The extracellular domain of the type I Interleukin-1 receptor (sIL-1R) was expressed in Drosophila S2 cells as a secreted 43 kDa glycoprotein, as evidenced by its binding to Concanavalin A and enzymatic deglycosylation. sIL-1R bound IL-1 beta with a K(D) of 2 nM as determined by competition ELISA. N-Glycanase treated sIL-1R had a C. 100 fold lower affinity than glycosylated sIL-1R for IL-1 beta, suggesting that glycosylation is a key component of the IL-1 beta/IL-1 receptor interaction. Crosslinking of sIL-1R to (125)I-IL-1 beta could be competed with unlabelled IL-1 alpha, IL-1 beta, IL-1 receptor antagonist (IL-1ra), and a mutant of IL-1 (Th9Gly) which has reduced bioactivity but wild type receptor binding affinity. Limited proteolysis of sIL-1R in the presence of IL-1 alpha, IL-1 beta, IL-1ra, and Thr9Gly IL-1 beta with several different proteases followed by analysis of sIL-1R by Western blot was used to assess the effect of binding on sIL-1R conformation. While some proteases showed no differences in cleavage patterns or sensitivity between free and bound sIL-1R, others showed differences in either cleavage sites or sensitivity with different ligands. This implies that upon ligand binding there is a conformational change in the receptor which is sensitive to the particular ligand bound, and hence has implications for the ability of different ligands to trigger responses after binding to receptor.
Antibodies to synthetic peptides of human interleukin 1 beta (IL-1 beta) and to recombinant human IL-1 beta were used to identify epitopes of IL-1 beta associated with the neutralization of its biological activity. Analysis of antisera raised to 17 synthetic peptides derived from the mature IL-1 beta sequence showed that five regions (residues 6-15, 49-80, 58-80, 92-101, and 120-133) were both immunoprecipitating and neutralizing. Using a hexamer epitope mapping method, comparison of the regions recognized by four neutralizing rabbit antisera with those recognized by a rabbit antiserum raised to denatured IL-1 beta suggested two further neutralizing epitopes, residues 39-48 and 83-95. Finally, a neutralizing monoclonal antibody was shown to bind to the peptides 6-11 and 87-95 by peptide binding and mutagenesis. All of these regions appear predominantly on one face of IL-1 beta. The effect of mutations in residues 4-11 and 88-97, which lie within this face, on receptor binding and biological activity was determined. Most of the mutations tested affected both receptor binding and activity, whereas mutations in another face of IL-1 beta (residues 74-80) had no effect. Purification of two of the mutants with reduced bioactivity and receptor binding and analysis by two-dimensional NMR indicated no gross changes in tertiary structure. A third mutant had reduced bioactivity in two different bioassays but no change in receptor binding. Although two-dimensional NMR revealed no gross changes in conformation, small changes did occur at a site distal from that mutated. The data are consistent with other epitope mapping and receptor binding mutagenesis data and suggest that the neutralizing antibodies and receptor recognize different but overlapping regions of IL-1 beta.
Mouse L cells that possess the cation-independent mannose 6-phosphate (Man 6-P)/insulin-like growth factor (IGF) II receptor change the extent to which they dephosphorylate endocytosed acid hydrolases in response to serum (Einstein, R., and C. A. Gabel. 1989. J. Cell Biol. 109:1037-1046). To investigate the mechanism by which dephosphorylation competence is regulated, the dephosphorylation of individual acid hydrolases was studied in Man 6-P/IGF II receptor-positive and -deficient cell lines. 125I-labeled Man 6-P-containing acid hydrolases were proteolytically processed but remained phosphorylated when endocytosed by receptor-positive L cells maintained in the absence of serum; after the addition of serum, however, the cell-associated hydrolases were dephosphorylated. Individual hydrolases were dephosphorylated at distinct rates and to different extents. In contrast, the same hydrolases were dephosphorylated equally and completely after entry into Man 6-P/IGF II receptor-positive Chinese hamster ovary (CHO) cells. The dephosphorylation competence of Man 6-P/IGF II receptor-deficient mouse J774 cells was more limited. beta-Glucuronidase produced by these cells underwent a limited dephosphorylation in transit to lysosomes such that diphosphorylated oligosaccharides were converted to monophosphorylated species. The overall quantity of phosphorylated oligosaccharides associated with the enzyme, however, did not decrease within the lysosomal compartment. Likewise, beta-glucuronidase was not dephosphorylated when introduced into J774 cells via Fc receptor-mediated endocytosis. The CHO and J774 cell lysosomes, therefore, display opposite extremes with respect to their capacity to dephosphorylate acid hydrolases; within CHO cell lysosomes acid hydrolases are rapidly and efficiently dephosphorylated, but within J774 cell lysosomes the same acid hydrolases remain phosphorylated. This difference in processing indicates that lysosomes themselves exist in a dephosphorylation-competent and -incompetent state. Man 6-P-bearing acid hydrolases endocytosed by the L+ cells in the absence of serum were not distributed uniformly throughout the lysosomal compartment. The change in the dephosphorylation competence of L cells in response to serum suggests, therefore, that these cells contain multiple populations of lysosomes that differ with respect to their content of a mannose 6-phosphatase, and that serum factors affect the distribution of hydrolases between the different compartments.
