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K C Ingham

Publications and source records attributed to K C Ingham.

At least 37 records · Page 2Linked to original sources

Ca(2+)-linked association of human complement C1s and C1r.

The weight-average molecular weight of Clr, an activated serine protease subcomponent of complement Cl, was measured in the presence of widely varying concentrations of Ca2+ and the other serine protease subcomponent, Cls, by utilizing the technique of tracer sedimentation equilibrium. A quantitative model for heteroassociation between the two subcomponents, which takes into account the previously observed Ca(2+)-dependent self-association of Cls, was fit to the combined data at each Ca2+ concentration. The results indicate that Clr, which exists as a dimer under all of the conditions explored in this work, can bind up to two molecules of Cls at both low and high Ca2+ concentrations, but the association constant for binding a single molecule of Cls to dimeric Clr is estimated to increase on the order of a 1000-fold as [Ca2+] increases from 1 nM to 1.0 mM. Heteroassociation of Clr and Cls is favored over self-association of Cls at all conditions. The results clearly indicate the necessity of taking into account a multiplicity of states of association when attempting to understand the equilibrium average properties of a mixture of the two subcomponents and their binding to Clq in solution.

Binding Sites↗

Ca(2+)-dependent interactions between Gla and EGF domains in human coagulation factor IX.

The Ca(2+)-induced interaction between the Gla and EGF domains of human factor IX was investigated by means of three fragments: 6-kDa Gla, 19-kDa (EGF)2, and 25-kDa Gla-(EGF)2. Size-exclusion chromatography and spectroscopic measurements revealed that the Gla-EGF interaction is rather strong; it can be reconstituted by mixing the 6-kDa and 19-kDa fragments which form a stable 1:1 heterocomplex in the presence of Ca2+. By itself, the 6-kDa Gla self-associates in these conditions. The Gla-EGF interaction can be disrupted in 5 M urea where the compact structure of both domains is preserved. Binding of Ca2+ to 19-kDa (EGF)2 occurred with a Kd of 71 microM in the absence and 108 microM in the presence of 5 M urea and stabilized the first EGF domain, increasing its Tm by 12 degrees C. Addition of Ca2+ to the 6-kDa and 25-kDa fragments produced biphasic changes in their fluorescence; the intensity increased slightly at low Ca2+ concentration and then decreased in a monotonic manner. In 5 M urea, only the decrease occurred, with apparent Kds of 0.33 and 0.30 mM for 6-kDa Gla and 25-kDa Gla-(EGF)2, respectively. Thus, in 5 M urea in the presence of Ca2+, the isolated Gla domain has a compact structure and Ca2+ binding properties similar to those in the 25-kDa fragment. In the absence of urea, the Gla domain interacts either with itself, when isolated, or with the first EGF domain when present, as in the 6-kDa/19-kDa heterocomplex, in the 25-kDa fragment and presumably intact factor IX.

Calcium↗

An unusual heparin-binding peptide from the carboxy-terminal hep-2 region of fibronectin.

A synthetic 22 residue peptide, N22W, with sequence NVSPPRRARVTDATETTITISW, derived from the amino terminus of type III module 13 in the carboxy-terminal hep-2 domain of fibronectin, was found to exhibit unusual heparin binding properties. Titration of fluoresceinamine-labeled heparin (FA-heparin) with N22W at 25 degrees C and pH 7.4 in 0.02 M Tris buffer containing 0.15 M NaCl (TBS) produced a cooperative sigmoidal increase in fluorescence polarization anisotropy with half-saturation near 2.5 microM. The increase in anisotropy was even greater than that produced by the much larger 30-kDa hep-2 fragment of fibronectin and saturation was achieved at lower concentration. Simply deleting the C-terminal Trp from the peptide abolished its heparin-binding activity as did deletion of residues TETTITIS or mutation of the RR doublet to SS. Further analysis suggested that peptide-peptide interactions mediated by the carboxy-terminal region of N22W play an important role in its binding to heparin. A branched tetrameric peptide containing four copies of N21S caused a nearly hyperbolic increase in anisotropy of FA-heparin with an apparent Kd of 0.3 microM in TBS, 10-fold lower than that of the monomer or of the parent domain from which the peptide was derived. The results illustrate that peptide-peptide interactions can lead to stronger binding by allowing multiple points of contact with the negatively charged polysaccharide.

