Streptococcus thermophilus cell wall-anchored proteinase: release, purification, and biochemical and genetic characterization
- PMID: 11055922
- PMCID: PMC92378
- DOI: 10.1128/AEM.66.11.4772-4778.2000
Streptococcus thermophilus cell wall-anchored proteinase: release, purification, and biochemical and genetic characterization
Abstract
Streptococcus thermophilus CNRZ 385 expresses a cell envelope proteinase (PrtS), which is characterized in the present work, both at the biochemical and genetic levels. Since PrtS is resistant to most classical methods of extraction from the cell envelopes, we developed a three-step process based on loosening of the cell wall by cultivation of the cells in the presence of glycine (20 mM), mechanical disruption (with alumina powder), and enzymatic treatment (lysozyme). The pure enzyme is a serine proteinase highly activated by Ca(2+) ions. Its activity was optimal at 37 degrees C and pH 7.5 with acetyl-Ala-Ala-Pro-Phe-paranitroanilide as substrate. The study of the hydrolysis of the chromogenic and casein substrates indicated that PrtS presented an intermediate specificity between the most divergent types of cell envelope proteinases from lactococci, known as the PI and PIII types. This result was confirmed by the sequence determination of the regions involved in substrate specificity, which were a mix between those of PI and PIII types, and also had unique residues. Sequence analysis of the PrtS encoding gene revealed that PrtS is a member of the subtilase family. It is a multidomain protein which is maturated and tightly anchored to the cell wall via a mechanism involving an LPXTG motif. PrtS bears similarities to cell envelope proteinases from pyogenic streptococci (C5a peptidase and cell surface proteinase) and lactic acid bacteria (PrtP, PrtH, and PrtB). The highest homologies were found with streptococcal proteinases which lack, as PrtS, one domain (the B domain) present in cell envelope proteinases from all other lactic acid bacteria.
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References
-
- Accolas J P, Bloquel R, Didienne R, Regnier J. Propriétés acidifiantes des bactéries lactiques thermophiles en relation avec la fabrication du yoghourt. Lait. 1977;561-562:1–23.
-
- Bautista E S, Dahiya R S, Speck M L. Identification of compounds causing symbiotic growth of Streptococcus thermophilus and Lactobacillus bulgaricus in milk. J Dairy Res. 1966;33:299–307.
-
- Blum H, Beier H, Gross H J. Improved silver staining of plant proteins, RNA and DNA in polyacrylamide gels. Electrophoresis. 1987;8:93–99.
-
- Bohnsack J F, Zhou X, Williams P A, Cleary P P, Parker C J, Hill H R. Purification of the proteinase from group B streptococci that inactivates human C5a. Biochim Biophys Acta. 1991;1079:222–228. - PubMed
-
- Boutrou R, Sepulchre A, Gripon J C, Monnet V. Simple tests for predicting the lytic behaviour and proteolytic activity of lactococcal strains in cheese. J Dairy Sci. 1998;81:2321–2328.
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