The accurate determination of levels of differentiation is of prognostic value in human head and neck squamous cell carcinomas (HNSCCs). Because the deliberate selection of biochemical determinants accompanying certain stages of differentiation can refine the predictive power of histochemical assessments, the application of the quantitative evaluation of staining distribution and intensity by computer-assisted microscopy is one prerequisite to potential improvements. We used 2 innovative approaches with peanut agglutinin based on encouraging results with respect to common lectin-histochemistry. First, we used a custom-made neoglycoprotein to monitor the presence of Thomsen-Friedenreich (T) antigen-binding sites. Second, we measured the presence of 2 galectins immunohistochemically and, at the same time, measured lectin-histochemically the presence of accessible ligands for the endogenous lectins. We also monitored the presence of calcyclin, a protein with relevance to cell cycle progression or exocytosis. With 61 cases of HNSCC as their basis, including 31 oral, 20 laryngeal, and 10 hypopharyngeal lesions, the data show that the main modifications observed in connection with a loss of differentiation are related to a modification in the levels of both galectin-3/galectin-3-binding site and T-antigen/T-antigen-binding site expressions. The data obtained also suggest that galectin-3 could act as an acceptor site for the T antigen. Because the level of differentiation is known to be indicative of the recurrence rate in HNSCCs and our data clearly indicate that galectin-3 and the T antigen (and their respective binding sites) are involved in dedifferentiation processes, further investigation is warranted into the roles of galectins in HNSCC tumor progression and recurrence analysis.
OBJECTIVE:To investigate potential disease- and prognosis-associated nuclear and cellular features from cell properties in a prospective study on malignant pleural effusions.STUDY DESIGN:Integrated nuclear fluorescence and the expression of binding capacities of carrier-immobilized estradiol, progesterone and testosterone; and of labeled sarcolectin; and the presence of calcyclin were measured in 50 cases with proven malignant pleural effusions (10 mesotheliomas, 40 metastasizing tumors). A double fluorescence technique using the fluorochrome DAPI and a Texas Red-based avidin-biotin detection system were applied. Detailed clinical data, including the follow-up for up to 40 months, were included.RESULTS:Pleural effusions in all patients with mesotheliomas occurred prior to (9/10) or at the time of histologic confirmation. Mesotheliomas had the highest tumor cell fraction (12.4%) in S phase and breast carcinomas the lowest (10.7%). More than 80% of malignant cells expressed binding capacities for the applied probes. A statistically significant correlation was noted between the S-phase-related tumor cell fraction and the expression of progesterone receptors. Survival was associated with tumor origin, treatment by pleurodesis, and certain cytometric and histochemical features.CONCLUSION:The immunofluorescence double-staining technique can be applied successfully in malignant effusions to combine DNA measurements with those of immunohistochemical and ligand histochemical reactivity.
Most G protein-coupled receptors contain a conserved pair of extracellular cysteine residues that are predicted to form a disulfide bond linking the first and second extracellular loops. Previous studies have shown that this disulfide bond may be critical for ligand binding, receptor activation, and/or proper receptor folding. However, the potential importance of the two conserved cysteine residues for proper receptor cell surface localization has not been investigated systematically. To address this issue, we used the rat M3 muscarinic receptor as a model system. Most studies were carried out with a modified version of this receptor subtype (lacking potential N-glycosylation sites and the central portion of the third intracellular loop) that could be readily detected via western blot analysis. Cys-->Ala mutant receptors were generated, transiently expressed in COS-7 cells, and then examined for their subcellular distribution and functional properties. ELISA and immunofluorescence studies showed that the presence of both conserved cysteine residues (corresponding to C140 and C220 in the rat M3 muscarinic receptor sequence) is required for efficient expression of the M3 muscarinic receptor on the cell surface. On the other hand, these residues were found not to be essential for protein stability (determined via immunoblotting) and receptor-mediated G protein activation (studied in second messenger assays). These results shed new light on the functional role of the two extracellular cysteine residues present in most G protein-coupled receptors.