Amino Acid Sequence↗

Binding of heparin by type III domains and peptides from the carboxy terminal hep-2 region of fibronectin.

The major sites of heparin binding by fibronectin are located in fragments of 30 or 40 kDa that contain type III modules 12 through 14 or 15. Various proteolytic or recombinant subfragments and several synthetic peptides derived from this region have been compared with respect to their binding to fluorescein-labeled heparin in solution. Binding was monitored by the change in fluorescence anisotropy at 25 degrees C and pH 7.4 in 0.02 M Tris buffer, alone (TB) or with 0.15M NaCl (TBS). A 23-kDa fragment containing III13 and III14 but lacking III12 had Kd values of 0.3 and 1.8 microM in TB, and TBS, respectively, indistinguishable from the 30-kDa parent. Fragments containing only module III13 bound 2-3-fold weaker than the parent while those containing only III14 bound 6-50-fold weaker depending on the ionic strength. Fragments containing only III12 or III15 failed to bind at all in TBS. A cationic peptide derived from the amino terminus of III13 and containing the Arg-Arg-Ala-Arg consensus sequence, whose integrity was shown by Barkalow and Schwarzbauer [Barkalow, F. J., & Schwarzbauer, J. E. (1991) J. Biol. Chem. 266, 7812-7818] to be critical, failed to bind in TBS but bound weakly in TB. Two additional cationic peptides derived from the middle and C-terminal regions of III14 showed similar behavior. Thus while the major determinant(s) of heparin binding are located in III13, those determinants are only active when part of a properly folded structure. Furthermore, module III13 when isolated had a slightly lower affinity than fragments containing both III13 and III14.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Effect of tethered peptidylchloromethylketone inhibitors on thermal stability and domain interactions of urokinase and other serine proteases.

The melting of several serine proteases that had been reacted with different peptidylchloromethylketone (cmk) inhibitors was studied by fluorescence spectroscopy and calorimetry. These inhibitors, which cross-link the two domains of the proteases, invariably increased the melting temperature by as much as 28.5 degrees C. The magnitude of the effect was dependent on the size and composition of the peptide moieties. The delta G of unfolding of tosyl-Phe-cmk-chymotrypsin was 13.5 kcal/mol compared to only 8.3 kcal/mol for chymotrypsin. Binding of cmk inhibitors also protected the two interacting domains of urokinase from acid-induced decooperation and caused them to merge into a highly cooperative structure upon refolding at low pH. Fluorescence-detected melting curves of Glu-Gly-Arg-cmk-urokinase indicated that unfolding/refolding at pH 4.5 is characterized by dramatic hysteresis; the cooling curves fell close to those obtained upon heating or cooling of the uninhibited enzyme. Upon second heating, the melting curves were similar to those of the original. The hysteresis effects are interpreted as follows. The tethered tripeptide binds to the active site, causing the protein to melt at much higher temperature in a single cooperative step, as if the two domains are merged into one cooperative unit. Upon cooling, the unfolded protein, with the inhibitor still attached, refolds at the same temperature as the underivatized protein. Only after the native structure is formed does the peptide moiety again bind and stabilize toward a second heating. At lower pH, second heating produced biphasic or triphasic melting curves that were attributed to differential protonation of acid-titratable groups on the enzyme and/or inhibitor at the time of refolding. Similar effects were observed with other trypsin-like proteases, indicating that the hysteresis and bi- and triphasic refolding at low pH are rather general for this class of enzyme.

Amino Acid Chloromethyl Ketones↗

Domain structure and domain-domain interactions in human coagulation factor IX.

