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Purification and properties of an intracellular 3-hydroxybutyrate-oligomer hydrolase (PhaZ2) in Ralstonia eutropha H16 and its identification as a novel intracellular poly(3-hydroxybutyrate) depolymerase
- Source :
- Journal of Bacteriology. June, 2003, Vol. 185 Issue 11-12, p3485, 6 p.
- Publication Year :
- 2003
-
Abstract
- An intracellular 3-hydroxybutyrate (3HB)-oligomer hydrolase (PhaZ[2.sub.Reu]) of Ralstonia eutropha was purified from Escherichia coli harboring a plasmid containing phaZ[2.sub.Reu]. The purified enzyme hydrolyzed linear and cyclic 3HB-oligomers. Although it did not degrade crystalline poly(3-hydroxybutyrate) (PHB), the purified enzyme degraded artificial amorphous PHB at a rate similar to that of the previously identified intracellular PHB (iPHB) depolymerase (PhaZ[1.sub.Reu]). The enzyme appeared to be an endo-type hydrolase, since it actively hydrolyzed cyclic 3HB-oligomers. However, it degraded various linear 3HB-oligomers and amorphous PHB in the fashion of an exo-type hydrolase, releasing one monomer unit at a time. PhaZ2 was found to bind to PHB inclusion bodies and as a soluble enzyme to cell-free supernatant fractions in R. eutropha; in contrast, PhaZ1 bound exclusively to the inclusion bodies. When R. eutropha H16 was cultivated in a nutrient-rich medium, the transient deposition of PHB was observed: the content of PHB was maximized in the log growth phase (12 h, ca. 14% PHB of dry cell weight) and decreased to a very low level in the stationary phase (ca. 1% of dry cell weight). In each phaZ1-null mutant and phaZ2-null mutant, the PHB content in the cell increased to ca. 5% in the stationary phase. A double mutant lacking both phaZ1 and phaZ2 showed increased PHB content in the log phase (ca. 20%) and also an elevated PHB level (ca. 8%) in the stationary phase. These results indicate that PhaZ2 is a novel iPHB depolymerase, which participates in the mobilization of PHB in R. eutropha along with PhaZ1.
- Subjects :
- Bacterial proteins -- Genetic aspects
Binding proteins -- Genetic aspects
Gene mutations -- Physiological aspects
Enzymes -- Physiological aspects
Enzymes -- Genetic aspects
Bacteria -- Genetic aspects
Oligomers -- Genetic aspects
Microbial populations -- Genetic aspects
Bacteriology -- Research
Biological sciences
Subjects
Details
- Language :
- English
- ISSN :
- 00219193
- Volume :
- 185
- Issue :
- 11-12
- Database :
- Gale General OneFile
- Journal :
- Journal of Bacteriology
- Publication Type :
- Academic Journal
- Accession number :
- edsgcl.107217851