Search PubMed⌕ Search

Biomedical subjects

G Litwack

Publications and source records attributed to G Litwack.

At least 145 records · Page 8Linked to original sources

Activation of the rat liver glucocorticoid--receptor complex.

The rat liver glucorcorticoid receptor has been activated using three procedures: heat, gel filtration, and dilution. With time after heat activation the steroid--receptor complex loses its capacity to bind to DNA--cellulose, while receptor activated by Sephadex G-25 and by dilution maintains DNA--cellulose binding capacity. The rates of steroid dissociation from nonactivated and activated receptor and essentially identical. However, nonactivated receptor is capable of rebinding steroid, while activated receptor has a reduced capacity to rebind steroid. The results of the gel filtration and dilution studies suggest that a low-molecular-weight factor(s) exists in rat liver cytosol which is involved in the process of activation.

Adrenalectomy↗

Translation in vitro of rat liver messenger RNA coding for ligandin (glutathione S-transferase B).

Poly(A)-containing rat liver mRNA isolated from animals injected with phenobarbital and uninjected controls was translated efficiently in a wheat-germ system. The synthesis of ligandin (glutathione S-transferase B; glutathione transferase; RX-gluathione R-transferase, EC 2.5.1.18) was detected by immunoprecipitation with a highly purified monospecific ligandin antibody and analysis by sodium dodecyl sulfate/polyacrylamide gel electrophoresis. The extent of incorporation of [35S]methionine into ligandin in the translation system was similar for poly(A)-containing messages from un-infected animals and those treated with phenobarbital.

Animals↗

Ligandin, the glutathione S-transferases, and chemically induced hepatocarcinogenesis: a review.

The glutathione S-transferases are a major group of soluble liver proteins that are involved in the cellular detoxification of electrophilic compounds. Several of these transferases, in particular glutathione S-transferase B or ligandin, interact with chemical carcinogens in vivo. This review presents evidence that ligandin and the other glutathione S-transferases reduce the susceptibility of the liver to aminoazo dye-, polycyclic aromatic hydrocarbon-, and aromatic amine-induced carcinogenesis. Several possible mechanisms by which the transferases reduce hepatocarcinogenesis are proposed. These mechanisms include the direct binding and detoxification of carcinogens by the transferases and the inctivation of steroids and other agents that indirectly stimulate carcinogen activation.

Adrenalectomy↗

Liver cytosol corticosteroid binder IB, a new binding protein.

A new binding protein named corticosteroid Binder IB elutes just after ligandin in DEAE-Sephadex chromatograms. It has been partially purified to about 2500-fold over cytosol proteins. Calculation of the number of steroid binding sites, assuming one site per molecule of Binder IB fraction after DEAE-Sephadex chromatography, suggests a concentration of the binding protein of about 0.0004% of cytosol proteins. Its pI value is judged to be 7.5 to 8 from it elution position on DEAE-Sephadex chromatograms. IB has an apparent molecular weight of 30,500 +/- 10% by gel filtration and a Stokes radius of 20 A. Binder IB binds radioactive dexamethasone, cortisol, and corticosterone in vitro with estimated KD values of 1, 13, and 25 nM, respectively. Saturation curves are abnormal, showing two phases. The saturation curves within the physiological range of concentrations of steroid are abnormal and suggestive of cooperativity. The second phase, at concentrations of glucocortidoids above saturation and physiological levels, shows extensive binding. After fractionation from other steroid binding proteins, the specificity of binding from competition studies in vitro is dexamethasone greater than or equal to cortisol = corticosterone = estradiol-17beta greater than or equal to deoxycorticosterone = dihydrotestosterone greater than aldosterone = cortexolone greater than testosterone. Other steroids tested are less efficient ligands. The binding is probably noncovalent, but strong; and the complex becomes more dissociable as purification proceeds, suggesting a conformational change in the protein. Storage and rebinding with steroid are possible throughout the purification process, although extensive ligand dissociation and denaturation of the protein occur after the final purification step. Binding in vitro is temperature-sensitive and binding is sharply pH dependent with an optimum at 7.5. The ligand is the unmetabolized steroid as judged by extraction of steroid-IB complex with methylene chloride and subsequent thin layer chromatography. The physiological function of this protein is unknown at present and purification fo the major corticosteroid hormone receptor to homogeneity may be required before the function of Binder IB is fully understood.

Adrenal Cortex Hormones↗