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Biomedical subjects

S Krishnaswamy

Publications and source records attributed to S Krishnaswamy.

At least 37 records · Page 2Linked to original sources

Regulation of extrinsic pathway factor Xa formation by tissue factor pathway inhibitor.

Tissue factor (TF) pathway inhibitor (TFPI) regulates factor X activation through the sequential inhibition of factor Xa and the VIIa.TF complex. Factor Xa formation was studied in a purified, reconstituted system, at plasma concentrations of factor X and TFPI, saturating concentrations of factor VIIa, and increasing concentrations of TF reconstituted into phosphatidylcholine:phosphatidylserine membranes (TF/PCPS) or PC membranes (TF/PC). The initial rate of factor Xa formation was equivalent in the presence or absence of 2.4 nM TFPI. However, reaction extent was small (<20%) relative to that observed in the absence of TFPI, implying the rapid inhibition of VIIa.TF during factor X activation. Initiation of factor Xa formation using increasing concentrations of TF/PCPS or TF/PC in the presence of TFPI yielded families of progress curves where both initial rate and reaction extent were linearly proportional to the concentration of VIIa.TF. These observations were consistent with a kinetic model in which the rate-limiting step represents the initial inhibition of newly formed factor Xa. Numerical analyses of progress curves yielded a rate constant for inhibition of VIIa.TF by Xa.TFPI (>10(8) M-1.s-1) that was substantially greater than the value (7.34 +/- 0.8 x 10(6) M-1.s-1) directly measured. Thus, VIIa.TF is inhibited at near diffusion-limited rates by Xa.TFPI formed during catalysis which cannot be explained by studies of the isolated reaction. We propose that the predominant inhibitory pathway during factor X activation may involve the initial inhibition of factor Xa either bound to or in the near vicinity of VIIa.TF on the membrane surface. As a result, VIIa.TF inhibition is unexpectedly rapid, and the concentration of active factor Xa that escapes regulation is linearly dependent on the availability of TF.

Animals↗

Exosites determine macromolecular substrate recognition by prothrombinase.

The prothrombinase complex, composed of factor Xa and factor Va assembled on a membrane surface, catalyzes the proteolytic formation of thrombin during blood coagulation. The molecular basis for the macromolecular substrate specificity of prothrombinase is poorly understood. By kinetic studies of prethrombin 2 cleavage by prothrombinase in the presence or absence of fragment 1.2, we show that occupation of the active site of the catalyst by inhibitors or alternate peptidyl substrates does not alter the affinity for prethrombin 2. Productive recognition of the macromolecular substrate therefore results from an initial interaction at enzymic sites (exosites) distinct from the active site, which largely determines substrate affinity. This interaction at exosites is evident even in the absence of activation peptide domains responsible for mediating the binding of the substrate to membranes or factor Va. Interactions at the active site with structures surrounding the scissile bond then precede bond cleavage and product release. The second binding step, which appears unfavorable, does not affect substrate affinity but contributes to the maximum catalytic rate. Therefore, binding specificity of prothrombinase for the macromolecular substrate is determined by exosites on the enzyme. We show that competitive inhibition of prethrombin 2 cleavage can be accomplished by interfering with the exosite binding step without obscuring the active site of the enzyme. These findings suggest limitations to the common approach of inferring the basis of factor Xa specificity with active site mutants or the targeting the active site of factor Xa with reversible inhibitors for therapeutic purposes. The achievement of distinctive macromolecular substrate specificities through exosite interactions and modulation of maximum catalytic rate through binding steps may also underlie the reactions catalyzed by the other coagulation complexes containing trypsin-like enzymes.

Animals↗

The first structure at 1.8 A resolution of an active autolysate form of porcine alpha-trysoin.

