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Biomedical subjects

M A Heidaran

Publications and source records attributed to M A Heidaran.

At least 19 recordsLinked to original sources

Inductive activity of recombinant human growth and differentiation factor-5.

Growth and differentiation factor-5 (GDF-5) is a divergent member of the transforming growth factor-beta/bone morphogenetic protein (BMP) superfamily that is required for proper skeletal patterning and development in the vertebrate limb. Based on the homology of GDF-5 with other bone-inducing BMP family members, the inductive activity of a recombinant form of human GDF-5 (rhGDF-5) was evaluated in a series of in vitro assays and in vivo bone-formation models. The in vitro response to rhGDF-5 resulted in the formation of chondrogenic nodules in fetal rat calvarial cells cultured in the context of collagen or collagen/hyaluronate extracellular matrices. Matrices loaded with rhGDF-5 induced ectopic cartilaginous and osseous tissue when implanted in subcutaneous or intramuscular sites. In non-human primate long-bone-defect and spinal-fusion models, rhGDF-5 combined with a mineralized collagen matrix induced bone formation in a manner equivalent to autogenous bone. These results highlight the unique potential of rhGDF-5 in a wide variety of orthopaedic applications.

Absorbable Implants↗

An osteoconductive collagen/hyaluronate matrix for bone regeneration.

A new type of collagen-hyaluronate (COL/HA) matrix was synthesized by cross-linking collagen fibers with modified hyaluronate polymers bearing active formyl groups. The resulting matrix is a three-dimensional scaffold consisting of interconnected pores with an average size of 40 microm and a high pore volume/surface area ratio. The covalent nature of the bond between the collagen fibers and the modified hyaluronate was demonstrated by extended elution with phosphate buffered saline and by extraction in increasing ionic gradients. The fraction of covalently bound hyaluronate in the matrix ranged from 5 to 25 w%. The total hyaluronate content of the COL/HA matrix affected both the in vitro non-enzymatic and enzymatic degradation as well as the in vivo turnover. When implanted in cranial defects in rats, the COL/HA matrix demonstrated good biocompatibility and exhibited greater osteoconductive potential than matrices composed of either cross-linked collagen or cross-linked hyaluronate alone.

Animals↗

Carboxyl-terminal domain of p27Kip1 activates CDC2.

A variant form of p27 was unexpectedly detected in a synchronized culture of NIH3T3 cells treated with serum. The expression levels of this form of p27 which lacked its amino (NH2)-terminal region reached maximum during G2/M phase. Since the appearance of the NH2-terminal truncated form of p27 coincided with increased expression of Cdc2, we hypothesized that p27 may play a role in regulating Cdc2 catalytic activity. To test this hypothesis, wild type p27, as well as the amino-terminal (Np27) and carboxyl-terminal (Cp27), were individually expressed, purified, and examined for their ability to regulate CDC2 kinase activity in vitro. Our data showed that both p27 and Np27 inhibited CDC2 kinase activity. However, in marked contrast, Cp27 enhanced the CDC2 kinase activity. In vitro kinase assays showed that Cp27 and p27 were phosphorylated by CDC2, whereas Np27 was not. In addition, we demonstrated that deletion of the putative CDC2 phosphorylation site in the carboxyl-terminal domain of Cp27 diminished activation of CDC2 kinase activity otherwise stimulated by Cp27. A similar deletion did not have any effect on the inhibitory function of p27. Together these results suggest that the carboxyl-terminal domain of p27 may activate CDC2 kinase activity in vivo during G2/M and that this effect may be regulated by serine/threonine phosphorylation.

3T3 Cells↗

PLC-gamma activation is required for PDGF-betaR-mediated mitogenesis and monocytic differentiation of myeloid progenitor cells.

