Effect of Phospholipase C from Bacillus cereus on the Release of Membrane-Bound Choline-O-Acetyltransferase from Rat Hippocampal Tissue

1990 ◽  
Vol 54 (3) ◽  
pp. 1047-1055 ◽  
Author(s):  
P. T. Carroll ◽  
L. K. Smith
Author(s):  
Ikezawa Hiroh ◽  
Yamanegi Masato ◽  
Taguchi Ryo ◽  
Miyashita Tomoyuki ◽  
Ohyabu Tetsuo

1975 ◽  
Author(s):  
A.-B. Otnœss

The effect on human platelets of phospholipase C (Bacillus cereus) has been studied. Platelets prepared by gel filtration lost 20-30% of their phospholipids when incubated with phospholipase C for 20 min. Phosphatidylethanolamine (PE) was reduced by about 50%, whereas phosphatidylcholine and phosphatidylserine were reduced each by about 20%. Sphingomyelin was not reduced.These data suggest an asymmetrical distribution of phospholipids in the platelet membrane, PE being more accessible and therefore probably mainly located in the outer part of the membrane.The loss of phospholipids was not accompanied by aggregation, nor did the platelets lose their ability to aggregate with thrombin or ADP. Data on release of serotonin, platelet factor 3 and 4 and scanning electron micrographs of treated platelets will be given.


1972 ◽  
Vol 27 (2) ◽  
pp. 238-243 ◽  
Author(s):  
Anne-Brit Otnaess ◽  
Hans Prydz ◽  
Eirik Bjorklid ◽  
Ase Berre

1986 ◽  
Vol 103 (1) ◽  
pp. 255-263 ◽  
Author(s):  
J D Bangs ◽  
N W Andrews ◽  
G W Hart ◽  
P T Englund

After synthesis on membrane-bound ribosomes, the variant surface glycoprotein (VSG) of Trypanosoma brucei is modified by: (a) removal of an N-terminal signal sequence, (b) addition of N-linked oligosaccharides, and (c) replacement of a C-terminal hydrophobic peptide with a complex glycolipid that serves as a membrane anchor. Based on pulse-chase experiments with the variant ILTat-1.3, we now report the kinetics of three subsequent processing reactions. These are: (a) conversion of newly synthesized 56/58-kD polypeptides to mature 59-kD VSG, (b) transport to the cell surface, and (c) transport to a site where VSG is susceptible to endogenous membrane-bound phospholipase C. We found that the t 1/2 of all three of these processes is approximately 15 min. The comparable kinetics of these processes is compatible with the hypotheses that transport of VSG from the site of maturation to the cell surface is rapid and that VSG may not reach a phospholipase C-containing membrane until it arrives on the cell surface. Neither tunicamycin nor monensin blocks transport of VSG, but monensin completely inhibits conversion of 58-kD VSG to the mature 59-kD form. In the presence of tunicamycin, VSG is synthesized as a 54-kD polypeptide that is subsequently processed to a form with a slightly higher Mr. This tunicamycin-resistant processing suggests that modifications unrelated to N-linked oligosaccharides occur. Surprisingly, the rate of VSG transport is reduced, but not abolished, by dropping the chase temperature to as low as 10 degrees C.


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