Properties of 130 kDa subunit of monkey aldehyde oxidase

Tasuku Asakawa1, Kunio Itoh, Mayuko Adachi

  • 1Department of Drug Metabolism and Pharmacokinetics, Tohoku Pharmaceutical University, 4-4-1 Komatsushima, Aoba-ku, Sendai 981-8558, Japan.

Insights

A minor 130 kDa subunit in monkey aldehyde oxidase (AO) is formed by cleavage of the 150 kDa subunit. This cleavage, linked to specific amino acids, occurs in humans and monkeys but not rats or mice, though it reduces AO activity.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Enzymology

Background:

  • Aldehyde oxidase (AO) activity and subunit composition can vary across species.
  • A minor 130 kDa subunit of monkey AO was previously observed, unlike in rat AO.

Purpose of the Study:

  • Investigate the properties and origin of the 130 kDa subunit in monkey AO.
  • Clarify species-specific differences in AO subunit formation and its impact on enzyme activity.

Main Methods:

  • Expression of His-tagged monkey AO at N- and C-termini.
  • Immunoanalysis using anti-AO and anti-His-tag antisera.
  • Edman degradation to determine the N-terminal cleavage site.

Main Results:

  • The 130 kDa subunit arises from N-terminal cleavage of the 150 kDa AO subunit.
  • Cleavage occurs between 188Leu and 189Pro, a site present in human and monkey AO but absent in rat and mouse AO.
  • The 130 kDa subunit was observed in human and monkey AO, but not in rat and mouse AO.
  • Cleavage leads to the loss of the 2Fe-2S cluster domain, essential for AO activity.

Conclusions:

  • The 130 kDa subunit formation is due to specific N-terminal cleavage in primate AO.
  • Species-specific amino acid sequences influence the formation of the 130 kDa subunit.
  • The presence of the 130 kDa subunit is not associated with species differences in AO activity due to loss of the active site domain.

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