The Clara cell secretory protein (CCSP) gene is a cell-specific differentiation marker for the bronchiolar Clara cell. Previous studies suggest that CCAAT/enhancer binding protein (C/EBP)alpha is involved in controlling differentiation-dependent gene expression in the distal lung. In this study, immunofluorescence studies demonstrated high level expression of C/EBPdelta in the bronchiolar epithelium as well as lower levels of C/EBPalpha. Cotransfection studies in the lung epithelial cell line A549 showed that both C/EBPalpha and C/EBPdelta activate the murine CCSP gene and that a C/EBP-response element resides in the proximal CCSP promoter. C/EBPdelta exhibits an approximately 2-fold higher transactivation potential than does C/EBPalpha. DNase I footprint analyses revealed a footprint region located at -100 to -62 bp, corresponding to two C/EBP-binding sites. Mutation of either site resulted in abolished or strikingly reduced transactivation of the CCSP promoter by C/EBPalpha and C/EBPdelta, as well as impaired binding of both factors, indicating that the two C/EBP-binding sites form a compound response element. In electrophoretic mobility shift assays, it was shown that C/EBPalpha and C/EBPdelta can bind to both C/EBP sites, whereas in DNase I footprint analyses, the interaction of C/EBPalpha with the proximal site was weak. Furthermore, electrophoretic mobility shift assays demonstrated that C/EBPalpha and C/EBPdelta preferentially form heterodimers at both binding sites. Cotransfections with C/EBPalpha and C/EBPdelta together resulted in a superinduction of the CCSP promoter, indicating a regulatory role for the C/EBPalpha-C/EBPdelta heterodimers. Our findings demonstrate that C/EBPalpha and C/EBPdelta regulate the CCSP gene through a compound response element and suggest that these factors are important for the differentiation-dependent expression of CCSP.
Uteroglobins, i.e. proteins with similar three-dimensional structure and ligand binding specificity to uteroglobin from rabbit uterus, have been found in rat, mouse and human lung. We have recently demonstrated the binding of calcium by human uteroglobin, and we have therefore tried to find potential binding sites for metals in the three-dimensional structure of uteroglobin by the use of two different computational procedures. A putative binding site for calcium in uteroglobin was identified by means of a hydrophobic contrast function. The spatial disposition of atoms that could ligand calcium in the putative calcium-binding site appears similar to that of the primary calcium-binding site of secretory phospholipase A2enzymes, consisting of the carboxyl group of an aspartic acid residue and a loop providing three backbone carbonyl oxygens. From inspection of their primary sequences and three-dimensional structures, it became clear that this putative calcium-binding motif is conserved among uteroglobins from different species. The potential significance of the predicted site was investigated by site-directed point mutagenesis of human uteroglobin in which Asp46 was replaced by Asn or Lys. In both mutants, the ruthenium red and45Ca2+binding was significantly reduced. Sodium dodecyl sulphate/polyacrylamide gel electrophoresis under non-reducing conditions indi cated that the mutant proteins had the expected molecular masses and that their ability to dimerize was not disturbed by these mutations. Valence calculations also identified the putative calcium-binding site, but only after optimization of its conformation by the use of molecular dynamics with a restrained calcium ion. Our results support the notion that Asp46 of uteroglobins acts as a "cap" residue in a calcium-binding site structurally similar to the primary calcium binding sites of phospholipases A2.
