A CBS domain-containing pyrophosphatase of Moorella thermoacetica is regulated by adenine nucleotides

Author:

Jämsen Joonas1,Tuominen Heidi1,Salminen Anu1,Belogurov Georgiy A.1,Magretova Natalia N.2,Baykov Alexander A.2,Lahti Reijo1

Affiliation:

1. Department of Biochemistry and Food Chemistry, University of Turku, FIN-20014 Turku, Finland

2. A. N. Belozersky Institute of Physico-Chemical Biology, Moscow State University, Moscow 119899, Russia

Abstract

CBS (cystathionine β-synthase) domains are found in proteins from all kingdoms of life, and point mutations in these domains are responsible for a variety of hereditary diseases in humans; however, the functions of CBS domains are not well understood. In the present study, we cloned, expressed in Escherichia coli, and characterized a family II PPase (inorganic pyrophosphatase) from Moorella thermoacetica (mtCBS-PPase) that has a pair of tandem 60-amino-acid CBS domains within its N-terminal domain. Because mtCBS-PPase is a dimer and requires transition metal ions (Co2+ or Mn2+) for activity, it resembles common family II PPases, which lack CBS domains. The mtCBS-PPase, however, has lower activity than common family II PPases, is potently inhibited by ADP and AMP, and is activated up to 1.6-fold by ATP. Inhibition by AMP is competitive, whereas inhibition by ADP and activation by ATP are both of mixed types. The nucleotides are effective at nanomolar (ADP) or micromolar concentrations (AMP and ATP) and appear to compete for the same site on the enzyme. The nucleotide-binding affinities are thus 100–10000-fold higher than for other CBS-domain-containing proteins. Interestingly, genes encoding CBS-PPase occur most frequently in bacteria that have a membrane-bound H+-translocating PPase with a comparable PPi-hydrolysing activity. Our results suggest that soluble nucleotide-regulated PPases act as amplifiers of metabolism in bacteria by enhancing or suppressing ATP production and biosynthetic reactions at high and low [ATP]/([AMP]+[ADP]) ratios respectively.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference42 articles.

1. On the metabolic significance of phosphorolytic and pyrophosphorolytic reactions;Kornberg,1962

2. Biological Role of Inorganic Pyrophosphate;Heinonen,2001

3. Pyrophosphatase is essential for growth of Escherichia coli;Chen;J. Bacteriol.,1990

4. Yeast PPA2 gene encodes a mitochondrial inorganic pyrophosphatase that is essential for mitochondrial function;Lundin;J. Biol. Chem.,1991

5. Expression of E. coli inorganic pyrophosphatase in transgenic plants alters photoassimilate partioning;Sonnewald;Plant J.,1992

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