The first crystal structure of an active autolysate form of porcine alpha-trypsin (APT), a two-chain molecule obtained from the limited autolysis of porcine beta-trypsin at position Lys145-Ser146, has been determined. APT crystallizes in space group P2(1)2(1)2(1) with one protein molecule in the asymmetric unit. The structure was solved by molecular replacement followed by refinement using X-PLOR to an R factor of 0.200 and an R(free) of 0.285 for 8.0-1.8 A data with r.m.s deviations from ideal values of 0.01 A and 1.7 degrees for bond lengths and bond angles, respectively. Comparison with inactive autolysate porcine epsilon-trypsin (EPT) and porcine beta-trypsin in complex with bittergourd trypsin inhibitor (MCT) revealed a small but systematic directional chain shift around the active-site residues from APT to EPT to MCT.

Journal Article↗

C-H...O hydrogen bonds in beta-sheets.

A detailed analysis of the occurrence of the C-H...O hydrogen bonds in sheet regions of proteins has been presented. 11 unique protein structures with resolution 1.3 A containing beta-sheets show a widespread presence of C-H...O hydrogen bonds. These have average C(alpha).O, CH...O distances and a C(alpha)-H...O angle of 3.29, 2.38 A and 143 degrees, respectively. As in the case of N-H...O hydrogen bonds, parallel and antiparallel beta-sheet regions show the same hydrogen-bond geometry. An inverse correlation is observed between the hydrogen-bond geometries involving the C(alpha)(i)-H...O=C and the N(i+1)-H...O=C suggesting that C-H...O hydrogen bonds may act as an additional stabilizing factor. The propensity of different amino-acid residues to form such hydrogen bonds varies and shows a clear preference for valine and threonine. C-H...O hydrogen bonds involving side chains also occur extensively in beta-sheet regions.

Journal Article↗

Contribution of the prothrombin fragment 2 domain to the function of factor Va in the prothrombinase complex.

The prothrombinase complex assembles through reversible interactions between factor Xa, factor Va and acidic phospholipid-containing membranes in the presence of calcium ions. This complex catalyses the conversion of prothrombin to thrombin through two proteolytic steps. We have used prethrombin 2 as a substrate analog for the first cleavage reaction of prothrombin activation (cleavage at Arg323-Ile324) catalyzed by the prothrombinase complex and have also relied on the known ability of prethrombin 2 to interact tightly but reversibly with fragment 2 or fragment 1.2. The kinetics of cleavage at Arg323-Ile324 have been assessed with these substrate analogs to investigate the contribution of cofactor-substrate interactions mediated by the fragment 2 domain to the ability of factor Va to enhance the catalytic efficiency of factor Xa within the prothrombinase complex. Initial velocity measurements indicated that the rate of prethrombin 2 cleavage by the factor Xa-PCPS binary complex was increased by a factor of approximately 1300 upon the addition of saturating concentrations of factor Va to assemble prothrombinase. Although the measured initial velocity was higher when either fragment 2 or fragment 1.2 was present, the factor Va-dependent enhancement in initial rate (2600- and 1500-fold) was comparable in each case. Steady state kinetic constants were obtained using prethrombin 2, prethrombin 2 plus fragment 2, and prethrombin 2 plus fragment 1.2 as substrates. For each substrate, the addition of saturating concentrations of factor Va to the Xa-PCPS binary complex led to increases in catalytic efficiency of between 1000 and 9000-fold. The kcat/Km for prethrombin 2 cleavage by prothrombinase was essentially identical to that obtained for prethrombin 2 saturated with fragment 2. Thus, comparable accelerating effects of factor Va are observed independent of the presence of the fragment 2 domain in the substrate. The results indicate that interactions between factor Va and the substrate mediated by the fragment 2 domain do not contribute in a dominant way to the ability of factor Va to enhance the catalytic efficiency of factor Xa within the prothrombinase complex.

Animals↗

Selective inhibition of the prothrombinase complex: factor Va alters macromolecular recognition of a tick anticoagulant peptide mutant by factor Xa.

