Modified mevalonate pathway of the archaeon

Hajime Hayakawa1, Kento Motoyama1, Fumiaki Sobue1

  • 1Department of Applied Molecular Bioscience, Graduate School of Bioagricultural Sciences, Nagoya University, Nagoya, 464-8601 Aichi, Japan.

Insights

Researchers identified two novel enzymes in Aeropyrum pernix that replace the missing phosphomevalonate decarboxylase in the modified mevalonate pathway. This discovery clarifies isoprenoid biosynthesis in most archaea.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Archaea Research

Background:

  • The modified mevalonate pathway is crucial for isoprenoid biosynthesis in archaea.
  • A gap existed in this pathway due to the absence of phosphomevalonate kinase and diphosphomevalonate decarboxylase.
  • Previous discoveries of similar enzymes in haloarchaea and bacteria were not universally applicable to most archaea.

Purpose of the Study:

  • To identify enzymes in Aeropyrum pernix that can fulfill the role of the missing phosphomevalonate decarboxylase.
  • To elucidate the complete modified mevalonate pathway in hyperthermophilic archaea.
  • To differentiate the pathway in Aeropyrum pernix from other known mevalonate pathways.

Main Methods:

  • Comparative genomic analysis was employed to identify candidate enzymes in Aeropyrum pernix.
  • In vitro assays using recombinant enzymes were performed to confirm catalytic activities.
  • Cell-free extracts from Aeropyrum pernix were analyzed to detect enzyme function in a native context.

Main Results:

  • Two enzymes from Aeropyrum pernix were identified as replacements for phosphomevalonate decarboxylase.
  • A putative aconitase catalyzes the dehydration of mevalonate 5-phosphate to trans-anhydromevalonate 5-phosphate.
  • A UbiD-decarboxylase family enzyme, likely with a UbiX partner, converts the intermediate to isopentenyl phosphate.

Conclusions:

  • The identified enzymes and pathway represent a distinct modified mevalonate pathway in Aeropyrum pernix.
  • This pathway is likely conserved in the majority of archaea, differing from eukaryote, haloarchaea, and Thermoplasma acidophilum pathways.
  • The findings resolve a long-standing mystery in archaeal isoprenoid biosynthesis.

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