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Biomedical subjects

R Desai

Publications and source records attributed to R Desai.

At least 91 records · Page 5Linked to original sources

Studies on the fate of pulmonary surfactant in the lung.

1. Radioactively labelled pulmonary surfactant was prepared in an isolated perfused lung system provided with [14C]hexadecanoate. 2. After intratracheal administration of pulmonary surfactant radioactively labelled components were rapidly distributed into different lung fractions, including macrophages (free cells), but most of the radioactive label was accumulated by the lung tissue. 3. Alveolar macrophages, maintained in a variety of culture media in the presence and absence of mineral particles, incorporated a low percentage (11%) of radioactively labelled components when incubated with the surfactant, although evolution of labelled CO2 (6% of the original total activity) suggested that some breakdown of the components had taken place. 4. In similar cultures little intracellular accumulation or extracellular release of non-esterified fatty acids was demonstrated, indicating minimal catabolism of the high-molecular-weight lipid components of surfactant (particularly phosphatidylcholine). 5. However, experiments in vitro designed to simulate the lysosomal degradation of endocytosed surfactant indicated that the macrophage had enzymes capable of releasing non-esterified fatty acids, particularly hexadecanoate, from the lipoprotein complex. 6. It is argued that lung cells, other than alveolar macrophages, may also have a role in surfactant turnover.

Animals↗

Purification of the heat-stable inhibitor protein of the Ca2+-activated cyclic nucleotide phosphodiesterase by affinity chromatography.

The recently discovered heat-stable inhibitor protein of the Ca2+-activated cyclic nucleotide phosphodiesterase (Sharma, R. K., Wirch, E. & Warg, J. H. (1978) J. Biol. Chem., in press) has been purified 238 214-fold from bovine brain extract using an affinity column of the modulator protein--Sepharose 4B conjugate. The purified sample appears to be homogeneous as judged by sodium dodecyl sulphate (SDS) gel electrophoresis. The protein band has a mobility corresponding to that of a polypeptide of molecular weight 68 000. Since the heat-stable inhibitor protein has a molecular weight of 70 000 under nondenaturing conditions, it suggests that it is a monomeric protein. The protein has no inhibitory activity toward the cAMP-dependent protein kinase or protein phosphatase. The purified sample has been tested for various enzyme activities which include ATPase, GTPase, cAMP phosphodiesterase, cGMP phosphodiesterase, 5'-nucleotidase, and protein kinase. None of these activities are exhibited by the purified sample.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗

Catalytic and regulatory properties of two forms of bovine heart cyclic nucleotide phosphodiesterase.

The soluble supernatant fraction of bovine heart homogenates may be fractionated on a DEAE cellulose column into two cyclic nucleotide phosphodiesterases (EC 3.1.4.-):PI and PII phosphodiesterases, in the order of emergence from the column. In the presence of free Ca2+, the PI enzyme may be activated several fold by the protein activator which was discovered by Cheung((1971) J. Biol. Chem. 246, 2859-2869). The PII enzyme is refractory to this activator, and is not inhibited by the Ca2+ chelating agent, ethylene glycol bis (beta-aminoethyl ether)-N, N'-tetraacetate (EGTA). The activated activity of PI phosphodiesterase may be further stimulated by imidazole or NH+4, and inhibited by high concentrations of Mg2+. These reagents have no significant effect on either the PII enzyme or the basal activity of PI phosphodiesterase. Although both forms of phosphodiesterase can hydrolyze either cyclic AMP or cyclic GMP, they exhibit different relative affinities towards these two cyclic nucleotides. The PI enzyme appears to have much higher affinities toward cyclic GMP than cyclic AMP. Km values for cyclic AMP and cyclic GMP are respectively 1.7 and 0.33 mM for the non-activated PI phosphodiesterase; and 0.2 and 0.007 mM for the activated enzyme. Each cyclic nucleotide acts as a competitive inhibitor for the other with Ki values similar to the respective Km values. In contrast with PI phosphodiesterase, PII phosphodiesterase exhibits similar affinity toward cyclic AMP and cyclic GMP. The apparent Km values of cyclic AMP and cyclic GMP for the PII enzyme are approx. 0.05 and 0.03 mM, respectively. The kinetic plot with respect to cyclic GMP shows positive cooperativity. Each cyclic nucleotide acts as a non-competitive inhibitor for the other nucleotide. These kinetic properties of PI and PII phosphodiesterase of bovine heart are very similar to those of rat liver cyclic GMP and high Km cyclic AMP phosphodiesterases, respectively (Russel, Terasaki and Appleman, (1973) J. Biol. Chem. 248, 1334).

3',5'-Cyclic-AMP Phosphodiesterases↗

Characterization of pulmonary surfactant from ox, rabbit, rat and sheep.

1. Pulmonary surfactants from ox, rabbit, rat and sheep were isolated and analysed. 2. All preparations had a high anenoic phosphatidylcholine content and would produce stable surface tensions of 0.01 Nm-1 or less. 3. Protein content was 8-18% of the dry weights. A number of proteins were observed; their overall composition were high in hydrophobic amino acid residues. 4. Lipid content varied from 79% (ox) to 90% (rabbit) with phosphatidylcholine representing from 58% (sheep) to 83% (rabbit) of the total lipid. The surfactant preparations were rather similar in lipid composition except that sheep surfactant contained about 10% lysophosphatidylcholine. 5. Hexadecanoic acid was the principal fatty acid. It was particularly high in phosphatidylcholine. 6. Phosphatidylglycerol was a minor constituent of all surfactants but phosphatidyldimethylethanolamine was not detected.

Amino Acids↗

Chrysotile asbestos: biological reaction potential.

Evidence is presented indicating that chrysotile asbestos induces rapid cellular ageing in lung fibroblast cultures. Depending on the dose of asbestos given to these cultures the formation of fibrous collagen is enhanced or suppressed. The reaction of chrysotile at the cellular and molecular level is discussed and is considered to be determined by the organic coating it receives or the manner in which the surface absorbed material is modified. Studies are included of the ability of chrysotile to adsorb and retain serum proteins, pulmonary surfactant and lysosomal enzymes. Finally, a critical appraisal is given of the theories accounting for chrysotile-induced fibrogenesis particularly related to the lung fibroblast system studied.

Asbestos↗