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Biomedical subjects

D Haldar

Publications and source records attributed to D Haldar.

At least 37 records · Page 2Linked to original sources

The topography of glycerophosphate acyltransferase in the transverse plane of the mitochondrial outer membrane.

In low ionic media, mitochondrial glycerophosphate acyltransferase was inhibited virtually completely within 15 min by the nonspecific proteases, proteinase K and subtilisin. In high ionic media, the mitochondrial enzyme was either not inhibited or was marginally inhibited by these proteases. Chymotrypsin and trypsin, regardless of the ionic strength of the medium, did not inhibit the acyltransferase. Substantial inhibition by proteinase K and subtilisin was observed in the high ionic media when the incubation was continued for 30 or 45 min. Adenylate kinase, an intermembrane enzyme, was not inhibited under any of the above conditions. These results demonstrate a cytosolic exposure of the mitochondrial acyltransferase. In a low ionic environment, when the outer membrane integrity was damaged either by gradually decreasing the tonicity of the medium or by stepwise addition of Triton X-100, either chymotrypsin or trypsin caused virtually parallel inhibition of glycerophosphate acyltransferase and adenylate kinase. A more direct approach in establishing the existence of protease-susceptible sites on the inner side of the outer membrane was taken by observing the inhibition of mitochondrial glycerophosphate acyltransferase and adenylate kinase in trypsinloaded right-side-out outer membrane vesicles incubated in the presence of externally located soybean trypsin inhibitor. The above results, taken together, suggest that mitochondrial glycerophosphate acyltransferase spans the transverse plane of the outer membrane.

Acyltransferases↗

Location of glycerol phosphate acyltransferase in the transverse plane of mitochondrial outer membrane of guinea pig lung.

Incubation of guinea pig lung mitochondrial suspension in an isotonic low ionic strength buffer containing various proteolytic enzymes caused significant stimulation of the glycerophosphate acyltransferase activity. The maximal stimulation range between 20 and 105%, and the order was as follows: bromelain greater than chymotrypsin greater than pronase greater than trypsin greater than papain greater than nagarse. Under hypotonic conditions, over 85% of GAT was destroyed by all the proteolytic enzymes. Microsomal enzyme activity was consistently inhibited (greater than 95%) by exposure to any of these proteases even under isotonic conditions. These results suggest that GAT is located on the inner aspect of the mitochondrial outer membrane. Also, it is likely that a portion of this enzyme or that of a modulator is present in the outer side of the outer membrane and proteolysis of this component causes stimulation.

Acyltransferases↗

Regulation of protein synthesis in isolated mitochondria from regenerating rat liver.

Possible sites in the mitochondrial protein synthetic/degradative scheme that might be responsible for the increased incorporation of [3H]leucine into protein by mitochondria isolated from regenerating liver over the levels found for mitochondria isolated from sham-operated controls were examined. The rate of degradation of newly synthesized protein in mitochondrial preparations from regenerating liver was not decreased but proceeded approximately 30% greater than that found for the sham-operated controls. The increased incorporation of [3H]leucine into protein could also not be accounted for by a stimulation in the extent of formation of leucyl-tRNALeu. In another experiment, isolated mitochondria were incubated with [3H]leucine and the input of mitochondrial ribosomes from regenerating liver and sham-operated controls equalized for analysis on sucrose density gradients. The 55-S ribosomes from regenerating liver mitochondria contained 2.7-fold greater radioactivity in their nascent polypeptide chains than those from control mitochondria. These results indicate that the stimulation in amino acid incorporation into protein due to liver regeneration is the direct result of enhanced polypeptide bond formation on mitochondrial ribosome-messenger RNA complexes.

Animals↗

Acyl-CoA: sn-glycerol-3-phosphate O-acyltransferase in rat brain mitochondria and microsomes.

The subcellular distribution of acyl-CoA: sn-glycerol-3-phosphate O-acyltransferase between brain mitochondria and microsomes was investigated. The activities associated with purified rat brain mitochondrial and microsomal preparations could be distinguished by differences in their acyl-CoA specificity, products of acylation, and sensitivity to N-ethylmaleimide, trypsin, acetone, and polymyxin B. It was concluded that both brain mitochondria and microsomes possess the acyltransferase.

Acetone↗

A simple method of characterizing mitochondrial ribonucleic acid.

A simple method of isolating and characterizing RNA from L-cell mitochondria is described. The mitochondrial fraction is lysed by sodium dodecyl sulphate, and the RNA fractionated by sucrose-density-gradient centrifugation. The efficacy of proteinase K in preventing ribonuclease activity is also demonstrated.

Cytosol↗

Importance of the osmolarity of the incubation medium on amino acid incorporation into protein by isolated rat liver mitochondria.

1. Incorporation of [(14)C]leucine into protein by isolated rat liver mitochondria was examined by using incubation media similar to those used by Sandell, Löw & Decken (1967) (medium A) and Roodyn, Reis & Work (1961) (medium B). The incorporation process was found to be almost completely inhibited in medium A. 2. By decreasing the amount of sucrose and omitting tris-hydrochloric acid from medium A, incorporation proceeded at a rate higher than that found in medium B. It was found that the inhibitory action of medium A was due to its high osmolarity. 3. Oxidative phosphorylation and RNA synthesis by the isolated mitochondria proceeded at the same rate in media essentially the same as media A and B. 4. There was a partial inhibitory action of medium A on leucine uptake by the mitochondria and also on the formation of leucyl-transfer-RNA. The major block of inhibition by the hyperosmolarity of medium A seemed to be located at a later step of protein synthesis involving mitochondrial ribosomes. 5. Protein synthesis by Escherichia coli B was only slightly inhibited, if at all, in hyperosmotic media in which protein synthesis by isolated mitochondria was completely stopped.

Animals↗