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Biomedical subjects

A Oldberg

Publications and source records attributed to A Oldberg.

At least 37 records · Page 2Linked to original sources

Posttranslational modifications of fibromodulin.

Tyrosine sulfate residues were identified in fibromodulin produced by tracheal chondrocytes, by tendon and sclera fibroblasts in primary culture, as well as in Chinese hamster ovary cells transfected with a construct containing fibromodulin cDNA. The tyrosine sulfate residues were located in the N-terminal part of fibromodulin. Thus, Chinese hamster ovary cells expressing a deleted variant of fibromodulin lacking the N-terminal 52 amino acids following the predicted signal peptide did not contain any tyrosine sulfate residues. The substitution with keratan sulfate chains was not restricted to chondrocytes, but was also identified in fibromodulin synthesized by bovine tendon fibroblasts and sclera fibroblasts, as well as in fibromodulin isolated from tendon. Digestion of fibromodulin with N-glycosidase F reduced the apparent size of fibromodulin to that of the core protein, as predicted from sequence analysis (Oldberg, A., Antonsson, P., Lindblom, K., and Heinegård, D. (1989) EMBO J.8, 2601-2604). Thus fibromodulin from cartilage, tendon, and sclera contains N-glycosidically linked oligosaccharides, some of which are extended to keratan sulfate chains.

Animals↗

The synthesis of a family of structurally related proteoglycans in fibroblasts is differently regulated by TFG-beta.

Fibroblasts synthesize a variety of proteoglycans among which is a family of structurally related small proteoglycans, i.e. PG-S1 (biglycan) and PG-S2 (decorin). Fibromodulin, which is present in some tissues as a keratan sulfate proteoglycan, also belongs to this family. We have used primary fibroblasts from fetal skin and bovine sclera in culture to study the metabolism of proteoglycans. In particular the regulatory effect of transforming growth factor-beta (TGF-beta), interleukin-1 (IL-1) platelet-derived growth factor (PDGF) and dexamethasone was determined by studies of mRNA levels for these structurally related proteoglycans. Furthermore the synthesis and secretion of these macromolecules was studied using radioactive precursors. TGF-beta induced a 3-fold increase of mRNA for PG-S1, collagen I and III in both types of fibroblasts. mRNA for PG-S2 increased only slightly (1.7-fold) in human skin fibroblasts; while no effect was noticed in sclera fibroblasts. The expression of fibromodulin mRNA was not effected in any of the cells investigated. IL-1, PDGF and dexamethasone had no significant effects on the levels of proteoglycan and collagen mRNA, respectively. Synthesis and secretion of PG-S1, -S2 and fibromodulin wa studied by labeling with [3H]-leucine and [35S]-sulfate. Final separation of PG-S1 and -S2 was achieved by hydrophobic interaction chromatography. TGF-beta induced a 3- to 6-fold increase of [3H]- and [35S]-labeled PG-S1; while PG-S2 only increased 1.3- to 1.4-fold in both types of fibroblasts. No effect on synthesis and secretion of immunoprecipitated fibromodulin was noted.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Ultrastructural immunolocalization of osteopontin in metaphyseal and cortical bone.

The ultrastructural localization of osteopontin in bone was determined especially focussing on the relationship to bone forming cells, i.e. osteoblasts and osteocytes. Thus, rat metaphyseal and cortical bone was fixed in a mixture of low concentration glutar- and paraformaldehyde and embedded at low temperature in Lowicryl K11M. Polyclonal antibodies raised against rat osteopontin fusion protein were incubated on ultrathin sections and protein G coated with 5-nm colloidal gold was used for detection. The results demonstrate most intensive labeling in the mineralization front of newly formed bone; whereas lower concentration of label was found in the osteoid both in metaphyseal and cortical bone. The concentration of marker was substantially higher in newly formed bone near osteoblasts compared to bone constituting the osteocyte lacuna. Intracellularly the prevailing localization of label was to large Golgi vesicles in osteoblasts. Only focally local accumulation of marker was seen at the cell/osteoid surface. The observations suggest a function of osteopontin also in the mineral turnover of newly formed bone.

Animals↗

Osteopontin--a possible anchor of osteoclasts to bone.

A key event in bone resorption is the binding of osteoclasts to the mineral matrix of bone surfaces. A candidate for mediating this binding is osteopontin, a major cell- and hydroxyapatite-binding protein synthesized by osteoblasts. In support of this hypothesis is the fact that the synthesis of osteopontin is stimulated by calcitriol (1,25-dihydroxy-vitamin(D3), a substance that induces bone resorption. The present study demonstrates that osteopontin is highly enriched at regions of the bone surface where osteoclasts are anchored. Furthermore, the vitronectin receptor, which has known specificity for osteopontin, is shown preferentially localized at the corresponding area of the osteoclast plasma membrane. The results thus support the hypothesis that osteoclasts when resorbing bone are anchored by osteopontin bound both to the mineral of bone matrix and to a vitronectin receptor on the osteoclast plasma membrane.

