclonal anti-PF4 antibody resulted in complete inhibition of platelet aggregation triggered by purified total IgG from patients suffering HIT and heparin. In platelet-rich plasma, a significantly higher concentration (4.25 microg/ml) of the anti-PF4 F(ab')2 was required to inhibit platelet aggregation induced by HIT-PPP and heparin. Intermediate concentrations of the anti-PF4 antibody partially inhibited platelet aggregation. In plasma milieu, the concentration of PF4 was about five-fold higher in comparison with that measured in the purified system. The intensity of platelet aggregation depended on the concentration of HIT-IgG. Platelet aggregation was abolished in the presence of high concentrations of heparin (superior or equal to 10 IU/ml). The present study shows that PF4 is essential for platelet aggregation triggered by the antibodies related to HIT in the presence of heparin. The concentration of PF4 that is available to bind with heparin or with the HIT-related antibodies is critical for platelet aggregation induced by HIT antibodies.

Antibodies↗

Human platelet factor 4 and protamine sulphate interaction with glycosaminoglycans in the rabbit.

We studied the action of protamine sulphate on human platelet factor 4 (PF4) kinetics in rabbits in the presence of various glycosaminoglycans (CAGs). The animals pretreated with heparin showed high initial PF4 levels with a subsequent slow monoexponential clearance. The PF4 kinetics, in the presence of heparan and dermatan sulphate, reflected the different affinities that PF4 has for these GAGs. Protamine, at dosages that totally neutralized 1000 USP units of heparin pretreatment, caused an immediate disappearance in the circulating PF4. However, a second heparin injection 10 min after protamine, induced a PF4 peak release. It is possible that protamine displaced the PF4 from the binding sites of heparin, releasing it for storage in the body 'pool', from where it can be harvested again. The action of protamine on PF4 kinetics in the rabbits pretreated with 30 mg heparan sulphate was similar to that obtained with heparin pretreatment; however, a higher dose of protamine was required to obtain the optimal effect. After a 20 mg dose of protamine, unexpectedly, a bolus of heparin did not produce any peak release of PF4 in the rabbits pretreated with 30 mg of dermatan sulphate. Although part of the protamine will displace PF4 from the binding sites of the dermatan sulphate molecule, the remaining part of protamine could probably be bound to this GAG without losing its activity so that, upon subsequent heparin injection, it is immediately neutralized, rendering it unavailable for further PF4 harvesting.

Animals↗

Probing platelet factor 4 alpha-granule targeting.

The storage mechanism of endogenous secretory proteins in megakaryocyte alpha-granules is poorly understood. We have elected to study the granule storage of platelet factor 4 (PF4), a well-known platelet alpha-granule protein. The reporter protein green fluorescent protein (GFP), PF4, or PF4 fused to GFP (PF4-GFP), were transfected in the well-characterized mouse pituitary AtT20 cell line, and in the megakaryocytic leukemic DAMI cell line. These proteins were also transduced using a lentiviral vector, in human CD34+ cells differentiated into megakaryocytes in vitro. Intracellular localization of expressed proteins, and colocalization studies were achieved by laser scanning confocal microscopy and immuno-electronmicroscopy. In preliminary experiments, GFP, a non-secretory protein (no signal peptide), localized in the cytoplasm, while PF4-GFP colocalized with adrenocorticotropin hormone (ACTH)-containing granules in AtT20 cells. In the megakaryocytic DAMI cell line and in human megakaryocytes differentiated in vitro, PF4-GFP localized in alpha-granules along with the alpha granular protein von Willebrand factor (VWF). The signal peptide of PF4 was not sufficient to specify alpha-granule storage of PF4, since when PF4 signal peptide was fused to GFP (SP4-GFP), GFP was not stored into granules in spite of its efficient translocation to the ER-Golgi constitutive secretory pathway. We conclude that the PF4 storage pathway in alpha-granules is not a default pathway, but rather a regular granule storage pathway probably requiring specific sorting mechanisms. In addition PF4-GFP appears as an appropriate probe with which to analyze alpha-granule biogenesis and its alterations in the congenital defect gray platelet syndrome.

Adrenocorticotropic Hormone↗