The prothrombinase complex assembles through reversible interactions between the protease, factor Xa, the cofactor, factor Va, and acidic phospholipid membranes in the presence of calcium ions. Changes in macromolecular recognition by factor Xa which may result from its interaction with factor Va in the prothrombinase complex have been probed using a recombinant derivative of tick anticoagulant peptide where Arg3 has been replaced with Ala (R3A-TAP). In contrast to the wild type inhibitor, R3A-TAP was a weak competitive inhibitor of factor Xa (Ki = 794 nM). The inhibition of the prothrombinase complex by R3A-TAP was characterized by slow, tight-binding kinetics with an increased affinity of approximately 4000-fold (Ki* = 0.195 nM) relative to that of solution-phase factor Xa. Stopped-flow measurements using p-aminobenzamidine (PAB) demonstrated that the reaction between solution-phase factor Xa and R3A-TAP could be adequately described by a single reversible step with rate constants that were consistent with equilibrium binding measurements. The rate-limiting bimolecular combination of R3A-TAP and factor Xa was competitive with PAB binding of the protease. In contrast, the reaction of R3A-TAP with prothrombinase measured using PAB yielded biphasic stopped-flow traces, indicating a multistep pathway for the reaction of the inhibitor with the enzyme complex. The kinetic measurements were consistent with the initial formation of a ternary complex between R3A-TAP, prothrombinase, and PAB followed by two unimolecular steps which lead to PAB dissociation from the enzyme. In this case, prior occupation of the active site by PAB had no effect on the bimolecular reaction between R3A-TAP and prothrombinase. Thus, the interaction of factor Xa with factor Va on the membrane surface alters recognition of R3A-TAP by the protease, leading to changes in the thermodynamics as well as in the observed kinetic mechanism for the reaction. Therefore, a single amino acid substitution in TAP reveals large changes in macromolecular recognition by factor Xa as a consequence of its interaction with the cofactor within the prothrombinase complex.

Animals↗

Role of the activation peptide domain in human factor X activation by the extrinsic Xase complex.

The activation of factor X by the extrinsic coagulation system results from the action of an enzyme complex composed of factor VIIa bound to tissue factor on phospholipid membranes in the presence of calcium ions (extrinsic Xase complex). Proteolysis at the Arg52-Ile53 peptide bond in the heavy chain of factor X leads to the formation of the serine protease, factor Xa, and the generation of a heavily glycosylated activation peptide comprising residues 1-52 of the heavy chain. The role of the activation peptide region in mediating substrate recognition and cleavage by the extrinsic Xase complex is unclear. The protease Agkistrodon rhodostoma hydrolase gamma (ARHgamma), from the venom of the Malayan pit viper, was used to selectively cleave human factor X in the activation peptide region. Three cleavage sites were found within this region and gave products designated Xdes1-34, Xdes1-43, and Xdes1-49. The products were purified to yield Xdes 1-49 and a mixture of Xdes 1-34 and Xdes 1-43. Reversed phase high pressure liquid chromatography analysis indicated that the cleaved portion of the activation peptide was likely removed during purification. All cleaved species were inactive and could be completely activated to factor Xa by the extrinsic Xase complex or by a purified activator from Russell's viper venom. Steady state kinetic studies using tissue factor reconstituted into membranes yielded essentially equivalent kinetic constants for the activation of intact factor X and the cleaved derivatives under a wide range of conditions. Since Xdes 1-49 lacks all but three residues of the activation peptide and is devoid of the carbohydrate present in this region, the data suggest that the specific recognition of human factor X by the extrinsic Xase complex is not achieved through specific interactions with residues 1-49 of the activation peptide or with carbohydrate structures attached to these residues.

Amino Acid Sequence↗

Polymorphism of adhesion molecule CD31 and its role in acute graft-versus-host disease.

