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Biomedical subjects

D Rotman

Publications and source records attributed to D Rotman.

5 recordsLinked to original sources

A tumor necrosis factor-binding protein purified to homogeneity from human urine protects cells from tumor necrosis factor toxicity.

Unfractionated preparations of the proteins of human urine provided protection against the in vitro cytocidal effect of tumor necrosis factor (TNF). In certain cells, the proteins decreased expression of the receptors for TNF in a temperature-dependent way. In all cells examined, the proteins were found to interfere also with the binding of both TNF and interleukin-1 when applied directly into the binding assays. That effect could be observed in the cold, suggesting that it was independent of cellular metabolism. A protein which protects cells against the cytotoxicity of TNF was purified from human urine by chromatography on CM-Sepharose followed by high performance liquid chromatography on Mono Q and Mono S columns and reversed phase high performance liquid chromatography. This protein is a very minor constituent of normal urine, with an apparent molecular weight of about 27,000 in sodium dodecyl sulfate-polyacrylamide gel electrophoresis under both reducing and nonreducing conditions. Homogeneity of the purified protein was confirmed by microsequence analysis which revealed a single N-terminal sequence: Asp-Ser-Val-Cys-Pro-. The protein protected cells from TNF toxicity at concentrations of a few nanograms per ml and interfered with the binding of both TNF-alpha and TNF-beta to cells, when applied simultaneously with the cytokines. However, unlike crude preparations of the urinary proteins, the purified protein did not induce in cells a decrease in ability to bind TNF nor did it interfere with the binding of interleukin-1 to its receptor. Direct, specific binding to the protein of TNF-alpha and, to a lesser extent, also TNF-beta, but not of interleukin-1 nor interferon-gamma could be demonstrated. It is suggested that this protein blocks the function of TNF by competing for TNF with the TNF receptor and not by interacting with the target cell.

Binding, Competitive↗

Atheroma as a neoplastic disease.

An hypothesis is proposed that atheroma may be classified as a leiomyosarcoma derived from the tunica media of an artery. The notion that atheroma is a neoplastic disease provides a simple explanation for a highly complex phenomenon; the pathogenesis of artherosclerosis. According to this hypothesis some smooth-muscle cells in the media undergo malignant transformation, which is manifested by excessive production of hyaluronidase and other glycosaminoglycan hydrolases. This enzymic system frees cells from their bonds and allows them to proliferate. The enzymes also evoke a fibroblast hyperplasia which is followed by a protective collagenization producing a local area of increased resistance to the hydrolases. This accounts for the sclerosing aspect of the disease. Several other features of atherosclerosis are a result of the neoplastic nature of the disease.

Acetylglucosaminidase↗

Sialoresponsin and an antiviral action of ascorbic acid.

Several pathogens, both viral and bacterial, employ the enzyme neuraminidase (N-acetylneuraminate glycohydrolase, EC 3.2.1.1.8). The neuraminidase renders ineffective the hemagglutinin inhibitory mucins that confine the pathogens in a coating of host mucins. Sialoresponsin is a receptor "decoy" that inhibits neuraminidase. Several known antiviral agents, including ascorbic acid, inhibit neuraminidase. It is proposed that ascorbic acid may mediate an antiviral effect through the incorporation of ascorbic acid or some derivative of ascorbic acid as a part of the sialoresponsin molecule. Whether ascorbic acid works alone as a pharmacological inhibitor, or is incorporated in sialoresponsin as a physiological inhibitor; it may be useful against pathogens that employ neuraminidase.

Ascorbic Acid↗