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K MacKay

Publications and source records attributed to K MacKay.

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The 260-kDa transforming growth factor (TGF)-beta binding protein in rat glomeruli is a complex comprised of 170- and 85-kDa TGF-beta binding proteins.

In a previous study (MacKay, K., Robbins, A. R., Bruce, M. D., and Danielpour, D. (1990) J. Biol. Chem. 265, 9351-9356) we showed that rat glomeruli contain transforming growth factor (TGF)-beta 1 binding proteins with apparent molecular masses of 260, 170, and 85 kDa (Gl-260, Gl-170, Gl-85) as determined by electrophoresis under nonreducing conditions. We demonstrate here that Gl-260 is a complex of 170- and 85-kDa TGF-beta binding proteins. Under denaturing conditions the integrity of Gl-260 is maintained through the cross-linking of one monomer of the disulfide-linked TGF-beta 1 homodimer to Gl-85 and of the other monomer to the 100-kDa subunit of Gl-170. In addition, some Gl-260 complexes are maintained by direct cross-linking of Gl-85 to the 100-kDa subunit of Gl-170. One-dimensional peptide maps of Gl-85 and the 100-kDa subunit of Gl-170 indicate that they have distinctly different ligand binding domains. In contrast, peptide maps of Gl-85 and the type II receptor of normal rat kidney fibroblasts are similar. The biological responses of isolated glomeruli to TGF-beta appear to parallel those of cultured glomerular cells which are without detectable Gl-170 and Gl-260 binding proteins.

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NIH conference. Membranous nephropathy.

Membranous nephropathy is a worldwide problem that accounts for about 20% of the cases of the adult-onset nephrotic syndrome. This disease places many patients at risk for both end-stage renal failure and the complications of hyperlipidemia. Immune-mediated injury to the glomerular capillary wall in patients with membranous nephropathy is characterized by subepithelial immune complex formation and generation of the membrane attack complex of complement. Glomerular capillary hypertension, hyperlipidemia, and possibly cytokines could contribute to the glomerular sclerosis seen in the advanced stages of the disorder. In some cases, production of pathogenic antibody can be suppressed by treating the underlying condition. The mechanisms of action of immunosuppressive agents are being investigated and treatments are being tested in clinical trials to optimize the balance of efficacy and toxicity. Alternate-day treatment with corticosteroids is often recommended for nephrotic patients with idiopathic membranous nephropathy, but this approach has not been proved beneficial. Ongoing studies are evaluating whether cytotoxic drugs or cyclosporin A combined with prednisone is more effective than treatment with corticosteroids alone. Lipid-lowering drug therapy is warranted in cases of the persistent nephrotic syndrome to avert the cardiovascular sequelae of hyperlipidemia.

Animals

Novel 150- and 180-kDa glycoproteins that bind transforming growth factor (TGF)-beta 1 but not TGF-beta 2 are present in several cell lines.

We identified transforming growth factor-beta (TGF-beta)-binding proteins which are distinct from previously described TGF-beta receptors or TGF-beta-binding proteins. These TGF-beta-binding proteins migrate as 150- and 180-kDa 125I-TGF-beta 1 affinity-labeled complexes which are consistently co-expressed in A549, Mv1Lu, MG-63, and BS-C-1 cells. They differ from the types I, II, and III TGF-beta receptors in their electrophoretic mobilities, their lack of binding to TGF-beta 2, and their failure to undergo the marked down-regulation seen with types I, II, and III receptors following a 16-h incubation with TGF-beta 1. The 150- and 180-kDa TGF-beta-binding proteins also are distinct from the recently described disulfide-linked TGF-beta 1-binding proteins which are present in rat glomeruli. In contrast to the glomerular TGF-beta 1-binding proteins, the electrophoretic mobilities of the 150- and 180-kDa binding proteins are unchanged following reduction. In addition, the 150- and 180-kDa TGF-beta-binding proteins are present in the detergent-rich phase during Triton X-114 phase separation, whereas the glomerular TGF-beta-binding proteins partition exclusively into the detergent-poor phase.