A key step in the sorting of endocytosed ligands from their receptors is dissociation, which is triggered by the acidic pH of endosomes. To determine whether dissociation occurs synchronously for all ligands, we compared in Chinese hamster ovary cells the intracellular dissociation of insulin, which dissociates between pH 6.3 and 7.0, with that of lysosomal hydrolases bearing the mannose 6-phosphate recognition marker (Man-6-P proteins), which dissociate around pH 5.8. Chinese hamster ovary cells were pulsed for 2 min with 125I-insulin, acid-washed to remove surface binding, and chased. During a 40-min period, about 50% of the internalized 125I-insulin was released intact via a retrocytotic pathway. Retrocytosis was not inhibited by monensin, suggesting that the release was not dependent on acidic endosomes. The remaining insulin dissociated from its receptor in an acidification-sensitive manner and was eventually degraded. Dissociation was 70% complete within 5 min of internalization. When cells were similarly incubated with 125I-Man-6-P proteins, about 35% of the internalized radioactivity was released during a 1-h chase, reflecting proteolytic maturation of the Man-6-P proteins. Dissociation of Man-6-P proteins was acidification-dependent (i.e. inhibited by monensin), and was 50% complete after about 11 min. The results indicate that acidification-dependent dissociation of ligands does not occur in a single step and suggest that multiple endocytic compartments are involved in receptor/ligand sorting.
Mouse L-cells that contain the cation-independent (CI) mannose 6-phosphate (Man 6-P)/insulin-like growth factor (IGF) II receptor endocytose acid hydrolases and deliver these enzymes to lysosomes. The postendocytic loss of the Man 6-P recognition marker from the cell-associated acid hydrolases was assessed by CI-Man 6-P receptor affinity chromatography. 125I-labeled acid hydrolases internalized by L-cells grown at high density were delivered to lysosomes but were not dephosphorylated. In contrast, the same 125I-labeled hydrolases internalized by L-cells maintained at low density were delivered to lysosomes and were extensively dephosphorylated. The dephosphorylation at low density required 5 h for completion suggesting that the phosphatase responsible for the dephosphorylation is located within the lysosomal compartment. Transition from the high to low density state was rapid and was not inhibited by cycloheximide. Medium substitution experiments indicated that serum factors were necessary to maintain the L-cells in the dephosphorylation-competent (low density) state, and that serum-free conditions led to a dephosphorylation-incompetent (high density) state. Addition of IGF II to cells in serum-free medium allowed acid hydrolases subsequently introduced by endocytosis to be dephosphorylated. The results indicate that the removal of the Man 6-P recognition marker from endocytosed acid hydrolases is regulated by serum factors in the growth medium, including IGF II.
cDNA clones corresponding to the polypeptide that has been shown to be an endogenous diazepam binding inhibitor and may act as a physiological ligand for the benzodiazepine/beta-carboline receptor have been isolated from bacteriophage lambda recombinant libraries from rat hypothalamus, total brain, and liver. The clones contain an open reading frame corresponding to 87 amino acids. A signal sequence is not present. In addition to high levels of mRNA in various brain regions, RNA blot analysis reveals an abundance of diazepam binding inhibitor mRNA in many peripheral organs (e.g., testes, kidney, liver, and heart) that are known to be rich in peripheral benzodiazepine recognition sites. The size of the mRNA in all tissue examined is approximately 0.7 kilobase. Southern blot analysis of genomic DNA suggests the presence of about six genes in the rat, some of which may be pseudogenes.