Each member of the muscarinic receptor family (M1-M5) can interact only with a limited subset of the many structurally closely related heterotrimeric G proteins expressed within a cell. To understand how this selectivity is achieved at a molecular level, we have used the Gi/o-coupled M2 and the Gq/11-coupled M3 muscarinic receptors as model systems. We developed a genetic strategy involving the coexpression of wild type or mutant muscarinic receptors with hybrid or mutant G protein α subunits to identify specific, functionally relevant receptor/G protein contact sites. This approach led to the identification of N- and C-terminal amino acids on αq and αi that are critical for maintaining proper receptor/G protein coupling. Moreover, several receptor sites were identified that are likely to be contacted by these functionally critical Gα residues. To gain deeper insight into muscarinic receptor structure, we recently developed a cysteine disulfide crosslinking strategy, using the M3 muscarinic receptor as a model system. Among other structural modifications, this approach involves the removal of most native cysteine residues by site-directed mutagenesis, the insertion of three factor Xa cleavage sites into the third intracellular loop, and systematic ‘reintroduction’ of pairs of cysteine residues. Following treatment of receptor-containing membrane preparations with factor Xa and oxidizing agents, disulfide cross-linked products can be identified by immunoprecipitation and immunoblotting studies. This approach should greatly advance our knowledge of the molecular architecture of muscarinic and other G protein-coupled receptors.
Several studies suggest, but do not prove directly, that muscarinic receptors may be able to form dimeric or oligomeric arrays. To address this issue in a more direct fashion, we designed a series of biochemical experiments using a modified version of the rat m3 muscarinic receptor (referred to as m3') as a model system. When membrane lysates prepared from m3' receptor-expressing COS-7 cells were subjected to Western blot analysis under non-reducing conditions, several immunoreactive species were observed corresponding in size to putative receptor monomers, dimers, and oligomers. However, under reducing conditions, the monomeric receptor species represented the only detectable immunoreactive protein, consistent with the presence of disulfide-linked m3 receptor complexes. Similar results were obtained when native m3 muscarinic receptors present in rat brain membranes were analyzed. Control experiments carried out in the presence of high concentrations of the SH group alkylating agent, N-ethylmaleimide, suggested that disulfide bond formation did not occur artifactually during the preparation of cell lysates. The formation of m3' receptor dimers/multimers was confirmed in coimmunoprecipitation studies using differentially epitope-tagged m3' receptor constructs. In addition, these studies showed that m3' receptors were also able to form non-covalently associated receptor dimers and that m3' receptor dimer formation was receptor subtype-specific. Immunological studies also demonstrated that m3' receptor dimers/multimers were abundantly expressed on the cell surface. Site-directed mutagenesis studies indicated that two conserved extracellular Cys residues (Cys-140 and Cys-220) play key roles in the formation of disulfide-linked m3' receptor dimers. These results provide the first direct evidence for the existence of muscarinic receptor dimers and highlight the specificity and molecular diversity of G protein-coupled receptor dimerization/oligomerization.
The objective of this study was the evaluation of the relation between the N-acetyl-neuraminic acid-binding endogenous lectin sarcolectin and the cytokine macrophage migration inhibitory factor (MIF) during development of rheumatoid nodules (RN) in seropositive rheumatoid arthritis (RA). Sarcolectin was purified and biotinylated. The binding patterns of this probe were analyzed in RN from patients with RA (n = 23) and compared with the distribution of antibodies with specificity for MIF, fibrin, fibronectin. In early RN, all areas of the inflammatory tissue displayed presence of receptors for sarcolectin. Macrophages were especially positive. In mature rheumatoid nodules binding of sarcolectin was restricted to the periphery of necrotic areas, to endothelial cells and perivascular connective tissue of marginal zones. Distribution patterns of MIF were similar but not identical. The histological staining characteristics demonstrate sarcolectin-binding receptors in RN that are altered upon disease progression. The finding suggests that specific interactions between this endogenous lectin and MIF may be involved in the course of RA.