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Identification of disulfide-linked transforming growth factor-beta 1-specific binding proteins in rat glomeruli.

We have identified two distinct classes of transforming growth factor-beta (TGF-beta)-binding proteins by affinity labeling rat glomeruli with 125I-TGF-beta 1 and 125I-TGF-beta 2. The first type consists of a group of proteins that bind TGF-beta 1 but do not bind TGF-beta 2. When 125I-TGF-beta 1 affinity-labeled glomeruli were separated under nonreducing conditions, four prominent bands with Mr values of 320,000, 260,000, 170,000, and 90,000 were observed. Following reduction, the 320,000 and 170,000 bands yielded only a 100,000 band, the 260,000 complex yielded bands of 200,000, 100,000, and 85,000, and the 90,000 band migrated with an Mr of 85,000. Binding of 125I-TGF-beta 1 to these proteins was unaffected by the addition of as much as a 1,000-fold excess of TGF-beta 2. The second type of glomerular TGF-beta-binding protein consists of Mr 160,000-200,000 and 280,000 proteins that bind both TGF-beta 1 and beta 2. Digestion of these affinity-labeled proteins with heparitinase and chondroitinase resulted in a decrease of approximately 40,000 in their apparent molecular weights. Glomerular TGF-beta 1-binding proteins are distinct from previously described TGF-beta-binding proteins in their specificity for TGF-beta 1 and their formation of disulfide-linked multimers. The TGF-beta 1/beta 2-binding proteins share some properties of the previously described type III TGF-beta receptor.

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Expression of transforming growth factor-beta 1 and beta 2 in rat glomeruli.

The transforming growth factors-beta are potent modulators of cell growth and extracellular matrix metabolism in most types of cultured cells. The distribution and functions of TGF-beta in vivo are less well known. We utilized several different techniques including northern blots, a CCl-64 cell growth inhibition assay, and sandwich enzyme-linked immunosorbent assays (SELISA) to examine the expression of TGF-beta 1 and TGF-beta 2 in rat glomeruli. High levels of TGF-beta 1 mRNA and protein were found in glomeruli (56 +/- 22 ng TGF-beta 1/g tissue). These levels were several-fold higher than those present in whole kidney (10 +/- 5 ng/g). TGF-beta 2 mRNA was present in glomeruli but was not detected in whole kidney. TGF-beta 2 concentrations by SELISA were 19 +/- 8 ng TGF-beta 2/g in glomeruli and less than 5 ng/g in whole kidney. Since TGF-beta has such marked effects on cell growth, we also examined whether alterations in TGF-beta expression were associated with the renal hypertrophy which follows unilateral nephrectomy. Expression of TGF-beta 1 mRNA decreased in glomeruli following nephrectomy. However, this was not associated with a significant fall in glomerular TGF-beta 1 protein concentration. Whole kidney levels of TGF-beta 1 and its mRNA were unchanged following nephrectomy. Similar results were obtained for TGF-beta 2. Our data document the presence of high concentrations of TGF-beta 1 and beta 2 and their corresponding mRNAs in normal rat glomeruli. These results suggest that TGF-beta may play important regulatory roles in the normal glomerulus.

Animals

Relationship of glomerular hypertrophy and sclerosis: studies in SV40 transgenic mice.

We previously described the development of glomerulosclerosis in mice transgenic for large T-antigen, a gene whose in vitro expression markedly increases proliferation of cultured cells. In the current study we sought to determine the effect of unilateral nephrectomy on these sclerosis-prone animals which have a genetically defined potential for increased renal growth. In comparison with sham nephrectomy animals, nephrectomized transgenic female mice had significantly larger kidneys, larger glomeruli (5886 mu2 npx vs. 3796 mu2 sham), more cells per glomerulus and more severe glomerulosclerosis. Nephrectomized transgenic male animals had variable increases in kidney size, no significant increase in glomerular size (4750 mu2 npx vs. 4502 mu2 sham) or cellularity, and no worsening of glomerulosclerosis. In non-transgenic female animals nephrectomy induced an increase in kidney size but not in glomerular size (2640 mu2 npx vs. 2625 mu2 sham) and failed to induce glomerular lesions. A close correlation (r = 0.91) was found between glomerular size and severity of glomerulosclerosis in these animals. This finding supports the hypothesis that a pathophysiologic link exists between glomerular enlargement and glomerulosclerosis. We also found that increases in total kidney size and glomerular size did not consistently parallel each other, that is, renal hypertrophy may occur without an increase in glomerular size. This finding suggests that total kidney growth and glomerular growth may be independently regulated or may have different thresholds for activation following unilateral nephrectomy.

