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Enhancement of granulocyte oxidative metabolism in sera from patients with C2 deficiency and systemic lupus erythematosus.

Serum or plasma from 3 patients with C2 deficiency (C2D) and systemic lupus erythematosus (SLE) significantly enhanced chemiluminescence and superoxide anion production by polymorphonuclear leukocytes (PMN) after stimulation with phorbol myristate acetate or latex beads. PMN from patients and normal individuals were supranormally activated when resuspended in plasma from these patients. No such effect was seen with plasma from a patient with C2D but with no evidence of SLE, from patients with SLE but not C2D, from patients with C1q or C8 deficiency, from C4-deficient guinea pigs, or NZB-NZW mice. Because oxygen-derived free radicals may cause joint or tissue damage, C2D patients who have or develop this activity in their plasma may be more prone to SLE or other collagen-vascular diseases.

Adolescent↗

Isolation of homologous restriction factor from human urine. Immunochemical properties and biologic activity.

A soluble form of homologous restriction factor (HRF-U) was isolated from normal human urine. With respect to m.w. (65,000) and immunoblotting characteristics, it resembled membrane HRF (HRF-M) that had been isolated from human E membranes. The protein exhibited limited cross-reactivity with the channel-forming proteins of C and cytotoxic lymphocytes. It inhibited reactive lysis of E by human C5b-9. Inhibition occurred at the attachment stage of C5b-7 to target cells, rather than at the C8 or C9 stage of membrane attack complex assembly which is inhibited by HRF-M. In this respect, HRF-U acts analogously to S protein of serum, but no immunochemical relationship between these two proteins was detected. HRF-U might be derived from the soluble HRF detected in cytoplasmic granules of killer lymphocytes.

Animals↗

Assembly of the membrane attack complex promotes decay of the alternative pathway C3 convertase on Neisseria gonorrhoeae.

C3, C4, factor B, properdin, and C2 binding to serum-sensitive and serum-resistant gonococci was quantitated in C8-deficient and normal human serum by using fluorescein-conjugated antibodies and 3H-labeled components. Organism and serum-specific differences were noted, the most striking of which involved factor B and properdin binding to the serum-sensitive strains in the different sera. C3 binding to these organisms was quantitatively and kinetically equivalent in C8-deficient and normal human serum. In contrast, factor B and properdin binding reached a plateau after 5 min in C8-deficient serum but peaked and fell to control values in normal human serum. Identical results were obtained with normal human serum immunochemically depleted of C8. Between 7 and 15% of the bound C3 participated in formation of the alternative pathway convertase C3bBb/P. Reconstitution of the C cascade by adding purified C8 to C8-deficient serum led to the loss of factor B previously bound to the organisms. Factor B loss occurred coincident with bacterial killing and membrane disruption as observed by electron microscopy. Prevention of membrane disruption by depleting normal human serum of lysozyme had no effect on killing and failed to prevent factor B loss. Stabilization of the C3bBb complex with Ni2+ prevented factor B loss as well as gross membrane disruption but not bacterial killing. C2 (the classical pathway analog of factor B) binding to gonococci was equivalent in C8-deficient and normal human serum peaking within 2.5 min and falling to control values in both sera thereafter. We conclude that the assembly of the membrane attack complex promotes decay of C3bBb/P with release of factor B and properdin but not C3 from the organism surface. Membrane disruption does not appear to be required for this effect. This activity may represent a mechanism to limit continued C consumption.

Blood Bactericidal Activity↗

Glycosyldiacylglycerolipids from the lichen Dictyonema glabratum.