Animals↗

The keratan sulfate-enriched region of bovine cartilage proteoglycan consists of a consecutively repeated hexapeptide motif.

We have determined the sequence of a cDNA clone encoding the keratan sulfate-rich domain of the large aggregating cartilage proteoglycan core protein. The C-terminal portion of the deduced amino acid sequence is homologous to the chondroitin sulfate-rich region (domain CS1) of the rat chondrosarcoma proteoglycan, and the N-terminal portion is homologous to the second globular domain (G2) of the rat proteoglycan (Doege, K., Sasaki, M., Horigan, E., Hassell, J. R., and Yamada, Y. (1987) J. Biol. Chem. 262, 17757-17767). We could identify, inserted between these regions, a region absent in the rat proteoglycan. This domain corresponds to the keratan sulfate-enriched region of the bovine proteoglycan. It consists of a highly conserved hexapeptide motif consecutively repeated 23 times. Transfer blot analysis of genomic DNA indicated a single gene. The coding region for the keratan sulfate-enriched region was present both in human and bovine DNA, whereas the coding region for this domain appears to be absent in the rat genome. Transfer blot analysis of RNA showed that the keratan sulfate-rich region is present in proteoglycans from fetal as well as adult sources. Furthermore, RNA protection assays of RNA isolated from adult and fetal bovine articular cartilage showed that no alternative splicing occurs within this keratan sulfate-enriched region. These experiments show that the fetal bovine cartilage proteoglycan contains the keratan sulfate attachment domain, although it lacks the keratan sulfate side chains.

Amino Acid Sequence↗

Specific binding of bone sialoprotein to Staphylococcus aureus isolated from patients with osteomyelitis.

Bone sialoprotein is selectively bound by Staphylococcus aureus cells isolated from patients suffering from infections of bone tissue [Rydén, C., Maxe, I., Franzén, A., Ljungh, A., Heinegård, D. & Rubin, K. (1987) Lancet II, 514]. In the present communication the binding of bone sialoprotein to staphylococcal cells is characterized in more detail. 125I-Labelled bone sialoprotein bound to suspended staphylococcal cells in a time-dependent, saturable and reversible manner. Binding was inhibited by unlabelled bone sialoprotein and by an amino-terminal CNBr fragment of bone sialoprotein that did not contain the eukaryotic cell-binding site. Binding was furthermore inhibited by lysates obtained from Escherichia coli lysogens carrying a lambda gt11 phage-encoding bone sialoprotein. In contrast, binding was not inhibited by a bacterial lysate from an osteopontin lambda gt11 lysogen, nor by N-linked oligosaccharide isolated from bone sialoprotein or by proteoglycan from rat chondrosarcoma containing clustered O-linked oligosaccharides of the same structure as those of bone sialoprotein. These results indicate that the major staphylococcal-binding site resides in the bone sialoprotein core protein and not in the carbohydrate side chains. No inhibition of bone sialoprotein binding could be detected for whole human serum or purified plasma proteins such as fibronectin, fibrinogen and IgG. Likewise, staphylococcal protein A or rat collagen type I did not inhibit the binding of bone sialoprotein. The latter results indicate that the binding site for bone sialoprotein on staphylococcal cells was not any of the hitherto described staphylococcal cell-surface proteins. Binding data indicated an average of 1000 bone-sialoprotein-binding sites/bacterial cell.

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A collagen-binding 59-kd protein (fibromodulin) is structurally related to the small interstitial proteoglycans PG-S1 and PG-S2 (decorin).

We have determined the primary structure of a 59 kd collagen binding protein which is present in many types of connective tissues, e.g. cartilage, tendon, skin, sclera and cornea. The amino acid sequence, deducted from a 2662 bp cDNA clone, predicts a 42 kd protein with a high content of leucine residues. Most of the protein consists of homologous 23 amino acid residues repeats with predominantly leucine residues in conserved positions. Similar leucine rich repeats have been identified in a number of proteins including the small interstitial proteoglycans decorin and PG-S1. The 59 kd protein and the two proteoglycans are homologous in their entire sequences suggesting that they have evolved from a common ancestral gene. The 59 kd protein and decorin are also functionally related in that both bind to collagen type I and II, and affect their fibrillogenesis. The substitution with glycosaminoglycan chains appears to be a feature shared by all three members of this family of leucine rich motif extracellular proteins, since the 59 kd protein isolated from cartilage is substituted with at least one keratan sulfate chain.

Amino Acid Sequence↗

Possible recruitment of osteoblastic precursor cells from hypertrophic chondrocytes during initial osteogenesis in cartilaginous limbs of young rats.

The appearance of the bone phenotype during rat embryogenesis was studied by in situ hybridization using a cDNA clone to osteopontin. Radiolabeled sense and antisense RNA probes were prepared from the osteopontin cDNA by in vitro transcription. The probes were used to hybridize paraffin sections of the cartilaginous diaphysis from embryonic rats at day 17 of gestation. The hybridization pattern was analyzed by autoradiography. Hybridization with the antisense probe gave patterns of silver grain labeling, indicating the presence of osteopontin mRNA among the hypertrophic chondrocytes. No silver grains could be detected in the corresponding region following hybridization of consecutive sections with the sense probe, showing the specificity of the technique being used. Whether these results indicate that the osteopontin gene is transiently expressed by hypertrophic chondrocytes or that osteopontin is an early marker for osteoblastic precursor cells will have to be explored further.