Animals

Transforming growth factor-beta. Murine glomerular receptors and responses of isolated glomerular cells.

Proliferation of resident glomerular cells and the accumulation of mesangial matrix are histologic abnormalities which are observed in the course of many progressive glomerular diseases. We explored the potential regulatory effects of transforming growth factor-beta (TGF-beta) on these processes. We found that cultured mouse glomerular endothelial, mesangial, and epithelial cells as well as isolated intact rat glomeruli possess high-affinity receptors for TGF-beta. We also found that, although TGF-beta consistently inhibited the proliferation of glomerular endothelial and epithelial cells, it acted as a bifunctional regulator of mesangial cell proliferation. TGF-beta significantly increased the production of collagen and fibronectin by glomerular mesangial cells whereas only fibronectin production was augmented in glomerular epithelial cells. The presence of TGF-beta receptors on intact glomeruli and on each glomerular cell type and the demonstrated responsiveness of these cells to TGF-beta combine to suggest that potentially important interactions may occur between resident glomerular cells and TGF-beta in vivo.

Animals

Basement membrane heparan sulfate proteoglycan is the main proteoglycan synthesized by glomerular epithelial cells in culture.

The production and distribution of basement membrane-type heparan sulfate proteoglycans (BM HSPG) were investigated in a mouse glomerular epithelial cell line. Confluent cell monolayers were radiolabeled with [35S]sulfate or [35S]cysteine. Proteoglycans were isolated from the medium and cell layers by ion exchange chromatography and their nature determined by enzyme digestion (chondroitinase ABC) or degradative treatment (nitrous acid). It was found that more than 80% of the proteoglycans in both the cell layer and medium were heparan sulfate proteoglycans (HSPG) based on their susceptibility to nitrous acid degradation. More than half of the HSPG in the cell layer could be precipitated with an antiserum that specifically recognizes BM HSPG; only 10% of those released into the medium were precipitated with this antiserum. When immunoprecipitates of [35S] sulfate-labeled proteoglycans were analyzed by SDS-PAGE, the mature proteoglycans ran as a broad band at the top of the gel. When immunoprecipitates of [35S]cysteine-labeled proteoglycans were similarly analyzed, a 250 kd precursor core protein band was seen in addition to the mature proteoglycan. When BM HSPG were localized by immunofluorescence and immunoelectron microscopy (immunoperoxidase), they were found intracellularly in biosynthetic compartments (ER and Golgi cisternae) and extracellularly in deposits of basement membrane-like matrix located beneath and between the cells. These results indicate that l) BM HSPG are the predominant type of proteoglycans made by glomerular epithelial cells in culture; 2) these HSPG are assembled into a loosely organized matrix that is deposited beneath and between the cells; and 3) this cell type produces a higher proportion of BM HSPG than other cultured epithelial cells studied previously.

Animals

Glomerular epithelial, mesangial, and endothelial cell lines from transgenic mice.

The culture of glomerular cells has represented an important tool in the understanding of individual glomerular cell functions. However, the complexity of the glomerulus has made it difficult to obtain pure cell populations. It has also been difficult to culture glomerular endothelial cells, even as mixed cell populations. At present there are no established glomerular cell lines from any source. We have established permanent cell lines of cloned glomerular epithelial, mesangial, and endothelial cells from a line of mice transgenic for the early region of simian virus 40 (SV40). These mice appear normal at birth but by three to four months of age have sclerosis affecting a variable percentage of their glomeruli. The cells maintain features characteristic of their normal counterparts despite their transformed phenotype. These cell lines could be useful tools in understanding the pathogenesis of glomerulosclerosis in this transgenic mouse model and in studying those features of normal glomerular cell biology which are not altered by a transformed phenotype.