To investigate the molecular mechanisms mediating hematopoietic cell differentiation and mitogenesis by activation of the platelet-derived growth factor beta receptor (PDGF-betaR), the wild type PDGF-betaR (PDGF-betaRWT) and tyrosine to phenylalanine mutants of the PDGF-betaR, including F751, F966, F970, F1009, F1021 and F1009/F1021 were overexpressed in FDC-P2 myeloid progenitor cells by retroviral-mediated gene transfer. Stimulation of PDGF-betaRWT and F966, F970 and F1009 infectants with PDGF-BB led to the increased expression of monocytic differentiation markers. In contrast, activation of PDGF-betaR in the parental line or the F1021 or F1009/F1021 mutant infectants failed to induce monocytic differentiation. PDGF-BB stimulation of PDGF-betaRWT, F751, F966, F970 and F1009 infectants led to pronounced DNA synthesis, whereas F1021 and F1009/F1021 infectants did not reveal any increase in mitogenesis when compared to that of the FDC-P2 line. While PDGF stimulation of FDC-P2 cells overexpressing PDGF-betaRWT led to a pronounced increase in inositol phosphate formation due to phospholipase C-gamma (PLC-gamma) activation, PDGF-BB induced phosphoinositol hydrolysis was completely abolished in the F1021 and F1009/F1021 infectants. GF 109203X, a specific inhibitor of protein kinase C (PKC) activation, fully blocked PDGF-betaR-mediated monocytic differentiation and mitogenesis. Taken together, these results suggest that stimulation of the PDGF-betaR signaling pathway can mediate monocytic differentiation when PDGF-betaR is expressed at sufficient levels and that activation of PLC-gamma and PKC plays a pivotal role in PDGF-betaR-mediated differentiation and mitogenesis in FDC-P2 cell system.

Binding Sites↗

Requirement of phosphatidylinositol-3 kinase for activation of JNK/SAPKs by PDGF.

The molecular mechanism by which cell surface receptors stimulate the serine/threonine kinase activity of c-Jun N-terminal kinases (JNKs) was investigated using a transient cotransfection experiments in COS-7 cells. Our data demonstrate that JNK activity is potently induced by platelet derived growth factor (PDGF) upon expression of beta PDGFR wild type (beta RWT). However, PDGF failed to mediate JNK activation in cells expressing beta PDGFR mutant lacking the binding site for phosphatidylinositol-3 (PI-3) kinase but not for phospholipase C gamma (PLC gamma) or Syp. Consistent with this result, a PI-3 kinase inhibitor, wortmannin inhibited activation of JNK by PDGF. Furthermore, overexpression of P110 the catalytic domain of PI-3 kinase was sufficient for activation of JNKs which could be efficiently inhibited by dominant negative forms of Ras, Rac but not of RhoA or Cdc42. Taken together all of these findings suggest that activation of JNK by PDGF involves receptor association with PI-3 kinase activity, which in turn acts on a ras- and rac-dependent pathway.

Androstadienes↗

Oncogenic activation of the alphaPDGFR defines a domain that negatively regulates receptor dimerization.

The alpha platelet derived growth factor receptor (alphaPDGFR) extracellular Immunoglobulin (Ig) like domains 1-3 contain major determinants for ligand interaction. We now report that a deletion of Ig-like loop 3, but not Ig-like loop 1 or 2, of the alphaPDGFR causes ligand-independent transformation in NIH3T3 cells. Biochemical analyses of alphaPDGFR mutants lacking Ig-like loop 3 indicate that cellular transformation is mediated by ligand-independent activation of the alphaPDGFR tyrosine kinase activity as determined by receptor autophosphorylation both in vivo and in vitro. Moreover, cross-linking analysis of alphaPDGFR mutants expressed ectopically in NIH3T3 cells indicate that deletion within extracellular domain 3 leads to ligand-independent receptor dimerization. All of these findings suggest that the Ig-like loop 3 of the alphaPDGFR contains the major determinants which inhibit receptor dimerization in the quiescent cells and that the ligand binding induces receptor activation by neutralizing the inhibitory effect of this domain.

3T3 Cells↗

Expression of an ATP binding mutant of PKC-delta inhibits Sis-induced transformation of NIH3T3 cells.

In an effort to determine the role of protein kinase C-delta (PKC-delta) in cellular transformation mediated by the sis proto-oncogene, we cotransfected expression vectors containing cDNAs that encode for c-sis with an ATP binding mutant of PKC-delta (PKC-delta K376R) or wild type PKC-delta (PKC-delta WT) into NIH3T3 cells. Our results showed that expression of PKC-delta K376R severely impaired Sis-induced focus formation, whereas cotransfection of PKC-delta WT cDNA had no effect on Sis-mediated transformation. Consistent with this result, PKC-delta K376R expression also inhibited PDGF-BB-mediated anchorage-independent colony formation. While cotransfection of a vector containing a dominant negative mutant of ras (N17 ras) cDNA potently inhibited Sis-induced transformation, the expression of PKC-delta K376R did not block transformation mediated by v-H-Ras or v-Raf. In addition, PDGF-BB-induced Raf and mitogen-activated protein kinase activation, which are known to be downstream molecules in the Ras cascade, were not affected by the expression of PKC-delta K376R, indicating that PKC-delta and Ras are segregated in mediating Sis-induced transformation. Interestingly, expression of PKC-delta K376R strongly reduced TPA responsive element (TRE) transactivation induced by PDGF stimulation, suggesting that activation of TRE-containing genes, which may be involved in Sis-mediated transformation, are negatively regulated by expression of PKC-delta K376R.