BACKGROUND: Graft-versus-host disease (GVHD) caused by poorly defined minor (i.e., other than HLA) histocompatibility antigens remains a serious problem in recipients of bone marrow transplants. We sought to determine whether the CD31 adhesion molecule is a minor alloantigen. METHODS: We directly sequenced samples of complementary DNA (cDNA) encoding CD31 molecules from 21 unrelated normal subjects. Sequence-specific primers were then designed to amplify alleles by the polymerase chain reaction, thereby permitting CD31 typing of genomic DNA from additional normal subjects. To assess the relevance of CD31 matching to bone marrow transplantation, we performed CD31 typing of 46 recipients of bone marrow (32 without GVHD and 14 with severe [grade III or IV] acute GVHD) and their HLA-identical sibling donors. The immunoreactivity of CD31 phenotypes with anti-CD31 monoclonal antibodies was compared by flow cytometry. RESULTS: Direct sequencing of cDNA for CD31 from the 21 normal subjects identified a single polymorphism, CTG-->GTG (Leu-->Val), at codon 125; we designated the resulting alleles CD31.L and CD31.V, respectively. The CD31 genotypes of these and 142 other unrelated subjects were of the expected frequencies. Among the transplant recipients, 71 percent of those with acute GVHD had CD31 genotypes that were not identical to the donor's genotype, as compared with 22 percent of the recipients without GVHD (P = 0.004). The binding of anti-CD31 monoclonal antibodies as measured by fluorescence-activated cell sorting correlated with the CD31 types of homozygous cell lines. CONCLUSIONS: The adhesion molecule CD31 is polymorphic. When donor and recipient genotypes are not identical, the risk of GVHD increases. Prospective CD31 typing may reduce the risk of acute GVHD.

Adolescent↗

Insights into the complex association of bovine factor Va with acidic-lipid-containing synthetic membranes.

The mechanism of binding of blood coagulation cofactor factor Va to acidic-lipid-containing membranes has been addressed. Binding isotherms were generated at room temperature using the change in fluorescence anisotropy of pyrene-labeled bovine factor Va to detect binding to sonicated membrane vesicles containing either bovine brain phosphatidylserine (PS) or 1,2-dioleoyl-3-sn-phosphatidylglycerol (DOPG) in combination with 1-palmitoyl-2-oleoyl-3-sn-phosphatidylcholine (POPC). The composition of the membranes was varied from 0 to 40 mol% for PS/POPC and from 0 to 65 mol % for DOPG/POPC membranes. Fitting the data to a classical Langmuir adsorption model yielded estimates of the dissociation constant (Kd) and the stoichiometry of binding. The values of Kd defined in this way displayed a maximum at low acidic lipid content but were nearly constant at intermediate to high fractions of acidic lipid. Fitting the binding isotherms to a two-process binding model (nonspecific adsorption in addition to binding of acidic lipids to sites on the protein) suggested a significant acidic-lipid-independent binding affinity in addition to occupancy of three protein sites that bind PS in preference to DOPG. Both analyses indicated that interaction of factor Va with an acidic-lipid-containing membrane is much more complex than those of factor Xa or prothrombin. Furthermore, a change in the conformation of bound pyrene-labeled factor Va with surface concentration of acidic lipid was implied by variation of both the saturating fluorescence anisotropy and the binding parameters with the acidic lipid content of the membrane. Finally, the results cannot support the contention that binding occurs through nonspecific adsorption to a patch or domain of acidic lipids in the membrane. Factor Va is suggested to associate with membranes by a complex process that includes both acidic-lipid-specific and acidic-lipid-independent sites and a protein structure change induced by occupancy of acidic-lipid-specific sites on the factor Va molecule.

Adsorption↗

Expression of the mcrA gene of Escherichia coli is regulated posttranscriptionally, possibly by sequestration of the Shine-Dalgarno region.

