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PubMed · 13877902

Pseudocholinesterase.

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B P CHAKRAVARTI, M G GOGATE. 1961. Pseudocholinesterase.. https://pubmed.ncbi.nlm.nih.gov/13877902/

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Fundamental reaction mechanism for cocaine hydrolysis in human butyrylcholinesterase.

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Butyrylcholinesterase↗

Studies on a heterologous complex formed by human butyrylcholinesterase.

An electrophoretic band with butyrylcholinesterase activity was detected in 71 CHE2 C5+ and 378 CHE2 C5- individuals and was named C4/5 in view of its similar mobility to either C4 or C5, depending on the pH of the agar gel used. The present data suggest that C4/5 is a heterologous complex of butyrylcholinesterase. Although the C4/5 band may have the same mobility as C5, depending on the conditions of electrophoresis, our hypothesis is that these two bands result from the association of BChE with different molecules.

Butyrylcholinesterase↗

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Human serum butyrylcholinesterase (BChE) has been converted into a stable but less active desensitized form when heated at 45 degrees C for 24 h. The desensitized BChE follows Michaelis-Menten kinetics, whereas native enzyme exhibits slightly negative cooperativity with respect to butyrylthiocholine binding. In this study, we investigated the effects of Ni2+, Co2+, and Mn2+ on the desensitized BChE. It is found that all three ions were noncompetitive inhibitors of the desensitized BChE, and Ki values have been determined as 7.816 +/- 1.060 mM, 48.722 +/- 4.635 mM, and 84.795 +/- 5.249 mM for Ni2+, Co2+, and Mn2+, respectively. In our previous study, these ions were linear mixed-type inhibitors of the native BChE. This finding confirms that desensitized BChE changes to a different conformation than native BChE. From the comparison of Ki values of the trace elements, it can be said that Ni2+ is a more effective inhibitor of the desensitized BChE than Co2+ and Mn2+.

Butyrylcholinesterase↗