Three glycolipids (1-3) were isolated from the basidiolichen Dictyonema glabratum. Their carbohydrate and lipid components were structurally characterized using 1D 1H and 13C and 2D NMR spectroscopy, complemented by mass spectrometry, as were the carbohydrate moieties formed on saponification. These were O-alpha-D-Galp-(1''-->6')-O-beta-D-Galp-(1'<-->1)-2, 3-diacyl-D-glycerol (2) and two others not previously found in lichens, O-beta-D-Galp-(1'<-->1)-2,3-diacyl-D-glycerol (1) and O-alpha-D-Galp-(1'''-->6'')-O-alpha-D-Galp-(1' '-->6')-O-beta-D-Galp-(1'<-->1)-2,3-diacyl-D-glycerol (3). Each was saponified to give the free carbohydrates and its fatty acid methyl esters. The most abundant fatty acid esters in 1-3 was palmitic C16:0, but there was a wide variation of ester composition. Others present were C8:0 and C14:0 in 1, C14:0, C15:0, C17:0, C18:0, C18:1 (oleic), C18:2 (linoleic), C22:0, and C24:0 in 2, and C8:0, C14:0, C18:0, C18:1 (oleic), C18:2 (linoleic), and C18:3 (linolenic) in 3. As in ascolichens, the glycolipids appear to arise from the phycobiont.

Carbohydrate Sequence↗

The effect of ethylenedinitrilotetraacetic acid (EDTA) on the reaction between the guinea-pig C5 convertase and guinea-pig C5.

Guinea-pig C5 was reacted with EAC1423 in the washed-cell intermediate assay in the presence of glucose gelatin veronal buffer (GGVB), Zn2+-GGVB (0.025 mM), GGVB2+ containing Ca2+ and/or Mg2+ or EDTA (0.013 M)-GGVB. The EDTA inhibited the formation of competent SAC14235, while Ca2+ and/or Mg2+ had a slight enhancing effect compared to GGVB alone and Zn2+ gave a four-fold increase. Similar results were obtained by using human C5 with guinea-pig C5 convertase and functionally pure guinea-pig C6, C7, C8 and C9. When guinea-pig C6 was incorporated into these various reaction mixtures with guinea-pig C5, its addition markedly reduced the inhibition by EDTA, while Zn2+ still showed an enhancing effect. These results demonstrate that EDTA inhibited formation of competent SAC14235 by preventing activation of C5. The association of C6 with C5 can partially overcome the inhibition of C5 conversion by EDTA and may account for C5 activity in reaction mixtures containing C-EDTA.

Animals↗

Specific and efficient binding of xeroderma pigmentosum complementation group A to double-strand/single-strand DNA junctions with 3'- and/or 5'-ssDNA branches.

Human XPA is an important DNA damage recognition protein in nucleotide excision repair (NER). We previously observed that XPA binds to the DNA lesion as a homodimer [Liu, Y., Liu, Y., Yang, Z., Utzat, C., Wang, G., Basu, A. K., and Zou, Y. (2005) Biochemistry 44, 7361-7368]. Herein we report that XPA recognized undamaged DNA double-strand/single-strand (ds-ssDNA) junctions containing ssDNA branches with binding affinity (Kd = 49.1 +/- 5.1 nM) much higher than its ability to bind to DNA damage. The recognized DNA junction structures include the Y-shape junction (with both 3'- and 5'-ssDNA branches), 3'-overhang junction (with a 3'-ssDNA branch), and 5'-overhang junction (with a 5'-ssDNA branch). Using gel filtration chromatography and gel mobility shift assays, we showed that the highly efficient binding appeared to be carried out by the XPA monomer and that the binding was largely independent of RPA. Furthermore, XPA efficiently bound to six-nucleotide mismatched DNA bubble substrates with or without DNA adducts including C8 guanine adducts of AF, AAF, and AP and the T[6,4]T photoproducts. Using a set of defined DNA substrates with varying degrees of DNA bending, we also found that the XPC-HR23B complex recognized DNA bending, whereas neither XPA nor the XPA-RPA complex could bind to bent DNA. We propose that, besides DNA damage recognition, XPA may also play a novel role in stabilizing, via its high affinity to ds-ssDNA junctions, the DNA strand opening surrounding the lesion for stable formation of preincision NER intermediates. Our results provide a plausible mechanistic interpretation for the indispensable requirement of XPA for both global genome and transcription-coupled repairs. Since ds-ssDNA junctions are common intermediates in many DNA metabolic pathways, the additional potential role of XPA in cellular processes is discussed.