Coagulation factor IX has the modular composition Gla-(EGF)2-SP, where Gla, EGF, and SP represent the gamma-carboxy-Glu-rich, epidermal growth factor-like, and serine protease modules, respectively. The protein melts in two distinct temperature regions. The SP module melts at lower temperature between 42 and 55 degrees C, depending on the pH, with irreversible loss of esterolytic activity. The endotherm corresponding to this transition is readily described by a two-state transition indicating the melting of a single cooperative unit. A thrombin-generated 12-kDa fragment representing the COOH-terminal half of the SP module and a 45-kDa fragment containing the NH2-terminal half of the SP module and the rest of the molecule can be separated by exclusion chromatography in 3 M urea and recombined in its absence. Both fragments retain a compact structure as evidenced by melting transitions near 60 degrees C at neutral pH. This indicates that the SP module contains two independently folded domains that strongly interact with each other and seem to merge into one cooperative unit in the intact protein. At low pH at high temperature a second peak appears which is also observed in a 19-kDa fragment containing the EGF modules. Thermodynamic analysis of this second peak showed that the two EGF modules are independently folded and provided evidence for a weak interaction between them. Fluorescence and CD measurements indicated that the secondary structure of the isolated 6-kDa Gla fragment is substantially increased in the presence of Ca2+. The Ca2+-loaded Gla fragment undergoes a sigmoidal unfolding transition as revealed by fluorescence and CD measurements. This same transition in a 25-kDa Gla-(EGF)2 fragment was stabilized by more than 10 degrees C, indicating a strong interaction between the Ca(2+)-loaded Gla and EGF domains. Thus, factor IX consists of five independently folded interacting domains.

Calorimetry, Differential Scanning↗

Affinity of human erythrocyte transglutaminase for a 42-kDa gelatin-binding fragment of human plasma fibronectin.

Complex formation between the human erythrocyte transglutaminase (protein-glutamine:amine gamma-glutamyltransferase, EC 2.3.2.13) and fibronectin or its fragments was examined by immunoanalytical procedures and by fluorescence polarization. A 42-kDa gelatin-binding structure, obtained from human plasma fibronectin by thermolytic digestion, showed as high an affinity for the cytosolic enzyme as the parent fibronectin chains themselves. A 21-kDa fragment comprising type I modules 8 and 9, the last two modules in the 42-kDa fragment, bound with an affinity 100-fold less than the 42-kDa fragment. Binding was remarkably specific and could be exploited for the affinity purification of transglutaminase directly from the hemoglobin-depleted erythrocyte lysate. In spite of the high affinity, it was possible to elute active enzyme from the 42-kDa fragment column with 0.25% monochloroacetic acid. This solvent might have general applicability in other systems involving separation of tightly bound ligands.

Antibodies, Monoclonal↗

Calcium-linked self-association of human complement C1s.

The weight-average molecular weight of C1s, an activated serine protease subcomponent of human complement C1, has been measured by means of sedimentation equilibrium over a wide range of both protein and calcium ion concentrations. The combined data may be accounted for quantitatively by a simple model for Ca(2+)-dependent self-association of C1s to a dimer. According to this model, the monomer contains a single Ca2+ binding site with K approximately equal to 3 x 10(5) M-1, and the dimer contains three independent Ca binding sites, two having a Ca2+ affinity lower than that of the monomer (K approximately equal to 3 x 10(4) M-1). The third binding site in the dimer, which presumably lies at the interface between the two amino-terminal alpha domains, has a higher Ca2+ affinity (K approximately equal to 1 x 10(8) M-1) and provides the driving force for C1s dimerization in the presence of calcium.

Binding Sites↗

Fibulin binds to itself and to the carboxyl-terminal heparin-binding region of fibronectin.

Fibulin is a recently described extracellular matrix (ECM) and plasma glycoprotein (Argraves, W. S., Tran, H., Burgess, W. H., and Dickerson, K. (1990) J. Cell Biol. 111, 3155-3164). In this report, ligand affinity chromatography and solid-phase binding analyses were performed to determine which ECM protein(s) interact with fibulin. Fibulin-Sepharose bound two polypeptides of 240 and 100 kDa from the culture medium of metabolically radiolabeled fibroblasts. These two proteins were identified as fibronectin (FN) and fibulin, respectively, based on their electrophoretic behavior and reactivity with monoclonal antibodies. Consistent with the findings of affinity chromatography, fibulin bound to surfaces coated with FN (either plasma or cellular form) or fibulin but not with other ECM proteins, such as laminin, merosin, and types I and IV collagen. The binding of fibulin to solid-phase FN was estimated to have a Kd of 139 nM, whereas the Kd for self-interaction was 322 nM. Evaluation of proteolytic fragments from all regions of FN allowed a fibulin-binding site to be localized within a 23-kDa heparin-binding fragment containing type III repeats 13-14. Heparin did not compete for the interaction between fibulin and FN, suggesting that the binding sites for fibulin and heparin are distinct.

Binding Sites↗

1H-n.m.r. studies of the fibronectin 13 kDa collagen-binding fragment. Evidence for autonomous conserved type I and type II domain folds.

