MOLECULAR ANALYSIS OF AN ATP-DEPENDENT ANION PUMP

被引:21
|
作者
ROSEN, BP
HSU, CM
KARKARIA, CE
OWOLABI, JB
TISA, LS
机构
[1] Department of Biochemistry, Wayne State University, School of Medicine, Detroit, 48201., Michigan
关键词
D O I
10.1098/rstb.1990.0024
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The plasmid-borne arsenical resistance operon encodes an ATP-driven oxyanion pump for the extrusion of the oxyanions arsenite, antimonite and arsenate from bacterial cells. The catalytic component of the pump, the 63 kDa ArsA protein, hydrolyses ATP in the presence of its anionic substrate antimonite (SbO2-). The ATP analogue 5'-p-fluorosulphonylbenzoyladenosine was used to modify the ATP binding site(s) of the ArsA protein. From sequence analysis there are two potential nucleotide binding sites. Mutations were introduced into the N-terminal site. Purified mutant proteins were catalytically inactive and incapable of binding nucleotides. Conformational changes produced upon binding of substrates to the ArsA protein were investigated by measuring the effects of substrates on trypsin inactivation. The hydrophobic 45.5 kDa ArsB protein forms the membrane anchor for the ArsA protein. The presence of the ArsA protein on purified inner membrane can be detected immunologically. In the absence of the arsB gene no ArsA is found on the membrane. Synthesis of the ArsB protein is limiting for formation of the pump. Analysis of mRNA structure suggests a potential translational block to synthesis of the ArsB protein. Northern analysis of the ars message demonstrates rapid degradation of the mRNA in the arsB region.
引用
收藏
页码:455 / 463
页数:9
相关论文
共 50 条
  • [22] Differential localization of two homologous ATP-dependent organic anion transporters.
    Paulusma, CC
    Bosma, PJ
    Bakker, CTM
    Scheffer, GL
    Scheper, RJ
    Elferink, RPJO
    MOLECULAR BIOLOGY OF THE CELL, 1996, 7 : 1492 - 1492
  • [23] MOLECULAR MECHANISM FOR DOMINANCE OF A MUTANT ALLELE OF AN ATP-DEPENDENT PROTEASE
    CHARETTE, MF
    HENDERSON, GW
    KEZDY, FJ
    MARKOVITZ, A
    JOURNAL OF MOLECULAR BIOLOGY, 1982, 162 (02) : 503 - 510
  • [24] QUANTITATIVE-ANALYSIS OF ATP-DEPENDENT H+ EFFLUX AND PUMP CURRENT DRIVEN BY AN ELECTROGENIC PUMP IN NITELLOPSIS-OBTUSA
    TAKESHIGE, K
    SHIMMEN, T
    TAZAWA, M
    PLANT AND CELL PHYSIOLOGY, 1986, 27 (02) : 337 - 348
  • [25] THE BIOENERGETICS OF GOLGI-APPARATUS FUNCTION - EVIDENCE FOR AN ATP-DEPENDENT PROTON PUMP
    ZHANG, F
    SCHNEIDER, DL
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1983, 114 (02) : 620 - 625
  • [26] ROLE OF ATP IN ATP-DEPENDENT DEOXYRIBONUCLEASE ACTIVITY
    WINDER, FG
    NATURE-NEW BIOLOGY, 1972, 236 (64): : 75 - &
  • [27] ATP-Dependent Proteases in Bacteria
    Bittner, Lisa-Marie
    Arends, Jan
    Narberhaus, Franz
    BIOPOLYMERS, 2016, 105 (08) : 505 - 517
  • [28] ATP-dependent DNA ligases
    Martin, Ina V.
    MacNeill, Stuart A.
    GENOME BIOLOGY, 2002, 3 (04):
  • [29] ATP-dependent chromatin remodeling
    Smith, CL
    Peterson, CL
    CURRENT TOPICS IN DEVELOPMENTAL BIOLOGY, VOL 65, 2005, 65 : 115 - +
  • [30] ATP-Dependent Chromatin Remodeling
    Yodh, Jaya
    DNA HELICASES AND DNA MOTOR PROTEINS, 2013, 973 : 263 - 295