3T3 Cells↗

Identification of a domain within the carboxyl-terminal region of the beta platelet-derived growth factor (PDGF) receptor that mediates the high transforming activity of PDGF.

We have reported previously that a chimeric platelet-derived growth factor receptor (PDGFR) possessing the ligand binding domain of the alpha PDGFR and the intracellular domain of the beta PDGFR (alpha 340 beta 342 R) was markedly more efficient than the wild type alpha PDGFR (alpha RWT) in its ability to enhance PDGF-A transforming activity in NIH/3T3 fibroblasts. To determine the region within the cytoplasmic domain of beta PDGFR that confers this higher transforming activity, we generated several additional alpha/beta PDGFR chimerae. When a chimeric PDGFR possessing the first 933 amino-terminal amino acids from the alpha PDGFR and the final 165 amino acids from the carboxyl-terminal of the beta PDGFR (alpha 933 beta 942 R) was cotransfected with the PDGF-A gene into NIH/3T3 cells, it showed a similar high efficiency to enhance PDGF-A chain transforming activity as alpha 340 beta 342 R. However, when chimeric PDGFRs in which either the kinase insert domain (alpha beta RKI) or the last 79 amino acids from the carboxyl-terminal end of the beta PDGFR (alpha 1024 beta 1028 R) were substituted into alpha PDGFR sequences were cotransfected with PDGF-A, they showed similar low efficiencies in enhancing transforming activity as the alpha RWT. These results predicted that the 86 amino acids following the tyrosine kinase 2 domain of beta PDGFR (amino acid residues 942-1027) were responsible for the higher transforming activity of beta PDGFR. To confirm this finding, we next constructed a chimera in which amino acid residues 942-1028 of the beta PDGFR (alpha beta 942-1028R) were substituted for those in the alpha PDGFR. Cotransfection experiments indicated that alpha beta 942-1028R increased transforming activity of PDGF-A to similar extent as the alpha 933 beta 942R, or alpha 340 beta 342R. Therefore, our findings define a critical domain within the noncatalytic region of beta PDGFR intracellular domain that confers the higher focus forming activity mediated by the beta PDGFR.

3T3 Cells↗

Structural role of extracellular domain 1 of alpha-platelet-derived growth factor (PDGF) receptor for PDGF-AA and PDGF-BB binding.

The purpose of this study was to bacterially express, purify, and refold combinations of the extracellular immunoglobulin (Ig)-like domains (2-3, 1-3, and 1-5) of the human alpha-platelet-derived growth factor receptor (alpha PDGFR) to characterize molecular interactions with its ligand, platelet-derived growth factor (PDGF). The far UV circular dichroism spectroscopy of the alpha-PDGFR extracellular domains (ECDs) revealed a predominantly beta-sheet protein, with a structure consistent with folded Ig-like domains. The addition of PDGF-BB to these ECD types changed the conformation of all three types with a decrease in mean residue ellipticity in the following rank order: 1-5 = 1-3 > 2-3. In striking contrast, addition of PDGF-AA to these ECD types markedly changed the conformation of ECD 2-3, by an increased mean residue ellipticity but no changes were observed for ECDs 1-3 and 1-5. PDGF-AA bound to the immobilized ECD types 2-3, 1-3, and 1-5 at concentrations of 20, 11, and 7.5 nM, respectively. In contrast, PDGF-BB bound the ECD types 2-3, 1-3, and 1-5 at concentrations of 3, 3, and 2.2 nM, respectively. Scatchard analysis of binding studies using labeled ECDs indicated that PDGF-BB bound ECD 1-3 and ECD 2-3 with KD values of 74 and 72 nM, respectively. While, PDGF-AA bound ECD 1-3 and ECD 2-3 with KD values of 33 and 87 nM, respectively. Therefore, our results indicated that the loss of ECD 1 impaired the binding affinity of alpha PDGFR ECD 1-3 toward PDGF-AA without having a similar effect on PDGF-BB binding. Together all of our data suggest that ECD 1 is differentially required for proper orientation of PDGF-AA but not PDGF-BB binding determinant within ECDs 2 and 3.