To gain insight into the molecular architecture of the cytoplasmic surface of G protein-coupled receptors, we have developed a disulfide cross-linking strategy using the m3 muscarinic receptor as a model system. To facilitate the interpretation of disulfide cross-linking data, we initially generated a mutant m3 muscarinic receptor (referred to as m3′(3C)-Xa) in which most native Cys residues had been deleted or substituted with Ala or Ser (remaining Cys residues Cys-140, Cys-220, and Cys-532) and in which the central portion of the third intracellular loop had been replaced with a factor Xa cleavage site. Radioligand binding and second messenger assays showed that the m3′(3C)-Xa mutant receptor was fully functional. In the next step, pairs of Cys residues were reintroduced into the m3′(3C)-Xa construct, thus generating 10 double Cys mutant receptors. All 10 mutant receptors contained a Cys residue at position 169 at the beginning of the second intracellular loop and a second Cys within the C-terminal portion of the third intracellular loop, at positions 484–493. Radioligand binding studies and phosphatidylinositol assays indicated that all double Cys mutant receptors were properly folded. Membrane lysates prepared from COS-7 cells transfected with the different mutant receptor constructs were incubated with factor Xa protease and the oxidizing agent Cu(II)-(1,10-phenanthroline)3, and the formation of intramolecular disulfide bonds between juxtaposed Cys residues was monitored by using a combined immunoprecipitation/immunoblotting strategy. To our surprise, efficient disulfide cross-linking was observed with 8 of the 10 double Cys mutant receptors studied (Cys-169/Cys-484 to Cys-491), suggesting that the intracellular m3 receptor surface is characterized by pronounced backbone fluctuations. Moreover, [35S]guanosine 5′-3-O-(thio)triphosphate binding assays indicated that the formation of intramolecular disulfide cross-links prevented or strongly inhibited receptor-mediated G protein activation, suggesting that the highly dynamic character of the cytoplasmic receptor surface is a prerequisite for efficient receptor-G protein interactions. This is the first study using a disulfide mapping strategy to examine the three-dimensional structure of a hormone-activated G protein-coupled receptor.
The N termini of two G protein alpha subunits, alpha(q) and alpha(11), differ from those of other alpha subunits in that they display a unique, highly conserved six-amino acid extension (MTLESI(M)). We recently showed that an alpha(q) deletion mutant lacking these six amino acids (in contrast to wild type alpha(q)) was able to couple to several different G(s)- and G(L/o)-coupled receptors, apparently due to promiscuous receptor/G protein coupling (Kostenis, E., Degtyarev, M. Y., Conklin, B. R., and Wess, J. (1997) J. Biol. Chem. 272, 19107-19110). To study which specific amino acids within the N-terminal segment of alpha(q/11) are critical for constraining the receptor coupling selectivity of these subunits, this region of alpha(q) was subjected to systematic deletion and alanine scanning mutagenesis. All mutant alpha(q) constructs (or wild type alpha(q) as a control) were coexpressed (in COS-7 cells) with the m2 muscarinic or the D2 dopamine receptors, two prototypical G(L/o)-coupled receptors, and Ligand-induced increases in inositol phosphate production were determined as a measure of G protein activation. Surprisingly, all 14 mutant G proteins studied (but not wild type alpha(q)) gained the ability to productively interact with the two G(L/o)-linked receptors, Similar results were obtained when we examined the ability of selected mutant alpha(q) subunits to couple to the G(s)-coupled beta 2-adrenergic receptor, Additional experiments indicated that the functional promiscuity displayed by all investigated mutant alpha(q) constructs was not due to overexpression (as compared with wild type alpha(q)), lack of palmitoylation, or initiation of translation at a downstream ATG codon (codon seven). These data are consistent with the notion that the six-amino acid extension characteristic for alpha(q/11) subunits forms a tightly folded protein subdomain that is critical for regulating the receptor coupling selectivity of these subunits.