Animals↗

Studies on the inhibition of C56-initiated lysis (reactive lysis). III. Characterization of the inhibitory activity C567-INH and its mode of action.

An activity in serum which inhibits reactive lysis has recently been shown to do so by preventing the attachment of C567 complexes to cells, and hence has been designated C567-INH. This report describes certain physiochemical characteristics of the inhibitory activity. It behaves as a heat-stable pseudoglobulin, soluble in 20 per cent Na2SO4, and having alpha1 mobility on Pevikon block electrophoresis. It is excluded from CM cellulose at pH 6-0, RSC Equals 0.007 M, is retained by an XM-100 membrane and is heterogenous on Sephadex G-200, eluting in at least two peaks. The combined active materials from the Sephadex column elute from DE-52 in at least four peaks. The mechanism of action of material from each of these four peaks is shown to involve prevention of attachment of C567 complexes to membranes, and this is shown to involve an effect on C567 complexes in solution rather than an effect on the membrane. A less dramatic effect on the lysis of EC567 by limited quanities of C8 and C9 can be demonstrated. Haemolytic studies using cell-bound C567 suggest that the interaction of C567-INH with C567 involves a loose reversible association. It is therefore postulated that C567-INH inhibits reactive lysis primarily by reversibly associating with the nascent C567 complex in solution, increasing its bulk and decreasing its diffusion capacity so that it is unable to reach a cell membrane before its haemolytic potential decays.

Animals↗

Molecular analysis of ligand binding to the second cluster of complement-type repeats of the low density lipoprotein receptor-related protein. Evidence for an allosteric component in receptor-associated protein-mediated inhibition of ligand binding.

The low density lipoprotein receptor-related protein (LRP), a member of the low density lipoprotein receptor gene family, mediates the cellular uptake of a diversity of ligands. A folding chaperone, the 39-kDa receptor-associated protein (RAP) that resides in the early compartments of the secretory pathway inhibits the binding of all ligands to the receptor and may serve to prevent premature binding of ligands to the receptor during the trafficking to the cell surface. To elucidate the molecular interactions that underlie the interplay between the receptor, RAP, and the ligands, we have analyzed and delineated the binding sites of plasminogen activator inhibitor-1 (PAI-1), tissue-type plasminogen activator (t-PA).PAI-1 complexes, RAP, and the anti-LRP Fab fragment Fab A8. To that end, we have generated a series of soluble recombinant fragments spanning the second cluster of complement-type repeats (C3-C10) and the amino-terminal flanking epidermal growth factor repeat (E4) of LRP (E4-C10; amino acids 787-1165). All fragments were expressed by stably transfected baby hamster kidney cells and purified by affinity chromatography. A detailed study of ligand binding to the fragments using surface plasmon resonance revealed the presence of three distinct, Ca2+-dependent ligand binding sites in the cluster II domain (Cl-II) of LRP. t-PA.PAI-1 complexes as well as PAI-1 bind to a domain located in the amino-terminal portion of Cl-II, spanning repeats E4-C3-C7. Adjacent to this site and partially overlapping is a high affinity RAP-binding site located on repeats C5-C7. Fab A8, a pseudo-ligand of the receptor, binds to a third Ca2+-dependent binding site on repeats C8-C10 at the carboxyl-terminal end of Cl-II. Next, we studied the RAP-mediated inhibition of ligand binding to LRP and to Cl-II. As expected, we observed a strong inhibition of t-PA.PAI-1 complex and Fab A8 binding to LRP by RAP (IC50 congruent with 0.3 nM), whereas in the reverse experiment, competition of t-PA. PAI-1 complexes and Fab A8 for RAP binding to LRP could only be shown at high concentrations of competitors (>/=1 microM). Interestingly, even though the equilibrium dissociation constants for the binding of RAP to LRP and to Cl-II are similar, the binding of the ligands to Cl-II is only prevented by RAP at concentrations that are at least 2 orders of magnitude higher than those required for inhibition of ligand binding to LRP. Our results favor models that propose RAP-induced allosteric inhibition of ligand binding to LRP that may require LRP moieties that are located outside Cl-II of the receptor.