Becaplermin↗

An unexpected transforming gene in calf-thymus carrier DNA: bovine hst.

During a search for transforming genes by transfecting a human cDNA expression library together with calf thymus carrier-DNA into NIH/3T3 cells, we found a focus which was induced by a plasmid containing a sequence highly homologous to human HST (a transforming gene from Human STomach cancer). However, PCR analysis identified the source of this sequence as calf thymus DNA. The deduced amino acid (aa) sequence of bovine HST shows 91 and 81% identity to the human and mouse HST aa sequences, respectively. These data suggest that the hst of calf thymus carrier-DNA could induce transformation of NIH/3T3 cells.

3T3 Cells↗

Differential requirement of a motif within the carboxyl-terminal domain of alpha-platelet-derived growth factor (alpha PDGF) receptor for PDGF focus forming activity chemotaxis, or growth.

To determine the molecular basis for the transforming function of platelet-derived growth factor (PDGF)-A in NIH/3T3 cells, we have constructed chimerae consisting of the extracellular domain of the human CSF-1R (fms) linked to the cytoplasmic domain of the alpha PDGF receptor (alpha R) containing a series of deletion or point mutations. The ability of fms/alpha R chimerae to mediate CSF-1-dependent anchorage-independent growth, focus formation, and chemotaxis of NIH/3T3 cells was then examined. Our results provide evidence that a domain encompassing amino acid residues 977-1024 of the alpha PDGFR is required for ligand-dependent focus formation, but not chemotaxis or anchorage-independent growth, and that tyrosine residues within this domain constitute the major binding site for phospholipase C gamma. Therefore, our findings suggest that: (i) the focus forming function of alpha PDGFR correlates well with the ability of the receptor to bind phospholipase C gamma, and (ii) the mechanism of focus formation mediated by alpha PDGFR may be distinguished from that required for chemotaxis or anchorage-independent growth.

3T3 Cells↗

A divalent metal ion binding site in the kinase insert domain of the alpha-platelet-derived growth factor receptor regulates its association with SH2 domains.

To investigate the effects of metal ion binding to the alpha-PDGFR kinase insert domain, a PCR product representing amino acid residues 691-795 (104 amino acids) was bacterially expressed and purified. Secondary structure prediction and circular dichroism spectroscopy indicated this domain to be a mixed alpha + beta protein with a large coil/turn contribution. This 16 kDa, soluble, nonphosphorylated domain bound to 45Ca2+ and 65Zn2+ through a common shared site. Of the unlabeled divalent and trivalent metal ions tested, Ho3+ = Zn2+ > Ni2+ > Ca2+ = Mn2+ > Mg2+, Ba2+ in competing for 45Ca2+ binding to this domain. In the presence of Ca2+ ions, the conformation of the KI domain changed significantly, and this changed conformation was resistant to subtilisin proteolysis. However, in the presence of Zn2+ ions, the conformation of the KI domain changed only slightly. Nevertheless, Zn2+ ions were more effective in rendering the KI domain resistant to proteolysis as compared to that shown by Ca2+ ions. In vitro binding studies using purified baculovirus-expressed alpha-PDGFR showed a marked increase in binding the p85 N-SH2 domain in the presence of Ca2+ or Zn2+ ions (KD = 0.5 microM), suggesting that metal ion binding enhances association of the p85 N-SH2 domain with the receptor. To confirm this, association of the alpha-PDGFR with the p85 N-SH2 domain was tested in the presence of the KI domain. The nonphosphorylated KI domain was effective in competing with the alpha-PDGFR for the binding of the p85 N-SH2 domain. This effect was more pronounced in the presence of Ca2+ ions. Microinjection of this domain into Xenopus oocytes delayed maturation in the presence of insulin but not progesterone. This suggests that the KI domain has a correctly folded three-dimensional structure compatible with biological activity. Together these findings indicate that the recombinant alpha-PDGFR KI domain binds the p85 N-SH2 domain and this binding is modulated by the presence of a novel divalent metal ion binding site within its structure.

Amino Acid Sequence↗

Beta PDGFR-IgG chimera demonstrates that human beta PDGFR Ig-like domains 1 to 3 are sufficient for high affinity PDGF BB binding.