OBJECTIVE To explore new tumor features for refined category formation that permits the tailoring of individualized treatment schemes in lung cancer. STUDY DESIGN Survival data on patients from six independent studies on cases with surgically treated lung cancer, primary lung carcinoids or metastasizing breast carcinoma (including data on primary breast carcinoma) were analyzed by nonhierarchic multivariant discriminant analysis with respect to a set of cytometric/histometric and immunohistochemical/ligand histochemical parameters. The number of stem lines, S-phase-related tumor cell fraction and the extent of structural entropy and its current were measured. In addition, the expression of binding capacities for histo-blood group trisacharides, galectins, the alpha/beta-interferon antagonist sarcolectin, the lymphokine macrophage migration inhibitory factor and a monoclonal antibody to the Le(y) epitope was monitored for insight into aspects of immunologic and biologic behavior. RESULTS In all studies, a correlation between tumor parameters, according to TNM stage and survival, was seen. In order to refine this category formation, at least certain selected features should provide an even more stringent association than TNM stages. Indeed, statistical correlation of the cytometric and histometric parameters as well as the expression of receptors for the two histo-blood group trisaccharides, ligands for the galectins (CL-16, CL-14) and macrophage migration inhibitory factor was stronger than that of TNM stage. A large amount of the current of structural entropy was especially highly significantly associated with poor survival. This observation could be verified in each of the different studies. CONCLUSION The obtained data strongly support the notion that thermodynamic evaluation of tumor growth focusing on the "entropy distance" of the tumor from its environment is a promising perspective warranting extended studies. Additionally, glycohistochemical features, including binding capacities for histo-blood group trisaccharides, have the potential to aid in establishment of a biologic marker set for tumor staging.
The structural basis underlying the G protein coupling selectivity of different muscarinic receptor subtypes was analyzed by using a combined molecular genetic/biochemical approach. These studies led to the identification of key residues on the receptors as well as the associated G proteins that are critically involved in determining proper receptor/G protein recognition. Mutational analysis of the m3 muscarinic receptor showed that most native cysteine residues are not required for productive receptor/G protein coupling. The putative extracellular disulfide bond was found to be essential for efficient trafficking of the receptor protein to the cell surface but not for receptor-mediated G protein activation.
The rat asialoglycoprotein receptor (ASGPR) is believed to be a hetero-oligomer composed of three subunits, designated rat hepatic lectin 1, 2, and 3 (RHL1, 2, and 3). The carbohydrate recognition domains (CRDs) of RHL1 and RHL2/3 are 56% identical. We developed a polyclonal antibody that specifically recognizes the CRD of RHL1 but not RHL2/3. When purified ASGPRs were bound to ligand-Sepharose, the CRD of RHL1, but not RHL2 or RHL3, was resistant to digestion with subtilisin. Antibody against purified RHL1 CRD recognized only RHL1 in Western blot analysis of crude cell extracts or purified receptors without detectable cross-reaction to RHL2/3. Although it does not recognize the CRD of RHL2 or RHL3, this antibody specifically inhibited 80–90% of the cell surface or total cellular125I-ASOR binding to isolated rat hepatocytes and >90% of ligand binding to purified rat ASGPRs. The antibody also immunoprecipitates active ASGPRs containing all three RHL subunits. The results indicate that homo-oligomeric RHL2/3 complexes, able to bind ASOR, do not form on hepatocytes by subunit rearrangement.
Development of preneoplastic lesions in human lung is supposed to be accompanied with alterations of distinct biochemical features which might functionally be crucial for this alteration. To contribute to the definition of such determinants in peripheral lung parenchyma, the files of the Department of Pathology, Thoraxklinik, (a total of 2890 cases) were screened for respective tissue specimens. Seventy one cases with complete clinical documentation were found and an age-, sex-, and disease-matched control group was formed. When compared to control group patients, especially the tumor free cases with preneoplastic aberrations revealed a history of exposure to external noxes. Several probes with assumed relevance were tested with the panel of specimens for both groups, focussing on comparative analysis of alveolar lining cells. In addition to labelled neoglycoconjugates which include tissue lectin-seeking probes that expose mono-, di- and blood group-related trisaccharides, presence of calcium- and annexin-binding calcyclin, of complement component C5b, of the lymphokine macrophage migration inhibitory factor, and of ligands of the serum amyloid P component was evaluated. Compared to normal cells at the alveolar surface in controls, the preneoplastic cells displayed an apparent down-regulation of expression of A/H-trisaccharide-specific binding sites and an upregulation of expression of calcyclin. These three characteristics correlated with the phenotypic alterations and encourage further studies to elucidate the functional significance of reduced expression of the glycoligand-specific sites and the presence of this member of the S100-family of Ca(2+)-binding proteins.