Animals↗

A 91-day feeding study in rats with caprenin.

Caprenin, a randomized triglyceride primarily comprising caprylic (C8:0), capric (C10:0), and behenic (C22:0) acids, was administered in a semi-purified diet to weanling Sprague-Dawley rats (25/sex/group) at dose levels of 5.23, 10.23 or 15.00% (w/w) for 91 days. Corn oil was added at 8.96, 5.91 and 3.00%, respectively, to provide essential fatty acids and digestible fat calories. Corn oil alone (12.14%) and a blend of medium-chain triglyceride (MCT) oil plus corn oil (11.21 and 3.13%, respectively) served as controls. All diets were formulated to provide about 4000 kcal/kg of diet and 26.8% of digestible calories from fat by assuming that corn oil, MCT oil, and caprenin provided 9, 7 and 5 kcal/g, respectively. Survival, clinical signs, body weight, feed consumption, feed efficiency, organ weights, organ-to-body-weight ratios, organ-to-brain-weight ratios, haematological values and clinical chemistry parameters were evaluated in all groups. Histopathology of a full complement of tissues was evaluated in the corn oil and MCT oil control groups as well as the high-dose caprenin group. Additional rats (n = 5/sex/group) were included in the study to determine whether there was marked storage of C22:0 in heart, liver or perirenal fat at the end of the 91-day feeding period. No significant differences in body weight gain were measured with the balanced caloric diets, although feed conversion efficiency was reduced in the high-dose caprenin group. No adverse effects from the ingestion of caprenin were detected, nor were significant amounts of C22:0 present in the fat extracted from the selected fat depot sites. These results establish a no-observable-adverse-effect level (NOAEL) of more than 15% (w/w) caprenin in the diet (or more than 83% of total dietary fat), which is equal to a mean exposure level of more than 13.2 g/kg/day for male rats and more than 14.6 g/kg/day for female rats.

Adipose Tissue↗

Molecular basis for the immunostimulatory activity of guanine nucleoside analogs: activation of Toll-like receptor 7.

Certain C8-substituted and N7, C8-disubstituted guanine ribonucleosides comprise a class of small molecules with immunostimulatory activity. In a variety of animal models, these agents stimulate both humoral and cellular immune responses. The antiviral actions of these guanosine analogs have been attributed to their ability to induce type I IFNs. However, the molecular mechanisms by which the guanosine analogs potentiate immune responses are not known. Here, we report that several guanosine analogs activate Toll-like receptor 7 (TLR7). 7-Thia-8-oxoguanosine, 7-deazaguanosine, and related guanosine analogs activated mouse immune cells in a manner analogous to known TLR ligands, inducing cytokine production in mouse splenocytes (IL-6 and IL-12, type I and II IFNs), bone marrow-derived macrophages (IL-6 and IL-12), and in human peripheral blood leukocytes (type I IFNs, tumor necrosis factor alpha and IL-12). The guanosine congeners also up-regulated costimulatory molecules and MHC I/II in dendritic cells. Genetic complementation studies in human embryonic kidney 293 cells confirmed that the guanosine analogs activate cells exclusively via TLR7. The stimulation of TLR7 by the guanosine analogs in human cells appears to require endosomal maturation because inhibition of this process with chloroquine significantly reduced the downstream activation of NF-kappaB. However, TLR8 activation by R-848 and TLR2 activation by [S-[2,3-bis(palmitoyloxy)-(2-RS)-propyl]-N-palmitoyl-R-Cys-S-Ser-Lys4-OH, trihydrochloride)] were not inhibited by chloroquine, whereas TLR9 activation by CpG oligodeoxynucleotides was abolished. In summary, we present evidence that guanosine analogs activate immune cells via TLR7 by a pathway that requires endosomal maturation. Thus, the B cell-stimulating and antiviral activities of the guanosine analogs may be explained by their TLR7-activating capacity.