To localize human beta PDGFR binding determinants, we constructed a fusion protein comprising beta PDGFR Ig-like domains 1 to 3 and an IgG1 Fc domain (beta PDGFR-HFc). beta PDGFR-HFc was expressed as a 200 kDa dimeric molecule and contained Fc epitopes as demonstrated by anti-mouse Fc antibody recognition. Scatchard analysis revealed that PDGF BB possessed a dissociation constant of 1.5 nM for beta PDGFR-HFc. Thus, beta PDGFR Ig-like domains 1 to 3 are sufficient for high affinity PDGF BB binding. We exploited this fusion protein technology to identify and characterize beta PDGFR antagonists using a sensitive beta PDGFR immunosorbent assay. In this assay, beta PDGFR-HFc half-maximally bound to PDGF BB with an affinity of around 150 pM. Suramin, as well as bacterially expressed and refolded human alpha PDGFR domains 1-3, inhibited beta PDGFR-HFc binding to PDGF BB half-maximally at 25 microM and 10 nM respectively. Therefore, alpha PDGFR D1-3, like beta PDGFR D1-3, are sufficient for high affinity PDGF BB binding. Furthermore, the beta PDGFR-HFc immunosorbent assay will be useful to identify beta PDGFR antagonists as well as to study alpha and beta PDGFR substitution mutants which further map receptor binding determinants.

3T3 Cells↗

Mutational analysis of the beta-type platelet-derived growth factor receptor defines the site of interaction with the bovine papillomavirus type 1 E5 transforming protein.

The E5 polypeptide of bovine papillomavirus type 1 is a small membrane-bound protein which induces the transformation of immortalized fibroblasts, apparently via the formation of a ternary complex with the platelet-derived growth factor receptor (PDGFR) and the 16-kDa V-ATPase protein. This interaction seems to be mediated, at least in part, by their respective transmembrane domains. E5 also cooperates with transfected beta PDGFR to induce interleukin-3 (IL-3)-independent growth of a mouse myeloid precursor cell line (32D) which normally lacks expression of most known tyrosine kinase growth factor receptors. Cell proliferation induced by beta PDGFR and E5 is also highly specific, since the highly conserved alpha PDGFR and other related receptors did not physically or functionally interact with E5 in these cells. In the current study, analysis of chimeric alpha and beta PDGFRs confirmed that a short region encompassing the beta PDGFR transmembrane domain was sufficient for complex formation with E5, receptor autophosphorylation, and sustained proliferation of 32D cells in the absence of IL-3. Furthermore, a deletion mutant lacking the entire extracellular domain efficiently bound E5 and induced IL-3-independent growth. These data provide direct evidence that the interaction between E5 and the beta PDGFR involves amino acids 531 to 556 of the receptor transmembrane region and that this specific interaction is critical for activation of the PDGFR signaling complex.

Animals↗

The alpha PDGFR tyrosine kinase mediates locomotion of two different cell types through chemotaxis and chemokinesis.

To determine the capability of alpha PDGFR to couple with chemotactic signaling, we established 32D cells expressing wild type alpha PDGFR (alpha RWT), a kinase-defective mutant of alpha PDGFR (alpha R627R), or wild type beta PDGFR (beta RWT). Using a modified Boyden chamber, we showed that PDGF induced significant cell migration of 32D cells expressing alpha RWT or beta RWT, but not of those expressing alpha R627R. Furthermore, the cell migration was largely reduced in each case when the same concentration of PDGF was present in both chambers, suggesting that cell migration observed in 32D expressing alpha RWT is mainly due to alpha PDGFR-mediated chemotaxis. Consistent with these results, PDGF-AA induced significant cell migration of NIH3T3 fibroblasts, which was markedly blocked by the presence of excess neutralizing polyclonal antibody to PDGF-AA. These results provide evidence that alpha PDGFR kinase activity is essential for mediating ligand-induced chemotactic and chemokinetic responses in two different cell types.

3T3 Cells↗

Structural coincidence of alpha PDGFR epitopes binding to platelet-derived growth factor-AA and a potent neutralizing monoclonal antibody.