We report here for the first time that ASGP-Rs expressed in the human hepatoma cell lines HuH-7 and HepG2 are fatty acylated. Cells were metabolically labeled with [3H]palmitate and active ASGP-Rs, which contain two subunits (HHL1 and HHL2), were purified by affinity chromatography and subjected to nonreducing SDS-PAGE and fluorography. [3H]Palmitate was covalently incorporated into both HHL1 and HHL2. When gel slices containing HHL1/HHL2 were treated at neutral pH with 1 M hydroxylamine, but not 1 M Tris, >95% of the radioactivity was removed, indicating that the attachment of palmitate to ASGP-Rs is to cysteines. Furthermore, the same mild hydroxylamine treatment caused partial ASGP-R inactivation; 50–70% of receptors corresponding to the previously characterized State 2 ASGP-Rs were inactivated. We conclude that both HHL1 and HHL2 are covalently modified by fatty acylation, which may regulate the ligand-binding activity of human State 2 ASGP-Rs. We propose that fatty acylation/deacylation of cytoplasmic domains is a general mechanism by which extracellular ligand-binding activity of oligomeric transmembrane receptors can be regulated.
Rat hepatic asialoglycoprotein receptors (ASGP-Rs) bind terminal clustered galactosyl or N-acetylgalactosaminyl residues with high affinity. The affinity-purified ASGP-R consists of three subunits designated RHL1, RHL2, and RHL3. The ligand-binding activity of individual subunits was investigated by ligand blotting, after separation of subunits by SDS-PAGE under nonreducing conditions, electrotransfer to nitrocellulose, and incubation with 125I-asialo-orosomucoid (ASOR). No ligand-binding to any subunits could be detected when proteins such as BSA, casein, gelatin, or fat-free dry milk were used as blocking agents. However, subsequent incubation of BSA-blocked nitrocellulose blots with some nonionic detergents resulted in renaturation of RHL1. 125I-ASOR-binding to RHL2 or RHL3 was weaker and could be detected only after longer exposure. Similarly, direct use of detergents such as Tween 20, Nonidet P-40, or Triton X-100 as blocking agents also preserved the ASOR-binding activity of RHL1. Ionic detergents tested did not show any ability to renature the ligand-binding activity of RHL subunits. Among nonionic detergents tested, Tween 20, Tween 85, Lubrol PX, Nonidet P-40, and Triton X-100 were more effective than Tween 40, Tween 65, Tween 80, or Brij 35, whereas SPAN, digito-nin, or octyl-glucoside showed no effect. Weak 125I-ASOR binding to RHL2 or RHL3 could be detected only when the Tween series or Lubrol PX were used. Incubation of blots with dithiothreitol caused a dose-dependent loss of binding activity. The carbohydrate recognition domain (CRD) of RHL1, isolated after subtilisin digestion of ASGP-R bound to ASOR-Sepharose, retained ligand-binding activity as assessed by its binding to ASOR-Sepharose and by ligand blotting. 125I-ASOR binding to electroblotted CRD after SDS-PAGE was also dependent on the presence of nonionic detergents. We conclude that restoration of ligand-binding activity of RHL1 after SDS-PAGE by some nonionic detergents is not dependent on the presence of the cytoplasmic, transmembrane, or stalk domains of this subunit.