The polypeptides encoded by the mcrA gene were analysed using a T7 expression system. Cloned fragments of 1.6 and 1.0 kb displayed an McrA+/RglA+ phenotype and directed synthesis of a 31-kDa polypeptide. A derivative of these clones altered at an internal HindIII site displayed an McrA+/RglA- phenotype and directed production of a 23-kDa polypeptide. Smaller inserts displayed McrA-/RglA- phenotypes, though a 0.7-kb insert did direct production of a 24-kDa polypeptide. A construct carrying the 1.0-kb mcrA insert yielded a single 1.3-kb transcript. The mcrA transcript was found to start from C, G, T and G, namely the fourth, fifth, sixth and seventh nucleotides (nt), respectively, downstream from the last nt of the putative -10 region. Two mcrA transcriptional/transational fusions were made in the pT7-7 expression vector and the protein encoded by these constructs were analysed. Regulation of mcrA expression was studied by quantitative Northern analysis of RNA from various mcrA clones. Together with a computer analysis of the translation initiation region in these mRNAs, the results suggest that the expression of mcrA may be regulated at the translational level.

Bacterial Proteins↗

The activation of prothrombin by the prothrombinase complex. The contribution of the substrate-membrane interaction to catalysis.

The conversion of prothrombin to thrombin requires the cleavage of two peptide bonds and is catalyzed by the prothrombinase complex composed of factors Xa and Va assembled on a membrane surface. Presteady-state kinetic studies of the effects of membranes on the proteolytic reaction were undertaken using model membranes composed of phosphatidylcholine and phosphatidylserine (PCPS). The concentration of PCPS was varied to alter the concentration of free phospholipid available for substrate binding without influencing the concentration of membrane-assembled prothrombinase. In fluorescence stopped-flow measurements, increasing concentrations of PCPS resulted in an increase in the rate of product formation. Assessment of bond cleavage by sodium dodecyl sulfate-polyacrylamide gel electrophoresis following rapid chemical quench using 125I-prothrombin revealed that the activation reaction proceeded through the ordered cleavage at Arg323-Ile324 followed by cleavage at Art274-Thr275 at all concentrations of PCPS. Increasing the PCPS concentration resulted in a large increase in the Arg323-Ile324 cleavage reaction with a much smaller effect on the subsequent cleavage at Arg274-Thr275, thereby leading to an increase in the extent of accumulation of the intermediate, meizothrombin. Fluorescence stopped-flow and rapid chemical quench measurements were also conducted using prethrombin 2 plus fragment 1.2 or meizothrombin as substrates to assess the influence of PCPS on the individual cleavage reactions. The rate of cleavage at Arg323-Ile324 by prothrombinase was increased approximately 60-fold with increasing PCPS, whereas the cleavage at Arg274-Thr275 was increased by a factor of approximately 5. These differential effects of PCPS on the two cleavage reactions adequately explain changes in the extent of accumulation of meizothrombin during prothrombin activation. Proteolytic removal of the membrane binding fragment 1 domain of the substrates, meizothrombin and prethrombin 2-fragment 1.2, had no effect on the cleavage at Arg274-Thr275 at saturating PCPS but completely eliminated the membrane-dependent rate enhancement for cleavage at Arg323-Ile324. Thus, membrane binding by the substrate is essential for the first cleavage reaction at Arg323-Ile324, which leads to the conversion of prothrombin to meizothrombin. In contrast, the substrate-membrane interaction mediated by the fragment 1 domain has no detectable effect on the second cleavage reaction at Arg274-Thr275 which is required for the conversion of meizothrombin to thrombin.

Animals↗

Inhibition by heparin of the human blood coagulation intrinsic pathway factor X activator.

