AmyA, an alpha-amylase with beta-cyclodextrin-forming activity, and AmyB from the thermoalkaliphilic organism Anaerobranca gottschalkii: two alpha-amylases adapted to their different cellular localizations

Appl Environ Microbiol. 2005 Jul;71(7):3709-15. doi: 10.1128/AEM.71.7.3709-3715.2005.

Abstract

Two alpha-amylase genes from the thermophilic alkaliphile Anaerobranca gottschalkii were cloned, and the corresponding enzymes, AmyA and AmyB, were investigated after purification of the recombinant proteins. Based on their amino acid sequences, AmyA is proposed to be a lipoprotein with extracellular localization and thus is exposed to the alkaline milieu, while AmyB apparently represents a cytoplasmic enzyme. The amino acid sequences of both enzymes bear high similarity to those of GHF13 proteins. The different cellular localizations of AmyA and AmyB are reflected in their physicochemical properties. The alkaline pH optimum (pH 8), as well as the broad pH range, of AmyA activity (more than 50% activity between pH 6 and pH 9.5) mirrors the conditions that are encountered by an extracellular enzyme exposed to the medium of A. gottschalkii, which grows between pH 6 and pH 10.5. AmyB, on the other hand, has a narrow pH range with a slightly acidic pH optimum at 6 to 6.5, which is presumably close to the pH in the cytoplasm. Also, the intracellular AmyB is less tolerant of high temperatures than the extracellular AmyA. While AmyA has a half-life of 48 h at 70 degrees C, AmyB has a half-life of only about 10 min at that temperature, perhaps due to the lack of stabilizing constituents of the cytoplasm. AmyA and AmyB were very similar with respect to their substrate specificity profiles, clearly preferring amylose over amylopectin, pullulan, and glycogen. Both enzymes also hydrolyzed alpha-, beta-, and gamma-cyclodextrin. Very interestingly, AmyA, but not AmyB, displayed high transglycosylation activity on maltooligosaccharides and also had significant beta-cyclodextrin glycosyltransferase (CGTase) activity. CGTase activity has not been reported for typical alpha-amylases before. The mechanism of cyclodextrin formation by AmyA is unknown.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adaptation, Physiological*
  • Amino Acid Sequence
  • Bacterial Proteins* / chemistry
  • Bacterial Proteins* / genetics
  • Bacterial Proteins* / metabolism
  • Culture Media
  • Cytoplasm / enzymology
  • Gram-Positive Endospore-Forming Rods / enzymology*
  • Gram-Positive Endospore-Forming Rods / genetics
  • Gram-Positive Endospore-Forming Rods / metabolism
  • Hot Temperature
  • Hydrogen-Ion Concentration
  • Lipoproteins / metabolism
  • Molecular Sequence Data
  • Sequence Analysis, DNA
  • Substrate Specificity
  • alpha-Amylases* / chemistry
  • alpha-Amylases* / genetics
  • alpha-Amylases* / isolation & purification
  • alpha-Amylases* / metabolism
  • beta-Cyclodextrins / metabolism*

Substances

  • Bacterial Proteins
  • Culture Media
  • Lipoproteins
  • beta-Cyclodextrins
  • alpha-Amylases

Associated data

  • GENBANK/AY842298
  • GENBANK/AY842299