The highly toxic oxyanion tellurite (TeO32−) enters the phototrophic bacterium Rhodobacter capsulatus via an as yet uncharacterized monocarboxylate transport system

被引:0
作者
Roberto Borghese
Daniele Marchetti
Davide Zannoni
机构
[1] University of Bologna,Department of Biology
[2] University of Bologna,Interdepartmental Center of Research in Environmental Sciences (CIRSA)
来源
Archives of Microbiology | 2008年 / 189卷
关键词
Tellurite uptake; Monocarboxylate transport; Phototrophic bacteria;
D O I
暂无
中图分类号
学科分类号
摘要
The facultative phototroph Rhodobacter capsulatus takes up the highly toxic oxyanion tellurite when grown under both photosynthetic and respiratory growth conditions. Previous works on Escherichia coli and R. capsulatus suggested that tellurite uptake occurred through a phosphate transporter. Here we present evidences indicating that tellurite enters R. capsulatus cells via a monocarboxylate transport system. Indeed, intracellular accumulation of tellurite was inhibited by the addition of monocarboxylates such as pyruvate, lactate and acetate, but not by dicarboxylates like malate or succinate. Acetate was the strongest tellurite uptake antagonist and this effect was concentration dependent, being already evident at 1 μM acetate. Conversely, tellurite at 100 μM was able to restrict the acetate entry into the cells. Both tellurite and acetate uptakes were energy dependent processes, since they were abolished by the protonophore FCCP and by the respiratory electron transport inhibitor KCN. Interestingly, cells grown on acetate, lactate or pyruvate showed a high level resistance to tellurite, whereas cells grown on malate or succinate proved to be very sensitive to the oxyanion. Taking these data together, we propose that: (a) tellurite enters R. capsulatus cells via an as yet uncharacterized monocarboxylate(s) transporter, (b) competition between acetate and tellurite results in a much higher level of tolerance against the oxyanion and (c) the toxic action of tellurite at the cytosolic level is significantly restricted by preventing tellurite uptake.
引用
收藏
页码:93 / 100
页数:7
相关论文
共 107 条
  • [1] Avazéri C(1997)Tellurite reductase activity of nitrate reductase is responsible for the basal resistance of Microbiology 143 1181-1189
  • [2] Turner RJ(2004) to tellurite Appl Environ Microbiol 70 6595-6602
  • [3] Pommier J(2003)Effects of the metalloid oxyanion tellurite (TeO Protoplasma 221 153-161
  • [4] Weiner JH(2003)) on growth characteristics of the phototrophic bacterium FEBS Lett 554 315-318
  • [5] Giordano G(2005)Reduction of potassium telurite to elemental tellurium and its effect on the plasma membrane redox components of the facultative phototroph Res Microbiol 156 807-813
  • [6] Verméglio A(1989)Tellurite uptake by cells of the facultative phototroph Annu Rev Biochem 58 79-110
  • [7] Borghese R(1988) is a ΔpH-dependent process J Bacteriol 170 3269-3273
  • [8] Borsetti F(2002)Tellurite effects on Microbiology 148 1699-1708
  • [9] Foladori P(1995) cell viability and superoxide dismutase activity under oxidative stress conditions Annu Rev Biochem 64 97-112
  • [10] Ziglio G(2002)Biochemistry of oxygen toxicity J Bacteriol 184 5436-5448