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Molecular structure of Rarobacter faecitabidus protease I. A yeast-lytic serine protease having mannose-binding
Abstract:
Rarobacter faecitabidus protease I (RPI) is a serine protease exhibiting lytic activity toward living yeast cells. RPI is similar to elastase in its substrate specificity and has a lectin-like affinity for mannose. The gene encoding RPI was cloned to elucidate its structure and function. And its nucleotide sequence revealed that it contains an open reading frame encoding a 525-amino acid protein. Homology comparison indicated that pre-pro-RPI consists of three domains: (1) an NH2-terminal prepro domain not found in the mature form of RPI, (2) a protease domain homologous to the trypsin family of serine proteases, and (3) a COOH-terminal domain homologous to the COOH-terminal part of Oerskovia xanthineolytica beta-1,3-glucanase and the NH2-terminal part of the ricin B chain, a lectin isolated from the part of the ricin B chain, a lectin isolated from the castor bean. The RPI gene and its mutant were subsequently expressed in Escherichia coli under its beta-galactosidase promoter to investigate the function of the COOH-terminal domain. The mutant RPI, whose COOH-terminal domain was truncated by site-directed mutagenesis, lost both its mannose-binding and yeast-lytic activity, although the protease activity was not affected. These findings suggest that the COOH-terminal domain actually participates in the mannose-binding activity and is required for yeast-lytic activity.
Insights
Rarobacter faecitabidus protease I (RPI), a serine protease, binds mannose and lyses yeast cells. Its COOH-terminal domain is crucial for mannose binding and yeast cell lysis, but not protease activity.
Area of Science:
- Enzymology
- Molecular Biology
- Microbiology
Background:
- Rarobacter faecitabidus protease I (RPI) is a serine protease.
- RPI exhibits yeast-lytic activity and binds mannose.
- Its structural and functional characteristics require elucidation.
Purpose of the Study:
- To clone and characterize the gene encoding RPI.
- To investigate the function of the COOH-terminal domain of RPI.
- To understand the mechanism of RPI's mannose-binding and yeast-lytic activities.
Main Methods:
- Gene cloning and nucleotide sequencing of RPI.
- Expression of RPI and its mutant in Escherichia coli.
- Site-directed mutagenesis to truncate the COOH-terminal domain.
- Assays for protease, mannose-binding, and yeast-lytic activities.
Main Results:
- The RPI gene encodes a 525-amino acid protein with three domains: prepro, protease, and COOH-terminal.
- The COOH-terminal domain shares homology with beta-1,3-glucanase and ricin B chain.
- Mutant RPI lacking the COOH-terminal domain lost mannose-binding and yeast-lytic activity, while protease activity remained intact.
Conclusions:
- The COOH-terminal domain of RPI is essential for its mannose-binding activity.
- This domain is required for the yeast-lytic activity of RPI.
- RPI's structure-function relationship involves specific domain contributions to distinct activities.