Animals

Studies on binding and mitogenic effect of insulin and insulin-like growth factor I in glomerular mesangial cells.

The mesangial cells, as part of their smooth muscle cell function, are actively involved in regulating glomerular hemodynamics. Their overlying endothelium is fenestrated; therefore, these cells are directly exposed to plasma substances, including hormones such as insulin and insulin-like growth factor I (IGF-I). These peptides may contribute to the mesangial sclerosis and cellular hyperplasia that characterize diabetic glomerulopathy. We report herein the characterization of the receptors and the mitogenic effects of IGF-I and insulin on mouse glomerular mesangial cells in culture. The IGF-I receptor was characterized on intact cells. The Kd of the IGF-I receptor was 1.47 X 10(-9) M, and the estimated number of sites was 64,000 receptors/cell. The binding was time, temperature, and pH dependent, and the receptor showed down-regulation after exposure to serum. The expression of the receptor did not change on cells at different densities. The specific binding for insulin was too low to allow characterization of the insulin receptor on intact cells. However, it was possible to identify the insulin receptor in a wheat germ agglutinin-purified preparation of solubilized mesangial cells. This receptor showed the characteristic features of the insulin receptor, including pH dependence of binding and a curvilinear Scatchard plot. The mitogenic effects of insulin and IGF-I on mesangial cells were measured by the incorporation of [3H]thymidine into DNA. IGF-I was more potent than insulin. The half-maximal response to IGF-I stimulation occurred at 1.3 X 10(-10) M, and a similar increase with insulin was observed at concentrations in the range of 10(-7) M, suggesting that this insulin action was mediated through the IGF-I receptor. These data show that the mouse microvascular smooth muscle cells of the glomerulus express a cell surface receptor for IGF-I in vitro and that this peptide is a potent mitogen for these mesangial cells. It may, therefore, play a role in glomerular proliferative lesions. The insulin receptor is present in small numbers and does not mediate mitogenesis in mesangial cells.

Animals

Glomerulosclerosis and renal cysts in mice transgenic for the early region of SV40.

Considerable evidence indicates that genetic determinants play a major role in the pathogenesis of a variety of human and experimentally-induced renal diseases. There are, however, no firm data to indicate which genes or types of genes can induce or promote renal disease. The recently acquired ability to make specific alterations in the genetic background of an animal affords a unique opportunity to assess the effect(s) of a given gene on the structure and function of an organ of interest. Such modifications have been carried out in the creation of transgenic mice. We examined mice transgenic for the transforming gene encoding large T-antigen which is present in the early region of simian virus 40 (SV40). Renal lesions were present in most animals. While there was some heterogeneity in the type and severity of the renal lesions observed, a majority of the older mice displayed glomerulosclerosis and/or proliferative tubular lesions which in some were associated with multiple, large tubular cysts. The appearance of these lesions in mice transgenic for a transforming gene suggests that renal expression of a gene which controls cell proliferation may be associated with the development of glomerulosclerosis and renal cysts. These findings indicate a possible role for other transforming genes, or oncogenes, in the pathogenesis of glomerulosclerosis and cystic renal disease in humans and other animal models.

Animals

Replication of T4 DNA in Escherichia coli treated with toluene.

Deoxyribonucleoside triphosphates are incorporated into T4 DNA in infected cells treated with toluene. Under the proper conditions the incorporation is controlled by the known T4 DNA polymerase and proceeds by a semiconservative mechanism. Both strands of the phage DNA are replicated into a high molecular weight progeny molecule. The replication system is accessible to extracellular pancreatic DNase added to the reaction mixture. At early times after infection a second replication system, not under control of the gene 43 polymerase, has been detected which synthesizes T4 DNA in toluenized cells.

Adenosine Triphosphate