Sodium Dodecyl Sulfate-stable Complexes between Serpins and Active or Inactive Proteinases Contain the Region COOH-terminal to the Reactive Site Loop (∗)

Recently inhibitors of the serpin family were shown to form complexes with dichloroisocoumarine (DCI)-inactivated proteinases under native conditions (Enghild, J. J., Valnickova, Z., ThI., and Pizzo, S. V.(1994) J. Biol. Chem. 269, 20159-20166). This study demonstrates that serpin-DCI/proteinase com...

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Veröffentlicht in:The Journal of biological chemistry 1995-06, Vol.270 (25), p.14859-14862
Hauptverfasser: Christensen, S, Valnickova, Zuzana, Th, Ida B., Pizzo, Salvatore V., Nielsen, Henrik R., Roepstorff, Peter, Enghild, Jan J.
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Sprache:eng
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Zusammenfassung:Recently inhibitors of the serpin family were shown to form complexes with dichloroisocoumarine (DCI)-inactivated proteinases under native conditions (Enghild, J. J., Valnickova, Z., ThI., and Pizzo, S. V.(1994) J. Biol. Chem. 269, 20159-20166). This study demonstrates that serpin-DCI/proteinase complexes resist dissociation when analyzed in reduced SDS-polyacrylamide gel electrophoresis. Previously, SDS-stable serpin-proteinase complexes have been observed only between serpins and catalytically active proteinases. The stability of these complexes is believed to result from an acyl-ester bond between the active site Ser195 of the proteinase and the α-carbonyl group of the scissile bond in the reactive site loop. We have further analyzed the structure of the SDS-stable serpin-proteinase and serpin-DCI/proteinase complexes. The results of these studies demonstrate the presence of the COOH-terminal region of the serpin in both complexes. Since (i) modification of Ser195 does not prevent formation of SDS-stable complexes and (ii) COOH-terminal peptides are present in both complexes, the previously described mechanism does not sufficiently explain the formation of SDS-stable complexes.
ISSN:0021-9258
1083-351X
DOI:10.1074/jbc.270.25.14859