The effect of heparin and other glycosaminoglycans on the activation of factor X by the phospholipid membrane-bound human factor IXa-factor VIIIa complex (intrinsic fXase) was studied. Standard heparin inhibited purified intrinsic fXase by 50% at approximately 0.08 unit/ml (0.4 microgram/ml), which is below the normal range of heparin concentrations achieved during antithrombotic therapy (0.2-0.7 unit/ml). Kinetic and binding experiments revealed that heparin behaves as a partial noncompetitive inhibitor. The inhibition constant of heparin with low affinity for antithrombin was indistinguishable from heparin with high affinity for antithrombin (Ki = 20 nM). Additionally, "low molecular weight" heparin, which also is used as an antithrombotic drug, was a potent inhibitor of intrinsic fXase (Ki = 60 nM). Dermatan sulfate inhibited intrinsic fXase much more weakly than standard heparin (IC50 = 80 micrograms/ml). The IC50 of the other mammalian glycosaminoglycans, chondroitin sulfate, keratan sulfate, and hyaluronic acid, were greater than 100 micrograms/ml. Purified prothrombinase and extrinsic fXase were not inhibited by heparin. We propose that part of the antithrombotic action of heparin and low molecular weight heparin is due to anti-thrombin-independent inhibition of intrinsic fXase and that heparin with low affinity for antithrombin may be useful as an antithrombotic agent.

Blood Coagulation↗

Assembly of the prothrombinase complex enhances the inhibition of bovine factor Xa by tick anticoagulant peptide.

The interaction of factor Xa with factor Va on a membrane surface results in the assembly of the prothrombinase complex. The highly specific and multistep interaction between recombinant tick anticoagulant peptide (rTAP) and factor Xa was used to probe perturbations in the macromolecular interaction sites of factor Xa that accompany prothrombinase assembly. Steady-state kinetic studies indicated that the incorporation of factor Xa into prothrombinase resulted in a modest 3-fold increase in the rate constant for inhibition by rTAP. However, the overall dissociation constant for the enzyme-inhibitor interaction (Ki*) was decreased approximately 30-fold to 5.3 pM. This finding was verified by fluorescence stopped-flow studies of the multistep reaction between rTAP and solution-phase factor Xa or prothrombinase by using 4-aminobenzamidine. The second-order rate constant for the binding or rTAP to the protease (k + 1 = 3.35 x 10(6) M-1.s-1) was increased approximately 2-fold (k + 1 = 6.6 x 10(6) M-1.s-1) following the assembly of prothrombinase, while the rate constant for the subsequent slow displacement of the fluorophore from the active site of factor Xa was decreased by 20-fold. Therefore, factor Va alters macromolecular interaction sites on factor Xa; which leads to the stabilization of intermediates in the reaction of the protease with rTAP and an increased overall affinity for the inhibition of factor Xa. Fluorescence measurements of prothrombinase assembly using factor Xa modified with dansylglutamylglycinylarginine chloromethyl ketone (DEGR-Xa) indicated that the preformed rTAP-Xa binary complex bound to factor Va more tightly (Kd = 30.7 +/- 6.2 pM) than factor Xa alone (Kd = 1.25 +/- 0.29 nM). The 30-fold higher affinity of the rTAP-Xa complex for factor Va can completely account for the increased affinity of rTAP for prothrombinase and implies adequate thermodynamic description of the reactions involved. Collectively, the data suggest that the interaction of factor Xa with factor Va on a membrane surface alters macromolecular recognition sites on factor Xa involved in binding rTAP. As a result of this conformational change, the inhibition of factor Xa by rTAP is thermodynamically favored when the enzyme is assembled in the prothrombinase complex.

Animals↗

A mutant hook-associated protein (HAP3) facilitates torsionally induced transformations of the flagellar filament of Escherichia coli.

Two mutants with defects in hook-associated protein 3 (HAP3) were isolated that exhibit impaired swimming only when they interact with a solid surface or a semisolid matrix. Motility and chemotaxis were normal in liquid media, even in media containing viscous agents, but cells failed to swarm in 0.28% agar. Mutants appeared to carry a full complement of flagella of normal configuration and length. However, filaments rotating counterclockwise close to a glass surface transformed from normal to straight, while filaments rotating clockwise transformed from curly to straight. Both transformations propagated from base to tip, as expected if torsionally induced. The mutations mapped to the middle of flgL, to structural gene for HAP3, and sequence analysis revealed the same coding change in both mutants: a substitution of cysteine for arginine 168. Our results show that the ability of a filament composed of normal flagellin subunits to resist mechanical stress depends on the structure of the protein (HAP3) to which it is attached at its base. The N-terminal sequence of HAP3 was found to be similar to the N-terminal sequence of flagellin, and the possibility that it provides a nucleation site for the C-terminal region of flagellin is discussed.

