Inorganic pyrophosphatases of Family II-two decades after their discovery

被引:31
作者
Baykov, Alexander A. [1 ]
Anashkin, Viktor A. [1 ]
Salminen, Anu [2 ]
Lahti, Reijo [2 ]
机构
[1] Lomonosov Moscow State Univ, Belozersky Inst Phys Chem Biol, Ak Khokhlova 1,Bldg 40, Moscow 119992, Russia
[2] Univ Turku, Dept Biochem, Vatselankatu 2, FIN-20500 Turku, Finland
基金
俄罗斯科学基金会;
关键词
CBS domain; enzyme catalysis; Family II inorganic pyrophosphatase; CYSTATHIONINE BETA-SYNTHASE; DOMAIN-CONTAINING PYROPHOSPHATASE; STREPTOCOCCUS-GORDONII; BACILLUS-SUBTILIS; CBS DOMAINS; SOLUBLE PYROPHOSPHATASE; MOORELLA-THERMOACETICA; ESCHERICHIA-COLI; ENZYME-ACTIVITY; ACTIVE-SITE;
D O I
10.1002/1873-3468.12877
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Inorganic pyrophosphatases (PPases) convert pyrophosphate (PPi) to phosphate and are present in all cell types. Soluble PPases belong to three nonhomologous families, of which Family II is found in approximately a quarter of prokaryotic organisms, often pathogenic ones. Each subunit of dimeric canonical Family II PPases is formed by two domains connected by a flexible linker, with the active site located between the domains. These enzymes require both magnesium and a transition metal ion (manganese or cobalt) for maximal activity and are the most active (k(cat) approximate to 10(4) s(-1)) among all PPase types. Catalysis by Family II PPases requires four metal ions per substrate molecule, three of which form a unique trimetal center that coordinates the nucleophilic water and converts it to a reactive hydroxide ion. A quarter of Family II PPases contain an autoinhibitory regulatory insert formed by two cystathionine -synthase (CBS) domains and one DRTGG domain. Adenine nucleotide binding either activates or inhibits the CBS domain-containing PPases, thereby tuning their activity and, hence, PPi levels, in response to changes in cell energy status (ATP/ADP ratio).
引用
收藏
页码:3225 / 3234
页数:10
相关论文
共 52 条
[1]   Intrasteric control of AMPK via the γ1 subunit AMP allosteric regulatory site [J].
Adams, J ;
Chen, ZP ;
Van Denderen, BJW ;
Morton, CJ ;
Parker, MW ;
Witters, LA ;
Stapleton, D ;
Kemp, BE .
PROTEIN SCIENCE, 2004, 13 (01) :155-165
[2]   The "Open" and "Closed" structures of the type-C inorganic pyrophosphatases from Bacillus subtilis and Streptococcus gordonii [J].
Ahn, S ;
Milner, AJ ;
Fütterer, K ;
Konopka, M ;
Ilias, M ;
Young, TW ;
White, SA .
JOURNAL OF MOLECULAR BIOLOGY, 2001, 313 (04) :797-811
[3]   An asparagine residue mediates intramolecular communication in nucleotide-regulated pyrophosphatase [J].
Anashkin, Viktor A. ;
Salminen, Anu ;
Vorobjeva, Natalia N. ;
Lahti, Reijo ;
Baykov, Alexander A. .
BIOCHEMICAL JOURNAL, 2016, 473 :2097-2107
[4]   Cystathionine β-Synthase (CBS) Domain-containing Pyrophosphatase as a Target for Diadenosine Polyphosphates in Bacteria [J].
Anashkin, Viktor A. ;
Salminen, Anu ;
Tuominen, Heidi K. ;
Orlov, Victor N. ;
Lahti, Reijo ;
Baykov, Alexander A. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2015, 290 (46) :27594-27603
[5]  
[Anonymous], 2001, Biological Role of Inorganic Pyrophosphate
[6]   A novel family of predicted phosphoesterases includes Drosophila prune protein and bacterial RecJ exonuclease [J].
Aravind, L ;
Koonin, EV .
TRENDS IN BIOCHEMICAL SCIENCES, 1998, 23 (01) :17-19
[7]  
Baykov A A, 1999, Prog Mol Subcell Biol, V23, P127
[8]   KINETICS AND THERMODYNAMICS OF CATALYSIS BY THE INORGANIC PYROPHOSPHATASE OF ESCHERICHIA-COLI IN BOTH DIRECTIONS [J].
BAYKOV, AA ;
SHESTAKOV, AS ;
KASHO, VN ;
VENER, AV ;
IVANOV, AH .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1990, 194 (03) :879-887
[9]   2 PATHWAYS OF PYROPHOSPHATE HYDROLYSIS AND SYNTHESIS BY YEAST INORGANIC PYROPHOSPHATASE [J].
BAYKOV, AA ;
SHESTAKOV, AS .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1992, 206 (02) :463-470
[10]   Fluoride effects along the reaction pathway of pyrophosphatase:: Evidence for a second enzyme•pyrophosphate intermediate [J].
Baykov, AA ;
Fabrichniy, IP ;
Pohjanjoki, P ;
Zyryanov, AB ;
Lahti, R .
BIOCHEMISTRY, 2000, 39 (39) :11939-11947