High level expression of a human polychlorinated biphenyl-binding protein (hPCB-BP; also termed uteroglobin or CC10) was achieved in Escherichia coli. The recombinant protein (rhPCB-BP) constituted approximately 1% of total bacterial lysate proteins as judged from in vitro ligand binding assays using 4,4'-bis([3H]methylsulfonyl)-2,2',5,5'-tetrachlorobiphenyl. rhPCB-BP was purified to homogeneity in its native dimeric form. Saturation analysis experiments indicated a Kd of approximately 69 nM for the binding of 4,4'-bis([3H]methylsulfonyl)-2,2',5,5'-tetrachlorobiphenyl to rhPCB-BP. The average number of binding sites (Bmax) calculated from such experiments on purified rhPCB-BP was 49 nmol/mg of protein and is close to the theoretical value of 1 mol of ligand associating with 1 mol of dimeric protein. Purified rhPCB-BP was also found to cause a dose-dependent inhibition of the enzyme porcine pancreatic phospholipase A2 (PLA2) in vitro. Increasing the concentrations of calcium abolished the inhibition of PLA2 by rhPCB-BP, suggesting that the protein functions in vitro by sequestering Ca2+, an essential PLA2 cofactor. This notion was further supported by direct evidence that 45Ca2+ binds to rhPCB-BP. 1 mol of dimeric protein was also found to bind 2 mol of ruthenium red, an organic dye that detects Ca(2+)-binding proteins, with a Kd of 3 microM. This binding was inhibited by Ca2+, with an IC50 of 7 mM. Finally, it was demonstrated that the addition of a high affinity ligand for the protein had no effect on its ability to inhibit PLA2 under conditions of limiting concentrations of calcium, and the addition of Ca2+ did not affect the binding characteristics of the PCB ligand, suggesting that these two properties of the protein are independent. Our results strongly support the notion that ligand binding is a conserved feature of the homologous uteroglobin/PCB-BP/cc10 proteins in different species, whereas our results question the suggested role of these proteins as specific inhibitors of PLA2.
A human lung polychlorinated biphenyl (PCB)-binding protein was purified by sequential chromatography of lavage fluid incubated with the tritium-labeled, high-affinity ligand, 4,4'-bis(methylsulfonyl)-2,2',5,5'-tetrachlorobiphenyl. From sodium dodecyl sulfate polyacrylamide gel electrophoresis gradient gels, it was evident that a single band with an approximate molecular weight of 13 kD was present in the eluate from the final chromatographic step. Antibodies raised against the human lung PCB-binding protein detected a single band of corresponding size in lavage fluid in immunoblotting experiments. Furthermore, the antibodies detected significantly higher levels of the lung PCB-binding protein in lavage fluid from nonsmokers as compared to smokers. The purified protein was sequenced, and an alignment of the obtained aminoterminal amino acid residues of the human lung PCB-binding protein to uteroglobin and to a rat lung PCB-binding protein revealed an overall positional identity of approximately 45%. The amino acids suggested to participate in ligand binding of uteroglobin were extensively conserved in the PCB-binding proteins. Thus, we conclude that we have purified and raised antibodies against a human lung PCB-binding protein and that it has a structural as well as a functional kinship to the steroid-binding and multihormonally regulated rabbit protein uteroglobin.
Certain metabolites of polychlorinated biphenyls (PCBs) are retained in the Clara cells and in the airway lumen of rodent lung due to their interaction with a secretory 13-kDa protein. Here, we report the isolation of a cDNA encoding the rat lung PCB-binding protein. The identity of the PCB-binding protein is supported by expression of the cDNA in Cos-1 cells where the homogenates from transfected cells show specific binding of 4,4'-bis([ 3H]methylsulfonyl)-2,2',5,5'-tetrachlorobiphenyl, a high affinity ligand for the PCB-binding protein. Also a monospecific antiserum to the PCB-binding protein recognizes a 13-kDa protein in the homogenates of transfected cells but not in the corresponding fraction of mock-transfected cells. Northern blot analysis of total RNA from different rat tissues demonstrates that the cDNA detects a approximately 600-base pair mRNA which appears to be solely expressed in lung. Interestingly, DNA sequence analysis and prediction of the amino acid sequence reveals that the PCB-binding protein shares 53% positional amino acid identity with uteroglobin, a progesterone-binding protein found in rabbit uterus and lung. Furthermore, amino acids shown by x-ray crystallography to delineate the central cavity of uteroglobin, which fits progesterone, are highly conserved in the two proteins.