Animals↗

Role of the N-terminal proline residue in the catalytic activities of the Escherichia coli Fpg protein.

The Escherichia coli Fpg protein is a DNA glycosylase/AP lyase. It removes, in DNA, oxidized purine residues, including the highly mutagenic C8-oxo-guanine (8-oxoG). The catalytic mechanism is believed to involve the formation of a transient Schiff base intermediate formed between DNA containing an oxidized residue and the N-terminal proline of the Fpg protein. The importance and the role of this proline upon the various catalytic activities of the Fpg protein was examined by targeted mutagenesis, resulting in the construction of three mutant Fpg proteins: Pro-2 --> Gly (FpgP2G), Pro-2 --> Thr (FpgP2T), and Pro-2 --> Glu (FpgP2E). The formamidopyrimidine DNA glycosylase activities of FpgP2G and FpgP2T were comparable and accounted for 10% of the wild-type activity. FpgP2G and FpgP2T had barely detectable 8-oxoG-DNA glycosylase activity and produced minute Schiff base complex with 8-oxoG/C DNA. FpgP2G and FpgP2T mutants did not cleave a DNA containing preformed AP site but readily produced Schiff base complex with this substrate. FpgP2E was completely inactive in all the assays. The binding constants of the different mutants when challenged with a duplex DNA containing a tetrahydrofuran residue were comparable. The mutant Fpg proteins barely or did not complement in vivo the spontaneous transitions G/C --> T/A in E. coli BH990 (fpg mutY) cells. These results show the mandatory role of N-terminal proline in the 8-oxoG-DNA glycosylase activity of the Fpg protein in vitro and in vivo as well as in its AP lyase activity upon preformed AP site but less in the 2,6-diamino-4-hydroxy-5-N-methylformamidopyrimidine-DNA glycosylase activity.

Amino Acid Substitution↗

Homologous recombination is involved in repair of chromium-induced DNA damage in mammalian cells.

Chromium is a potent human carcinogen, probably because of its well-documented genotoxic effects. Chromate (Cr[VI]) causes a wide range of DNA lesions, including DNA crosslinks and strand breaks, presumably due to the direct and indirect effects of DNA oxidation. Homologous recombination repair (HRR) is important for error-free repair of lesions occurring at replication forks. Here, we show that HR deficient cell lines irs1SF and V-C8, deficient in XRCC3 and BRCA2, respectively, are hypersensitive to Cr[VI], implicating this repair pathway in repair of Cr[VI] damage. Furthermore, we find that Cr[VI] causes DNA double-strand breaks and triggers both Rad51 foci formation and induction of HRR. Collectively, these data suggest that HRR is important in repair of Cr[VI]-induced DNA damage. In addition, we find that ERCC1, XRCC1 and DNA-PKcs defective cells are hypersensitive to Cr[VI], indicating that several repair pathways cooperate in repairing Cr[VI]-induced DNA damage.

Animals↗

Suppression of in vitro antibody response of human peripheral blood lymphocytes by a heat-labile factor in normal human serum.

When fresh autologous serum was added to normal human peripheral blood lymphocytes (PBL), it suppressed greater than 90% of the in vitro anti-SRBC response of these cells. Heating the serum for 30 min at 56 degrees C reversed this suppression, Serum from a patient with rheumatoid arthritis and circulating immune complexes had no suppressive effect on the anti-SRBC response of normal human PBL, but serum from patients having the same disease, without circulating immune complexes, did suppress over 90% of the plaque-forming cell response. Serum from an agammaglobulinaemic patient was also suppressive. Addition of serum from patients with congenital deficiencies of C2, C3, C5 and C8 also has a suppressive effect. Absorption of normal serum with immune complexes markedly decreased levels of C1 and C4, and also reversed the suppressive effect of this serum. These data suggest that a heat-labile factor in normal human serum which can be absorbed by immune complexes suppresses the antibody response to a T-dependent antigen. Other immune suppressors found in normal human serum are heat-stable or do not suppress in the presence of normal serum proteins. Thus the suppressive protein described in these studies may be unique. It is possible that either C1 or C4 or both may play a role in the suppression noted here.

