Affiliation:
1. Department of Microbiology and the Plant Molecular Biology/Biotechnology Program, The Ohio State University, Columbus, Ohio 43210-1292
Abstract
ABSTRACT
Ribulose 1,5 bisphosphate carboxylase/oxygenase (RubisCO) catalyzes the biological reduction and assimilation of carbon dioxide gas to organic carbon; it is the key enzyme responsible for the bulk of organic matter found on earth. Until recently it was believed that there are only two forms of RubisCO, form I and form II. However, the recent completion of several genome-sequencing projects uncovered open reading frames resembling RubisCO in the third domain of life, the archaea. Previous work and homology comparisons suggest that these enzymes represent a third form of RubisCO, form III. While earlier work indicated that two structurally distinct recombinant archaeal RubisCO proteins catalyzed bona fide RubisCO reactions, it was not established that the
rbcL
genes of anaerobic archaea can be transcribed and translated to an active enzyme in the native organisms. In this report, it is shown not only that
Methanococcus jannaschii
,
Archaeoglobus fulgidus
,
Methanosarcina acetivorans
, and
Methanosarcina barkeri
possess open reading frames with the residues required for catalysis but also that the RubisCO protein from these archaea accumulates in an active form under normal growth conditions. In addition, the form III RubisCO gene (
rbcL
) from
M. acetivorans
was shown to complement RubisCO deletion strains of
Rhodobacter capsulatus
and
Rhodobacter sphaeroides
under both photoheterotrophic and photoautotrophic growth conditions. These studies thus indicate for the first time that archaeal form III RubisCO functions in a physiologically significant fashion to fix CO
2
. Furthermore, recombinant
M. jannaschii
,
M. acetivorans
, and
A. fulgidus
RubisCO possess unique properties with respect to quaternary structure, temperature optima, and activity in the presence of molecular oxygen compared to the previously described
Thermococcus kodakaraensis
and halophile proteins.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Reference39 articles.
1. Altekar, W., and R. Rajagopalan. 1990. Ribulose bisphosphate carboxylase activity in halophilic archaebacteria. Arch. Microbiol.153:169-174.
2. Bult, C. J., O. White, G. J. Olsen, et al. 1996. Complete genome sequence of the methanogenic archaeon, Methanococcus jannaschii. Science273:1058-1073.
3. Cleland, W. W., T. J. Andrews, S. Gutteridge, F. C. Hartman, and G. H. Lorimer. 1998. Mechanism of rubisco: the carbamate as general base. Chem. Rev.98:549-562.
4. Deppenmeier, U., A. Johann, T. Hartsch, et al. 2002. The genome of Methanosarcina mazei: evidence for lateral gene transfer between bacteria and archaea. J. Mol. Microbiol. Biotechnol.4:453-461.
5. Dubendorff, J. W., and F. W. Studier. 1991. Controlling basal expression in an inducible T7 expression system by blocking the target T7 promoter with lac repressor. J. Mol. Biol.219:45-59.
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