Amino Acid Sequence↗

Attacking the backlog of India's curable blind. The Aravind Eye Hospital model.

The number of individuals in developing nations with preventable blindness from cataract and other disorders is increasing. New programs incorporating local customs and efficiently using available resources must be created to prevent the escalation of blindness and to rehabilitate patients already disabled with cataracts. We describe a system of high-quality, high-volume, cost-effective cataract surgery, using screening eye camps and a resident hospital. This has enabled us to provide efficient low-cost cataract surgery and overcome barriers of adequate eye care in southern India. We have been successful in locating patients with treatable eye problems, educating them about the availability of ophthalmic care, and providing free eye care. Our structure stresses the following: community involvement, identification of individuals most likely to benefit from screening, efficient utilization of both medical and paramedical personnel, and a streamlined approach to screening patients. This system may be capable of modification for use in other developing areas to decrease the backlog of cataract blindness.

Blindness↗

Soluble form of an HLA-B7 class I antigen specifically suppresses humoral alloimmunization.

A soluble HLA-B7 molecule, designated sB7 and generated by genetically engineering the B7 gene to remove the transmembrane and cytoplasmic domains, was tested as a tolerogen. Supernatants from cultures of C1R cells transfected with the gene for sB7 were harvested and concentrated, as were control supernatants. From days -17 to -1, C57Bl/6 mice were pretreated with a total of 11 intraperitoneal doses of 1.0 microgram each of sB7 or appropriate control supernatant, and then were challenged intraperitoneally on each of days 0, 7, and 14 with 10(6) C1R-B7 cells (expressing surface HLA-B7). Antibody kinetics revealed (1) anti-B7 was not induced after sB7 pretreatment; (2) the anti-B7 response of sB7-pretreated mice was marginal and of apparent low avidity compared with the brisk anti-B7 response of control mice; (3) none of the mice made antibody to a control HLA antigen, A24; (4) all mice made strong antibody responses to the non-B7 surface antigens of C1R; (5) free sB7 did not appear in the blood of the treated mice; and (6) all mice appeared to be generally healthy. These data show soluble B7 antigen is not immunogenic and appears to specifically block humoral immune response to cell membrane-bound HLA-B7 in a nontoxic manner.

Animals↗

Bioengineered soluble HLA-B7. Genesis, characterization, and occurrence of dimerization.

A soluble, secreted form of HLA-B7 was engineered by replacing the exons encoding the transmembrane and cytoplasmic domains of the B7 gene with a CI. The modified gene, gsB7, transfected into J27.2 or C1R cell lines, produced a secreted protein, sB7, serologically recognized as B7. Size fractionation showed one species of sB7 at the approximately 55 kD expected for an sB7 alpha-chain-beta 2m heteroduplex, and another at approximately 120 kD which had the same constituent chains and was a dimer of the 55-kD species. Dimer formation appeared to be related to protein concentration but not to disulfide bridging. The sB7 heavy chain on SDS-PAGE showed a doublet at approximately 39 and approximately 42 kD; enzyme analysis indicated that the two bands differed only by a carboxyl terminal polypeptide. Analysis of gsB7 transfectants' mRNA by Northern blots and PCR revealed message fully spliced or with retained CI, accounting for the 39- and 42-kD bands, respectively, and apparently untranslated message with I3 retained. sB7 was not detectable on the surface of gsB7 transfectants by CTLs, nor did it inhibit those CTLs. Production of the sB7 protein provides a ready, consistent source of soluble class I antigen for further study, including test materials for tolerogenicity studies in animal models.

Amino Acid Sequence↗