Agammaglobulinemia↗

Generation of an activated form of human C5 (C5b-like C5) by oxygen radicals.

Treatment of purified human C5 with hydrogen peroxide leads to a reduction of functional activity in the classical immune haemolysis assay. The effect of H2O2 is enhanced by traces of iron-EDTA, and becomes even stronger when ascorbic acid is present in addition. The enhancement by iron and protective effects of various radical scavengers indicate that the conversion of C5 is brought about by hydroxyl radicals mainly, generated from H2O2 during its decomposition. By the conversion C5 acquires a new functional property: it becomes capable of binding C6, and the resulting complex C56 lyses non-sensitized red cells in cooperation with the late components C7, C8, and C9 (reactive lysis). In this respect, H2O2-treated C5 resembles the activation fragment of C5, C5b. However, unlike C5b, C5(H2O2) is not fragmented but comprises the whole molecule, according to polyacrylamide gel electrophoresis. In accordance with the lack of cleavage, no chemotactic activity indicating formation of C5a, became apparent after H2O2 treatment of C5. In whole human serum, however, the H2O2 system induces additional processes leading to the generation of C5a activity and indicating C5 cleavage. The pathways to this reaction are as yet not clear. The effect of oxygen radicals on C5 may be the basis of the enhancing effect of stimulated leukocytes on C5 activation in body fluids. Activated leukocytes are known to produce H2O2 and oxygen radicals.

Complement Activation↗

Defining the CD59-C9 binding interaction.

CD59 is a membrane glycoprotein that regulates formation of the cytolytic membrane attack complex (MAC or C5b-9) on host cell membranes. It functions by binding to C8 (alpha chain) and C9 after their structural rearrangement during MAC assembly. Previous studies indicated that the CD59 binding site in C9 was located within a 25-residue disulfide-bonded loop, and in C8alpha was located within a 51-residue sequence that overlaps the CD59 binding region of C9. By peptide screens and the use of peptides in binding assays, functional assays, and computer modeling and docking studies, we have identified a 6-residue sequence of human C9, spanning residues 365-371, as the primary CD59 recognition domain involved in CD59-mediated regulation of MAC formation. The data also indicate that both C8alpha and C9 bind to a similar or overlapping site on CD59. Furthermore, data from CD59-peptide docking models are consistent with the C9 binding site on CD59 located at a hydrophobic pocket, putatively identified previously by CD59 mutational and modeling studies.

Binding Sites↗

The SC5b-7 complex: formation, isolation, properties, and subunit composition.

Activation of C in C8-depleted serum results in the formation of a soluble complex containing C5, C6, and C7. The complex has an electrophoretic mobility of an alpha-globulin, an s-rate of 18.5S, and a m.w. of 668,000 daltons. This complex was isolated and upon SDS polyacrylamide gel electrophoresis it was found to contain, in addition to C5b, C6 and C7, an 88,000 dalton glycoprotein. The protein was identified as the band V protein of the soluble C5b-9 complex. It is referred to as SIIIs-protein, or S-protein. Since the S-protein does not bind to C5b-6, it is concluded that it is incorporated during the fusion of C5b-6 with C7. The SC5b-7 complex exhibits the same neoantigen as the SC5b-9 complex, but compared to the C5b-6 complex it appears to contain an additionally qualitatively distinct neoantigen.

Animals↗

C3 binds preferentially to long-chain lipopolysaccharide during alternative pathway activation by Salmonella montevideo.