A 1H-n.m.r. study of a 117-residue (13 kDa) gelatin-binding fragment of human fibronectin, which contains the sixth (from the N-terminus) type I domain and the first type II domain, was undertaken. The resolution of the 1H-n.m.r. spectrum indicates that the domains are independent and mobile relative to each other. Analysis of two-dimensional 1H-n.m.r. experiments recorded at 500 MHz afforded spin-system identifications for all aromatic and a number of aliphatic residues. Utilizing the fact that phenylalanine residues occur only in the type II portion of this fragment, many spin systems were localized to either the type I or the type II module via analysis of two-dimensional nuclear-Overhauser-effect (NOESY) experiments. This allowed unambiguous assignment of the two tryptophan residues, as they occur singly in each domain. Patterns of NOESY connectivities are found to be consistent with known type I and type II domain structures; this affords a number of tentative sequence-specific assignments. For both domains, evidence of conserved hydrophobic cores and secondary-structure elements is obtained. In addition, 1H-n.m.r.-monitored thermal-melting studies demonstrate conclusively that the domains are independently folded and that the type I domain has high thermal stability relative to the type II domain. This is consistent with the results of calorimetric studies, and also confirms the localization of spin systems determined from the NOESY data.

Amino Acid Sequence↗

Reversible unfolding of an isolated heparin and DNA binding fragment, the first type III module from fibronectin.

Several fragments containing all or part of the first type III homology unit of fibronectin were isolated and their folding properties examined by fluorescence spectroscopy and differential scanning calorimetry. Each fragment exhibits a reversible unfolding transition when heated or titrated with guanidinium chloride. This indicates that an isolated type III module can fold independently in the absence of neighboring modules. A comparison of the specific enthalpies of unfolding of these fragments with those of well-studied globular proteins suggests that this type III unit is composed of a stable core flanked by less compact or unstructured regions. Comparison of the heparin-binding properties of these fragments revealed that removal of 12 amino acids from the amino terminus of the largest one (Ile-585 to Val-675) increased its affinity for immobilized heparin such that it now binds at physiological ionic strength.

Binding Sites↗

Integrity of refolded and reoxidized gelatin-binding fragments of fibronectin.

The gelatin-binding region of fibronectin is easily isolated as a stable and functional 42-kDa fragment (42-kDa GBF) containing four type I "finger" modules and two type II "kringle-like" modules arranged in the order I6-II1-II2-I7-I8-I9, where the numbers designate the order of these modules in each of the two polypeptide chains. Each module forms an independently folded domain stabilized by two disulfide bonds. Reduction of disulfides caused large changes in the intrinsic fluorescence and abolished the gelatin-binding activity of 42-kDa GBF and two nonoverlapping gelatin-binding subfragments, 30-kDa GBF (I6-II1-II2-I7) and 21-kDa GBF (I8-I9). However, high yields of active material could be regenerated, without diluting the protein, by dialysis into GdmCl followed by slow overnight removal of GdmCl while maintaining the redox potential with a mixture of oxidized and reduced glutathione. Fluorescence spectroscopic analysis indicated that the tertiary structure and thermodynamic stability of the refolded fragments were similar to those of the originals. The refolded fragments were quantitatively indistinguishable from the originals with respect to their dissociation constants for binding to a fluorescent-labeled collagen fragment. The results suggest that all or most of the cystines, a total of 24 in 42-kDa GBF, are correctly paired in the refolded products and that the tertiary structure was completely recovered. The fact that the 30- and 21-kDa fragments bind with a similar affinity proves the existence of at least two nonoverlapping sites in 42-kDa GBF that recognize gelatin.

Carrier Proteins↗

Dynamic equilibria between subcomponents of C1, the first component of human complement.