Calcyclin is the product of a gene that is regulated in dependence of the cell cycle in fibroblasts in vitro. It has recently been proven to be a sialic acid-binding protein in vitro and in the case of mammalian tissues to bind specifically to annexin II, annexin VI, annexin XI, and glyceraldehyde-3-phosphate dehydrogenase in a Ca(2+)-dependent manner. Since calcyclin can be labelled without impairment of its binding activity, it can be employed as a histochemical tool to localize its accessible ligands. Concomitantly, immunohistochemical localization of calcyclin with a specific antibody is warranted. By using histochemical and immunohistochemical techniques, the expression of calcyclin and its accessible binding sites are demonstrated in serial sections of normal skin and benign, pre-cancerous and malignant tumors of the skin, namely in verruca vulgaris, papillary hidradenoma, syringoma, keratoacanthoma, Bowen's disease, squamous cell carcinoma, melanocytic naevi, primary and metastatic malignant melanoma and non-Hodgkin lymphoma (NHL) of the skin. Cytoplasmic and nuclear expression of calcyclin and its ligands is unexceptionally found in normal skin, epithelial tumors and benign melanocytic tumors. Presence of calcyclin and calcyclin-binding sites is detected in more than 80% of tumor cells in the epithelial lesions. In the group of melanomas and lymphomas heterogeneity is obvious. The application of annexin-specific antibodies raises evidence that members of this protein family co-localize with calcyclin in situ to some extent. These findings suggest that calcyclin and accessible calcyclin-binding molecules, like certain annexins, may be differentially regulated in melanomas and lymphomas in contrast to epithelial lesions with presently undefined biological implications.
We previously showed that two subpopulations of asialoglycoprotein receptors (ASGP-Rs), designated State 1 and State 2 ASGP-Rs, are present in intact cells and that State 2 ASGP-Rs can be inactivated in permeable rat hepatocytes in a temperature- and ATP-dependent manner. These inactivated ASGP-Rs can be quantitatively reactivated by the addition of palmitoyl-CoA (Weigel, P. H., and Oka, J. A. (1993) J. Biol. Chem. 268, 27186-27190). Here we show that similar to 50% of purified rat ASGP-Rs are inactivated by treatment with hydroxylamine under mild conditions. The activity of affinity purified ASGP-Rs was assessed by measuring the specific binding of I-125-asialo-orosomucoid (ASOR) in a dot-blot assay after immobilization onto nitrocellulose. Treatment of ASGP-Rs in solution with 0.0125-1.0 M NH2OH, pH 7.4, at 4 degrees C for 4 h resulted in a progressive loss of ASOR binding activity, ASGP-R inactivation with NH2OH occurred more readily at basic pH or at room temperature, Similar treatment with Tris had no effect on ASGP-R activity. The kinetics of ASGP-R activity loss and the dose-response for this inactivation were both biphasic, indicating the presence of two equal populations of ASGP-Rs with different sensitivities to NH2OH. The more sensitive population of ASGP-Rs (similar to 50%) was inactivated by treatment with 0.2 M NH2OH (4 degrees C, 4 h) or with 1.0 M NH2OH (4 degrees C, 1 h) without detectable peptide cleavage as assessed by SDS-polyacrylamide gel electrophoresis, State 1 ASGP-Rs, purified from chloroquine- or monensin-treated hepatocytes, showed significantly less sensitivity to NH2OH treatment (both in kinetics and dose dependence). Furthermore, under mild conditions NH2OH caused dissociation and inactivation of similar to 50% of the total ASGP-Rs (State 1 and State 2) that were prebound to ASOR-Sepharose, whereas the same treatment caused dissociation of only <20% of State 1 ASGP-Rs from such preformed complexes, As shown in the accompanying paper (Zeng, F. Y., Kaphalia, B. S., Ansari, G. A. S., and Weigel, P. H. (1995) J. Biol. Chem. 270, 21382-21387) all three RHL subunits of active ASGP-Rs, in fact, contain covalently attached palmitate and stearate. In cultured cells, [H-3]palmitic acid is metabolically incorporated into all three subunits. These radio-labeled fatty acids are completely released from purified ASGP-Rs by mild NH2OH treatment. We conclude that the NH2OH-sensitive subpopulation of ASGP-Rs corresponds to the previously described State 2 ASGP-Rs and that these receptors require fatty acylation for their ligand binding activity.