We studied the population of LPS molecules on Salmonella montevideo that bind C3 during alternative pathway activation in serum. LPS molecules of Salmonella are composed of lipid A:core oligosaccharide (one copy per molecule), substituted by an O-polysaccharide (O-PS) side chain, which is a linear polymer of 0 to greater than 60 O-antigen repeat units containing mannose. A mutant of S. montevideo called SL5222 that inserts galactose only into core oligosaccharide and mannose only into O-antigen subunits was grown with [3H]mannose and [14C]galactose, so that LPS molecules bearing large numbers of O-antigen subunits have high 3H to 14C ratios, whereas molecules with few O-antigen subunits have lower 3H to 14C ratios. Double-labeled SL5222 was incubated in C8-deficient (C8D) serum or C8D serum with 2 mM Mg++Cl2 and 10 mM ethylene glycoltetraacetic acid (MgEGTA C8D). LPS molecules with covalently attached C3 were identified by binding to anti-C3. LPS molecules that bound C3 under both incubation conditions had O chains seven to eight times longer than the average LPS molecule. SL5222 was then grown in suboptimal concentrations of mannose in order to decrease the number of LPS molecules with long O-PS side chains. C3 attached to progressively shorter chain molecules of LPS as the mannose input was lowered, but still chose the longest available molecules. This finding and recently published observations indicate that C3 can bind to LPS molecules with short O-PS side chains. We postulate that preferential attachment of C3 to long-chain LPS in SL5222 results because long-chain LPS molecules sterically hinder shorter chain LPS molecules from macromolecules. This study provides direct proof that the O-PS of LPS sterically hinders access of large molecules to the outer membrane and indicates that the LPS coat of these bacteria functions as a barrier against large protein molecules.

Antigens, Bacterial↗

Sublytic C5b-9-stimulated Schwann cell survival through PI 3-kinase-mediated phosphorylation of BAD.

Sublytic C5b-9 induces cell cycle activation, proliferation, and rescue from apoptosis in Schwann cells. The signaling pathways for C5b-9-mediated rescue were investigated. Following serum withdrawal, DNA fragmentation, detected by TUNEL and FACS analysis, was 56.7% +/- 7.3 and 91.9% +/- 2.4 in cultured sciatic nerve Schwann cells from 6-day-old rats after 18 h and 24 h, respectively. Apoptosis was confirmed by inhibition of DNA fragmentation in a dose-dependent manner by DMQD-CHO, a caspase-3 inhibitor. Treatment with sublytic C5b-9 generated with purified components (C5*9) or Ab+C7-depleted serum (C7dHS)+C7 rescued 89% and 86% of Schwann cells, respectively, as compared with cells treated with C5*6, C8, C9, or Ab+C7dHS. Sublytic C5b-9 increased Schwann cell PI-3 kinase and Akt activity maximally at 5 min 3.14 +/- 0.5-fold and 3.56 +/- 0.4-fold, respectively, over controls. ERK-1 activity was maximally stimulated 2.98-fold at 15 min. Inhibition of PI-3 kinase by LY294002 abrogated the C5b-9-mediated Schwann cell rescue from apoptosis, while inhibition of ERK-1 with PD098,059 did not. PI-3 kinase-Akt pathway activation by C5b-9 induced, within 15 min, a 6.34 +/- 1.2-fold increase in BAD phosphorylation at Ser 136, but not at Ser 112. Downstream Bcl-x(L) protein was increased 2.61-fold +/- 0.34-fold by 18 h and 3.9-fold +/- 0.84-fold by 24 h over controls. LY294002 prevented both BAD phosphorylation at Ser 136 and Bcl-x(L) protein induction, while PD098,059 did not. Our data indicated that sublytic C5b-9 rescued Schwann cell from apoptosis via activation of PI-3 kinase-Akt, BAD phosphorylation on Ser 136 and increased expression of Bcl-x(L). Sublytic C5b-9 detected on Schwann cell in vivo during inflammatory neuropathy may facilitate survival of Schwann cell capable of remyelination.

Animals↗