C1r and C1s, the serine protease components of activated C1, form a tetramer in the presence of Ca2+. The stability of this tetramer is sufficient that its association with the third component, C1q, has been successfully treated as a reversible bimolecular equilibrium reaction [Siegel and Schumaker, Molec. Immun. 20, 53-66 (1983)]. We have used the fluorescence anisotropy (A) of fluorescein-labeled C1s (s*) to monitor assembly and subcomponent exchange in 0.15 mol/l NaCl, 0.001 mol/l Ca2+ 0.02 mol/l Tris, pH 7.4. Addition of q to r2s*2 causes a small but measurable delta A of 0.01-0.02. The response is too fast to measure at 37 degrees but can be readily followed at 4 degrees where t 1/2 = 0.6 min when [q] = [r2s*2] = 0.5 mumol/l. The increase in A can be readily reversed by dilution or by addition of unlabeled C1s. Slow incremental addition of q to a solution of r2s*2 produces a dose-dependent delta A from which stoichiometry and dissociation constants can be derived. Measurements of Kd as a function of temperature establish an inverse temperature dependence with delta H = -15 kcal/mol and a value of Kd = 0.031 mumol/l at 37 degrees (delta G = + 11, T delta S = -26 kcal/mol). Thus, the assembly process appears to be entropy-driven presumably due to the exclusion of structured water from protein-protein interfaces in the complex.

Complement C1r↗

A calcium-binding monoclonal antibody that recognizes a non-calcium-binding epitope in the short consensus repeat units (SCRs) of complement C1r.

C1r is a Ca(2+)-binding serine protease that interacts with two other plasma proteins, C1q and C1s, to form C1, the first component of the complement cascade. A monoclonal antibody, BG6, has been produced which binds to C1r only in the presence of Ca2+, requiring 3-5 microM Ca2+ for half-maximal binding. The antibody reacts with native and heat-denatured C1r, and with zymogen C1r, but does not cross-react with C1s or C1q. BG6 did not significantly affect the esterolytic activity of C1r toward a synthetic thioester substrate nor the hemolytic activity of C1 reconstituted from subcomponents in the presence of the antibody. A tryptic fragment of C1r which consists of the C-terminal gamma region of the A chain disulfide-linked to the B chain (gamma B) binds in a Ca(2+)-dependent manner to BG6-Sepharose. Western blotting experiments have further localized the epitope to the gamma region of the A chain, which is composed of two short consensus repeat (SCR) units. The N-terminal alpha region contains the only previously determined Ca(2+)-binding site in the C1r molecule. Equilibrium dialysis experiments confirmed that C1r-gamma B does not bind Ca2+, and showed that antibody BG6 and the gamma B/BG6 complex do bind Ca2+. Thus, the Ca(2+)-dependent nature of this interaction is due exclusively to binding of the metal ion to the antibody. Equilibrium dialysis and immunoblotting have further localized the Ca(2+)-binding site to the Fab fragment of BG6, indicating that the metal-induced conformational change residues in or near the variable region of the IgG. BG6 may set a precedent for the preparation of Ca(2+)-dependent antibodies to non-Ca(2+)-binding epitopes in other proteins.

Antibodies, Monoclonal↗

Domain structure and domain-domain interactions of recombinant tissue plasminogen activator.

The melting of recombinant tissue plasminogen activator (rtPA) has been investigated by differential scanning calorimetry and fluorescence spectroscopy. At neutral pH, rtPA melts with only partial reversibility in a single sharp peak that can be deconvoluted into four transitions. By contrast, at acidic pH the melting process is spread over a broad range of temperature and is highly reversible. Under these conditions five transitions are resolved by deconvolution analysis. Additional measurements in 6 M guanidinium chloride reveal a sixth transition representing an extremely stable domain. Comparison of the melting curves of several fragments with those of the parent protein allowed all of the transitions to be assigned. The results indicate that rtPA is comprised of six independently folded domains. Two of these domains correspond to the two kringle modules whose thermodynamic properties are similar to those of the kringles in plasminogen. Two additional domains are formed by the epidermal growth factor (EGF)-like and finger modules, the latter of which is extremely stable, requiring the presence of a chemical denaturant for its melting to be observed. The serine protease module contains two more domains which at neutral pH melt cooperatively in a single transition but at low pH melt independently, accounting for the greater number of transitions observed there. Measurements with a 50-kDa fragment lacking the C-terminal half of the serine protease module and with a variant lacking the finger and EGF domains indicate that the serine protease domains interact strongly with and are stabilized by the finger and/or EGF domains in the intact protein. This interaction between domains located at opposite ends of the rtPA molecule produces a more compact structure. A better understanding of such interactions may enhance efforts to engineer plasminogen activators with improved thrombolytic properties.

Binding Sites↗

Domain structure and interactions of the type I and type II modules in the gelatin-binding region of fibronectin. All six modules are independently folded.

