Selenophosphate synthetase genes from lung adenocarcinoma cells:: Sps1 for recycling L-selenocysteine and Sps2 for selenite assimilation

被引:61
作者
Tamura, T [1 ]
Yamamoto, S
Takahata, M
Sakaguchi, H
Tanaka, H
Stadtman, TC
Inagaki, K
机构
[1] Okayama Univ, Grad Sch Nat Sci & Technol, Dept Biofunct Chem, Okayama 7008530, Japan
[2] NHLBI, Biochem Lab, NIH, Bethesda, MD 20892 USA
关键词
D O I
10.1073/pnas.0406313101
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A labile selenium donor compound monoselenophosphate is synthesized from selenide and ATP by selenophosphate synthetase (SPS). In the present study, Sps1 and Sps2 were cloned from a cDNA library prepared from human lung adenocarcinoma cells (NCI-H441). The human lung Sps1 has been cloned as an ORF of 1,179 bp, identical in sequence to that of the recently revised human liver Sps1. The in-frame TGA codon of the lung Sps2 was genetically altered to TGT (Cys) to obtain the Sps2Cys gene. Expression of the recombinant plasmids containing Spsi or Sps2Cys was highly toxic to Escherichia coli host cells grown aerobically. Accordingly, the human lung Sps homologs were characterized by an in vivo complementation assay using a selD mutant strain. An added selenium source and a low salt concentration (0.1-0.25% NaCl) in the medium were required for reproducible and sensitive in vivo complementation. Sps2Cys effectively complemented the selD mutant, and the resulting formate dehydrogenase H activity was as high as that of WT E. coli MC4100. In contrast, only a weak complementation of the selD mutant by the Sps1 gene was observed when cells were grown in selenite media. Better complementation with added L-selenocysteine suggested involvement of a selenocysteine lyase for mobilization of selenium. Based on this apparent substrate specificity of the Sps1 and Sps2 gene products we suggest that the Sps1-encoded enzyme depends on a selenium salvage system that recycles L-selenocysteine, whereas the Sps2 enzyme can function with a selenite assimilation system.
引用
收藏
页码:16162 / 16167
页数:6
相关论文
共 26 条
[1]   A persulfurated cysteine promotes active site reactivity in Azotobacter vinelandii rhodanese [J].
Bordo', D ;
Forlani, F ;
Spallarossa, A ;
Colnaghi, R ;
Carpen, A ;
Bolognesi, M ;
Pagani, S .
BIOLOGICAL CHEMISTRY, 2001, 382 (08) :1245-1252
[2]   Complete genome sequence of the methanogenic archaeon, Methanococcus jannaschii [J].
Bult, CJ ;
White, O ;
Olsen, GJ ;
Zhou, LX ;
Fleischmann, RD ;
Sutton, GG ;
Blake, JA ;
FitzGerald, LM ;
Clayton, RA ;
Gocayne, JD ;
Kerlavage, AR ;
Dougherty, BA ;
Tomb, JF ;
Adams, MD ;
Reich, CI ;
Overbeek, R ;
Kirkness, EF ;
Weinstock, KG ;
Merrick, JM ;
Glodek, A ;
Scott, JL ;
Geoghagen, NSM ;
Weidman, JF ;
Fuhrmann, JL ;
Nguyen, D ;
Utterback, TR ;
Kelley, JM ;
Peterson, JD ;
Sadow, PW ;
Hanna, MC ;
Cotton, MD ;
Roberts, KM ;
Hurst, MA ;
Kaine, BP ;
Borodovsky, M ;
Klenk, HP ;
Fraser, CM ;
Smith, HO ;
Woese, CR ;
Venter, JC .
SCIENCE, 1996, 273 (5278) :1058-1073
[3]   SELENOPROTEIN SYNTHESIS IN ESCHERICHIA-COLI - PURIFICATION AND CHARACTERIZATION OF THE ENZYME CATALYZING SELENIUM ACTIVATION [J].
EHRENREICH, A ;
FORCHHAMMER, K ;
TORMAY, P ;
VEPREK, B ;
BOCK, A .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1992, 206 (03) :767-773
[4]   WHOLE-GENOME RANDOM SEQUENCING AND ASSEMBLY OF HAEMOPHILUS-INFLUENZAE RD [J].
FLEISCHMANN, RD ;
ADAMS, MD ;
WHITE, O ;
CLAYTON, RA ;
KIRKNESS, EF ;
KERLAVAGE, AR ;
BULT, CJ ;
TOMB, JF ;
DOUGHERTY, BA ;
MERRICK, JM ;
MCKENNEY, K ;
SUTTON, G ;
FITZHUGH, W ;
FIELDS, C ;
GOCAYNE, JD ;
SCOTT, J ;
SHIRLEY, R ;
LIU, LI ;
GLODEK, A ;
KELLEY, JM ;
WEIDMAN, JF ;
PHILLIPS, CA ;
SPRIGGS, T ;
HEDBLOM, E ;
COTTON, MD ;
UTTERBACK, TR ;
HANNA, MC ;
NGUYEN, DT ;
SAUDEK, DM ;
BRANDON, RC ;
FINE, LD ;
FRITCHMAN, JL ;
FUHRMANN, JL ;
GEOGHAGEN, NSM ;
GNEHM, CL ;
MCDONALD, LA ;
SMALL, KV ;
FRASER, CM ;
SMITH, HO ;
VENTER, JC .
SCIENCE, 1995, 269 (5223) :496-512
[5]   MONOSELENOPHOSPHATE - SYNTHESIS, CHARACTERIZATION, AND IDENTITY WITH THE PROKARYOTIC BIOLOGICAL SELENIUM DONOR, COMPOUND SEPX [J].
GLASS, RS ;
SINGH, WP ;
JUNG, W ;
VERES, Z ;
SCHOLZ, TD ;
STADTMAN, TC .
BIOCHEMISTRY, 1993, 32 (47) :12555-12559
[6]   Identification of a novel selD homolog from Eukaryotes, Bacteria, and Archaea: Is there an autoregulatory mechanism in selenocysteine metabolism? [J].
Guimaraes, MJ ;
Peterson, D ;
Vicari, A ;
Cocks, BG ;
Copeland, NG ;
Gilbert, DJ ;
Jenkins, NA ;
Ferrick, DA ;
Kastelein, RA ;
Bazan, JF ;
Zlotnik, A .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (26) :15086-15091
[7]  
KIM IY, 1992, J BIOL CHEM, V267, P19650
[8]   Fetal mouse selenophosphate synthetase 2 (SPS2): Characterization of the cysteine mutant form overproduced in a baculovirus-insect cell system [J].
Kim, IY ;
Guimaraes, MJ ;
Zlotnik, A ;
Bazan, JF ;
Stadtman, TC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (02) :418-421
[9]  
KIM IY, 1993, J BIOL CHEM, V268, P27020
[10]   The NIFS protein can function as a selenide delivery protein in the biosynthesis of selenophosphate [J].
Lacourciere, GM ;
Stadtman, TC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (47) :30921-30926