Animals↗

Regulation of bone sialoprotein mRNA by steroid hormones.

In this report we demonstrate an increase in the steady-state level of bone sialoprotein (BSP) mRNA in rat calvaria and a rat osteosarcoma cell line (ROS 17/2.8) after treatment with the synthetic glucocorticoid, dexamethasone. In contrast, 1.25-dihydroxyvitamin D3 reduced the amount of BSP mRNA in calvaria and inhibited the dexamethasone induction in ROS 17/2.8 cells. The increase in BSP mRNA is most likely due to an increase in the transcriptional rate. The stability of mRNA was unchanged after dexamethasone treatment with a half-life of approximately 5 h. Nuclear transcription experiments with nuclei isolated from ROS 17/2.8 cells showed an increased BSP mRNA synthesis in cells treated with dexamethasone.

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Structure and biology of cartilage and bone matrix noncollagenous macromolecules.

Over recent years a number of cartilage and bone matrix molecules have been identified and characterized. These include major constituents such as collagens and proteoglycans as well as a number of less-abundant matrix proteins. In several cases these proteins have been characterized by cloning and sequence analysis of the corresponding cDNA. Some properties of the macromolecules have been studied and an understanding of their functions in the structure, assembly, and breakdown of connective tissue matrix is emerging. It appears that some of these molecules have structural roles whereas others participate in the assembly of the tissue. In this paper we attempt to give a current picture of the organization and role of the noncollagenous matrix macromolecules in cartilage and bone.

Animals↗

Identification of a bone sialoprotein receptor in osteosarcoma cells.

Bone sialoprotein (BSP) is an extracellular matrix glycoprotein associated with the mineral bone matrix. The amino acid sequence of BSP contains an Arg-Gly-Asp (RGD) sequence which confers to the protein cell binding properties (Oldberg, A., Franzén, A., and Heinegård, D. (1988) J. Biol. Chem. 263, 19430-19432). When BSP was used as an affinity matrix to isolate a cell surface receptor from rat osteosarcoma cells, a protein composed of polypeptides similar in size to those of a previously characterized vitronectin receptor was obtained. This putative BSP receptor, like the vitronectin receptor, bound also to an affinity matrix made of an RGD-containing heptapeptide. Moreover, similar patterns of inhibition of cell attachment to BSP and vitronectin was obtained with variant RGD-containing peptides, with BSP and with vitronectin. Finally, an anti-vitronectin receptor antiserum immunoprecipitated a receptor identical in size to the receptor bound to a BSP affinity matrix. These results show that BSP is recognized by an RGD-directed receptor and that both vitronectin and BSP can bind to this receptor.

Animals↗

The primary structure of a cell-binding bone sialoprotein.

We have determined the amino acid sequence of rat bone sialoprotein (BSP). The sequence deduced from a 1974-base pair cDNA encodes a protein of 320 residues, including a 16-residues long signal peptide. The mature BSP has a molecular mass of 33,600 and contains predominantly glutamic acid and glycine residues, which constitute 32% of all residues. The glutamic acid residues are typically distributed in clusters of up to 10 consecutive residues. The tissue distribution of BSP mRNA suggests that the protein may be a unique product of cells in bone tissue. BSP contains an Arg-Gly-Asp sequence, which presumably is responsible for its cell binding properties (Oldberg, A., Franzén, A., Heinegård, D., Pierschbacher, M., and Ruoslahti, E. (1988) J. Biol. Chem. 263, 19433-19436).

Amino Acid Sequence↗

The partial amino acid sequence of bovine cartilage proteoglycan, deduced from a cDNA clone, contains numerous Ser-Gly sequences arranged in homologous repeats.

We have determined the sequence of a partial cDNA clone encoding the C-terminal region of bovine cartilage aggregating proteoglycan core protein. The deduced amino acid sequence contains a cysteine-rich region which is homologous with chicken hepatic lectin. This lectin-homologous region has previously been identified in rat and chicken cartilage proteoglycan. The bovine sequence presented here is highly homologous with the rat and chicken amino acid sequences in this apparently globular region. A region containing clusters of Ser-Gly sequences is located N-terminal to the lectin homology domain. These Ser-Gly-rich segments are arranged in tandemly repeated, approx. 100-residue-long, homology domains. Each homology domain consists of an approx. 75-residue-long Ser-Gly-rich region separated by an approx. 25-residue-long segment lacking Ser-Gly dipeptides. These dipeptides are arranged in 10-residue-long segments in the 100-residue-long homology domains. The shorter homologous segments are tandemly repeated some six times in each 100-residue-long homology domain. Serine residues in these repeats are potential attachment sites for chondroitin sulphate chains.

Amino Acid Sequence↗