Functional rat or human asialoglycoprotein receptors (ASGP-Rs) are hetero-oligomeric integral membrane glycoproteins. Rat ASGP-R contains three subunits, designated rat hepatic lectins (RHL) 1, 2, and 3; human ASGP-R contains two subunits, HHL1 and HHL2. Both receptors are covalently modified by fatty acylation (Zeng, F.-Y., Kaphalia, B. S., Ansari, G. A. S., and Weigel, P. H. (1995) J. Biol. Chem.270, 21382-21387; Zeng, F.-Y., Oka, J. A., and Weigel, P. H. (1996) Biochem. Biophys. Res. Commun.218, 325-330). We report here that the single Cys residue in the cytoplasmic domain of each RHL or HHL subunit is fatty acylated. The degree of acylation is ≥90% per subunit. Deacylation of affinity-purified ASGP-Rs with hydroxylamine results in the spontaneous formation of dimers through reversible disulfide bonds, indicating that deacylation concomitantly generates free thiol groups. Reaction of hydroxylamine-treated ASGP-R with [14C]iodoacetamide resulted in the specific incorporation of radioactivity into all RHL and HHL subunits, verifying that fatty acids are attached via thioester linkages. To identify the Cys residue involved in the thioester linkages, 14C-carboxyamidomethylated RHL subunits were separated by SDS-polyacrylamide gel electrophoresis and digested in-gel with trypsin, and the resulting peptides were separated by reverse-phase high performance liquid chromatography. Amino acid sequence of radioactive peptides revealed that Cys35 in RHL1 and Cys54 in RHL2 and RHL3 were radiolabeled and, therefore, are fatty acylation sites. Fatty acylation of HHL subunits was analyzed by site-directed mutagenesis. Metabolic labeling of Cos7 cells transfected with wild type HHL1 cDNA resulted in substantial incorporation of [3H]palmitate into purified HHL1. Incorporation of [3H]palmitate into a C36S mutant of HHL1 was negligible (∼1%) compared with wild type. This result also shows that Cys57 within the transmembrane domain of HHL1 is not normally palmitoylated. We conclude that Cys35 in RHL1, Cys54 in RHL2 and RHL3, and Cys36 in HHL1 are fatty acylated. Cys57 in HHL1 and probably Cys56 in RHL1 are not palmitoylated.
Human sarcolectin is known as growth promoter and interferon-alpha/beta antagonist. Besides N-acetylneuraminic acid-dependent cell agglutination it also binds to a macrophage migration inhibitory factor (MIF). Several types of negatively charged carbohydrates interfere with this binding, indicating importance of a negatively charged cluster. Since human serum albumin that has very similar properties in gel electrophoretic analysis can also bind to this factor with a comparatively reduced extent, sarcolectin and albumin are compared biochemically and immunologically. Their peptide maps, generated by cleavage with cyanogen bromide and N-chlorosuccinimide, reveal no differences. The N-terminal sequences are identical up to the fourteenth position that have unequivocally been determined. Reactivities to anti-human serum albumin antibody that inhibits binding of sarcolectin to MIF are similar. Fractionation of human albumin by chromatography on hydroxyapatite yields a subfraction with increased specific activity, measured by extent of inhibition of sarcolectin-MIF interaction. It exhibits the same inhibitory capacity as a similarly derived subfraction from sarcolectin. Interestingly, rabbit and pig serum albumins are as active as human albumin to inhibit binding of sarcolectin to MIF, whereas hamster, mouse, horse and bovine albumin preparations were ineffective up to 2.5 mg/ml. Thus, sarcolectin appears to be a subfraction of human serum albumin whose functionally relevant molecular peculiarities are presently unknown. Neither treatment with organic solvents nor with lipases, but exposure to trypsin, chymotrypsin and pronase can impair sarcolectin's ability to bind MIF.