Search PubMed⌕ Search

Biomedical subjects

J C Wallwork

Publications and source records attributed to J C Wallwork.

26 records · Page 2Linked to original sources

Properties of soluble rat brain histone lysine methyltransferase.

Histone-lysine methyltransferase has been solubilized from rat brain chromatin by repeated extraction with distilled water. The enzyme was further purified by chromatography on DEAE-cellulose and gel filtration. With chromosomal-bound histones as substrates, the enzyme methylated only the lysyl residues in histones H3 and H4. The ratio of N epsilon-mono-: N epsilon-di-: N epsilon-trimethyllysine in histone H3 was 1.8:1.0:0.45 and the ratio of N epsilon-mono-: N epsilon-dimethyllysine in histone H4 was 0.7:1.0. The enzyme loses specificity with soluble histones as substrates; however, histones H3 and H4 were still the best methyl acceptors. The pH optima for the enzyme with soluble histones H3 and H4 as substrates were 8.2 to 8.7 and 7.2 to 8.0, respectively. S-Adenosyl-L-homocysteine, one of the products of the reaction, was a competitive inhibitor with respect to S-adenosyl-L-methionine.

Animals↗

In vitro studies on the methylation of histones in rat brain nuclei.

When isolated nuclei from 12-day-old rat brains were incubated with S-adenosyl-L-[methyl-3H]methionine, significant amounts of 3H-methyl were incorporated into lysyl residues in histones H3 and H4. About 0.024% of the total methylation sites on histone H3 and 0.013% of the sites on histone H4 were unmethylated at the time the nuclei were isolated. Methylation of these sites proceeded stepwise, progressing to a stable ratio of 0.93:1.0:0.17 for N epsilon-mono-, N epsilon-di-, and N epsilon-trimethyllysine in histone H3 and 0.19:1.0 for N epsilon-mono- and N epsilon-dimethyllysine in histone H4. The Km values of the enzyme for S-adenosyl-L-methionine were 11.5 +/- 1.1 micron and 12.5 +/- 1.3 micron with histones H3 and H4 as methyl acceptors, respectively. The Vmax values were 11.1 and 5.3 pmol of 3H-methyl incorporated/min/mg of histone H3 and H4, respectively. Since histone H3 contains 2 mol of N epsilon-methyllysine/mol and histone H4 contains 1 mol/mol, no difference in the overall rates of methylation can be deduced from the data. S-Adenosyl-L-homocysteine, one of the products of the reaction, was a competitive inhibitor with respect to S-adenosyl-L-methionine. The Ki values for S-adenosyl-L-homocysteine were 5.5 +/- 0.4 micron and 5.9 +/- 0.5 micron with histones H3 and H4 as methyl acceptors, respectively.

Animals↗

The SIgA system and hypersensitivity in patients with cystic fibrosis.

A number of investigations have been used for the first time to examine the secretory IgA (SIgA) system in different body fluids from patients with cystic fibrosis (CF). Free J-chain was detected in all the sputum specimens examined. The isolated free secretory component (SC) from CF sputum differed in electrophoretic mobility from the SC isolated from normal human colostrum. In addition the free SC from some CF saliva formed precipitin lines of partial identity with normal human saliva or colostrum. A higher proportion of CF sera (33%) than of normal sera (10%) contained free SC. These investigations suggest that there may be some defect in the synthesis and/or the assembly of the SIgA immunoglobulins, which if confirmed, may help to explain the impaired Type I and Type III allergic manifestations in patients with CF.

Adolescent↗

Immune complexes in cystic fibrosis.

Circulating immune complexes were detected in serum and sputum of patients with cystic fibrosis (C.F.). There were extensive deposits of immunoglobulins and complement immune complexes in several of the C.F. organs, especially the respiratory and gastrointestinal tracts, but not in the kidneys. Significant concentrations of IgG and of complement complexes could be eluted from the lungs of the C.F. patients but not from those of controls. Studies involving immunoabsorption, autoradiography, and molecular sieving through Sephadex G-200 columns identified both bovine serum albumin and staphylococcal alpha-haemolysin as two of the antigens present in the immune complexes. The sedimentation constant of the immune complexes was about 8S to 11S. The clinical significance of these immune complexes and the wide variety of antibodies detected in C.F. patients are discussed.

Adsorption↗

Immediate hypersensitivity in patients with cystic fibrosis.

Twenty-three out of thirty patients with cystic fibrosis gave strong immediate skin hypersensitivity reaction to a wide variety of allergens. Seventy-five per cent of these had a markedly elevated serum IgE concentration whereas those patients who had negative Type 1 immediate skin reactions also had normal levels of serum IgE. The sputum of those patients with immediate skin reactivity also had positive precipitins to a variety of antigens.

Allergens↗

Intracellular Ca2+ and cytotoxicity.

Following injury or activation in some immune cell lines, elevation of intracellular Ca2+ concentration (Cai2+) is an early and major event that precedes cell death. Agents shown to elevate Cai2+ and to result subsequently in the death of some cells include human immunodeficiency virus (HIV) (in T4+ cells), 25-hydroxy cholesterol, tumor necrosis factor (TNF), cyclosporine, dexamethasone, alpha-interferon, and Ca2+ ionophores. The effects of these agents, both on Cai2+ and on cytotoxicity, are additive. This type of Ca2+-related cytotoxicity may be associated with either accelerated synthesis of triglycerides (TNF), accelerated synthesis of cholesterol ester (25-hydroxy cholesterol), or cholesterol (HIV) and terminally with declining synthesis of structural phospholipid. Agents that can lower Cai2+ (e.g., phorbol esters, diglycerides, lipoproteins [LDL], oleic acid, or serum) under appropriate conditions ameliorate the Ca2+-induced cytotoxicity. Metabolism of other divalent metals, i.e., Zn2+ and Cd2+, also become altered with cell injury, e.g., glucocorticoids elevate Cai2+, but block uptake of Zn2+. These observations support the idea that chronic elevation of Cai2+ by many chemically unrelated agents leads to cell death by creating imbalance both in cell biosynthetic mechanisms--especially in those controlling lipid metabolism--as well as creating imbalances in metabolism of other trace metals, especially Zn2+.

Animals↗