We have generated two groups of deletion mutants of the alpha PDGFR and one group of chimeras between alpha PDGFR and beta PDGFR to further investigate the structural requirements of the alpha PDGFR for binding to platelet-derived growth factor (PDGF)-AA and to a monoclonal antibody against alpha PDGFR (designated as mAb-alpha R1). The mAb-alpha R1 has recently been reported to block high affinity binding of PDGF-AA to alpha PDGFR. The first group of mutants were carboxyl-terminal deletion mutants encoding the first two immunoglobulin (Ig)-like domains (alpha R1-216), the first four Ig-like domains (alpha R1-415), or all five Ig-like domains (alpha R1-530) of the alpha PDGFR. Since these mutants lacked transmembrane domains, their expression in NIH/3T3 cells resulted in secretion of the truncated alpha PDGFRs. Using conditioned medium from NIH/3T3 transfectants, we showed that mAb-alpha R1 was able to immunoprecipitate each of these secreted form of alpha PDGFRs, suggesting that the epitope recognized by mAb-alpha R1 is located within Ig-like domains 1 and 2 of the alpha PDGFR. Furthermore, PDGF-AA exhibited detectable binding to alpha R1-415 or alpha R1-530 but failed to interact with alpha R1-216, suggesting that the first two Ig-like domains of the alpha PDGFR are not sufficient for PDGF-AA binding. The second group of alpha PDGFR mutants were internal deletion mutants lacking Ig-like loop 1 (alpha R delta 49-100), Ig-like loop 2 (alpha R delta 150-189), Ig-like loop 3 (alpha R delta 235-290), or part of Ig-like loops 4 and 5 (alpha R delta 375-450). The internal deletion mutants were transfected into 32D cells which lack both alpha PDGFR and beta PDGFR. PDGF-AA bound with high affinity to 32D cells expressing alpha R delta 375-450 but not to 32D cells expressing the other three internal deletion mutants, suggesting that the region required for PDGF-AA binding should be within the first three Ig-like domains of the alpha PDGFR. In addition, mAb-alpha R1 bound to 32D cells expressing alpha R delta 235-290 but failed to bind 32D cells transfected with alpha R delta 49-100 or alpha R delta 150-189.(ABSTRACT TRUNCATED AT 400 WORDS)

3T3 Cells↗

Tyrosine phosphorylation of protein kinase C-delta in response to its activation.

Retroviral vectors containing five different protein kinase C (PKC) isoenzymes (alpha, delta, epsilon, eta, zeta) were expressed in 32D hematopoietic cells and NIH-3T3 fibroblasts. In an effort to investigate signaling events regulated by PKC activation, we analyzed whether tyrosine phosphorylation of cellular proteins would occur after 12-O-tetradecanoylphorbol-13-acetate (TPA) treatment of the various transfectants. While no detectable tyrosine-specific phosphorylation was observed after treatment of the majority of the transfectants, pronounced TPA-dependent tyrosine phosphorylation of an 82-kDa protein was detected in the 32D/PKC-delta and NIH-3T3/PKC-delta lines. Interestingly, the 82-kDa substrate proved to be PKC-delta itself. Tyrosine phosphorylation of purified PKC-delta by src family or receptor tyrosine kinases in vitro enhanced PKC-delta activity, suggesting that tyrosine phosphorylation of PKC-delta may positively affect its function.

3T3 Cells↗

Comparison of calcium-dependent conformational changes in the N-terminal SH2 domains of p85 and GAP defines distinct properties for SH2 domains.

Src-homology region 2 (SH2) domains are stretches of about 100 amino acids which are found to be structurally conserved in a number of signaling molecules. These regions have been shown to bind with high affinity to phosphotyrosine residues within activated receptor tyrosine kinases. Here we report the bacterial expression and purification of individual N-terminal SH2 (NSH2) domains of phosphatidylinositol 3-kinase (PI-3K) binding subunit (p85) and Ras GTPase activating protein (GAP) in amounts suitable for structure-function studies. The p85NSH2 domain stains dark purple and absorbs around 620-640 nm with Stains-all, a dye known to bind to calcium binding proteins. This effect was not observed for the GAPNSH2 domain. Circular dichroism analysis of the N-terminal SH2 domain of these proteins shows that p85NSH2, but not GAPNSH2, undergoes a significant dose-dependent change in conformation in the presence of increasing calcium concentrations. Moreover, the conformational change of p85NSH2 induced by calcium could be replicated by addition of a phosphorylated hexapeptide (DYpMDMK) representing the alpha-PDGFR binding site for p85. Limited proteolysis studies showed a significant calcium-dependent increase in protection of p85NSH2 but not GAPNSH2 from degradation by subtilisin. Our results further indicate that holmium, a trivalent lanthanide ion, which has been previously shown to substitute for calcium, could also protect the p85NSH2 domain from proteolysis even at 10-fold lower concentrations. In vitro binding studies using purified preparations of activated alpha-PDGFR show that calcium did not affect the binding of GAPNSH2 domains to activated alpha-PDGFR.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