The gelatin-binding region of fibronectin is isolated easily as a stable and functional 42 kDa fragment containing four type I "finger" modules and two type II "kringle-like" modules arranged in the order I6-II1-II2-I7-I8-I9. This fragment exhibits a single reversible melting transition near 64 degrees C in TBS buffer (0.02 M-Tris buffer containing 0.15 M-NaCl, pH 7.4). The transition is characterized by a calorimetric to van't Hoff enthalpy ratio of 1.6, suggesting a complex domain structure. A 30 kDa fragment with the same NH2 terminus (I6-II1-II2-I7) melts reversibly near 65 degrees C with delta Hcal/delta HvH = 1.3, also consistent with the presence of more than one domain. To elucidate further the domain structure, three non-overlapping subfragments were prepared and characterized with respect to their unfolding induced by heat and guanidinium chloride. The three subfragments, each containing two modules, are designated from amino or carboxyl-terminal location as 13 kDa (I6-II1) 16 kDa (II2-I7) and 21 kDa (I8-I9) according to their apparent Mr in SDS/polyacrylamide gel electrophoresis. All three subfragments exhibited reversible transitions in TBS buffer, behaving in the calorimeter as single co-operative units with delta Hcal/delta HvH close to unity. However, the specific enthalpies and changes in heat capacity associated with the melting of all fragments and subfragments in TBS buffer were low compared to those of most compact globular proteins, suggesting that not all modules are represented. When titrated with guanidinium chloride at 25 degrees C, all fragments exhibited monophasic reversible unfolding transitions detected by changes in fluorescence. Heating in the presence of 6 M-guanidinium chloride revealed three additional transitions not seen in the absence of denaturants. These transitions have been assigned to three of the four type I finger modules (I6, I7 and I9), one of which (I6) was isolated and shown to retain a compact structure as stable as that observed for this module within the parent fragments. Two other modules (II2 and I7) are destabilized when separated from their neighbors. Thus, despite their small size (50 to 60 amino acid residues), all six of the modules in the gelatin-binding region of fibronectin form independently folded domains, three of which (I6, I7 and I9) are unusually stable. Evidence is provided that four of the six modules interact with each other in the parent fragment. This interaction may explain previously noted disruptions in the otherwise uniform strand-like images seen in electron micrographs of fibronectin.

Amino Acid Sequence↗

Interaction of heparin with fibronectin and isolated fibronectin domains.

Fluorescence polarization, gel exclusion chromatography and affinity chromatography were used to characterize the interaction of heparins of different size with human plasma fibronectin (Fn) and several of its isolated domains. The fluid-phase interaction of Fn with heparin was dominated by the 30 kDa and 40 kDa Hep-2 domains located near the C-terminal ends of the A and B chains respectively. The 30 kDa Hep-2A domain from the heavy chain was indistinguishable from the 40 kDa Hep-2B domain in this respect; the presence of an additional type III homology unit in the latter had no effect on the binding. Evidence was provided that each Hep-2 domain has two binding sites for heparin. The N-terminal Hep-1 domain reacted weakly in fluid phase even though it binds strongly to immobilized heparin. Fn and Hep-2 fragments were rather undiscriminating in their reaction with fluoresceinamine-labelled heparins of different sizes. However, oligosaccharides smaller than the tetradecasaccharide (14-mer) bound Fn with a 5-10-fold lower affinity. These results suggest that the Hep-2 domains of Fn are able to recognize a broad spectrum of oligosaccharides that presumably vary significantly with respect to the amount and spatial distribution of charge.

Binding Sites↗

NH2-terminal calcium-binding domain of human complement C1s- mediates the interaction of C1r- with C1q.

The assembly of C1, the first component of human complement, involves interactions between various domains of each of its three subcomponents, C1q, C1r, and C1s. The isolation, assignment of function, and structural characterization of the individual domains of C1r and C1s are critical for a thorough understanding of this complex assembly. The present study describes a 27-kDa plasmin-generated fragment derived from the NH2-terminal half of the heavy A chain of C1s-, the activated form of C1s. This fragment, C1s-alpha, was shown in the presence of Ca2+ to mimic the ability of whole C1s- to self-associate, bind to C1r-, and facilitate the binding of C1r to C1q. These results directly prove that the Ca2(+)-binding sites of C1s as well as all of the determinants necessary for binding of C1s- to C1r- and C1q are located in the NH2-terminal 27-kDa alpha region of the A chain.

Amino Acid Sequence↗