Coregulated Genes Link Sulfide:Quinone Oxidoreductase and Arsenic Metabolism in Synechocystis sp Strain PCC6803

被引:22
作者
Nagy, Csaba I. [1 ]
Vass, Imre [1 ]
Rakhely, Gabor [2 ,3 ]
Vass, Istvan Zoltan [1 ]
Toth, Andras [2 ,3 ]
Duzs, Agnes [3 ]
Peca, Loredana [1 ]
Kruk, Jerzy [4 ]
Kos, Peter B. [1 ,2 ]
机构
[1] Hungarian Acad Sci, Biol Res Ctr, Inst Plant Biol, H-6701 Szeged, Hungary
[2] Univ Szeged, Fac Sci & Informat, Dept Biotechnol, Szeged, Hungary
[3] Hungarian Acad Sci, Biol Res Ctr, Inst Biophys, H-6701 Szeged, Hungary
[4] Jagiellonian Univ, Fac Biochem Biophys & Biotechnol, Dept Plant Physiol & Biochem, Krakow, Poland
关键词
QUINONE REDUCTASE SQR; MONO LAKE WATER; OSCILLATORIA-LIMNETICA; ANOXYGENIC PHOTOSYNTHESIS; INSERTION SEQUENCES; SP PCC-6803; PROTEIN; OXIDATION; OXIDASE; CYANOBACTERIA;
D O I
10.1128/JB.01864-14
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Although the biogeochemistry of the two environmentally hazardous compounds arsenic and sulfide has been extensively investigated, the biological interference of these two toxic but potentially energy-rich compounds has only been hypothesized and indirectly proven. Here we provide direct evidence for the first time that in the photosynthetic model organism Synechocystis sp. strain PCC6803 the two metabolic pathways are linked by coregulated genes that are involved in arsenic transport, sulfide oxidation, and probably in sulfide-based alternative photosynthesis. Although Synechocystis sp. strain PCC6803 is an obligate photoautotrophic cyanobacterium that grows via oxygenic photosynthesis, we discovered that specific genes are activated in the presence of sulfide or arsenite to exploit the energy potentials of these chemicals. These genes form an operon that we termed suoRSCT, located on a transposable element of type IS4 on the plasmid pSYSM of the cyanobacterium. suoS (sll5036) encodes a light-dependent, type I sulfide: quinone oxidoreductase. The suoR (sll5035) gene downstream of suoS encodes a regulatory protein that belongs to the ArsR-type repressors that are normally involved in arsenic resistance. We found that this repressor has dual specificity, resulting in 200-fold induction of the operon upon either arsenite or sulfide exposure. The suoT gene encodes a transmembrane protein similar to chromate transporters but in fact functioning as an arsenite importer at permissive concentrations. We propose that the proteins encoded by the suoRSCT operon might have played an important role under anaerobic, reducing conditions on primordial Earth and that the operon was acquired by the cyanobacterium via horizontal gene transfer.
引用
收藏
页码:3430 / 3440
页数:11
相关论文
共 50 条
  • [31] Temperature and lipid unsaturation effects on plasma and thylakoid membranes of Synechocystis sp PCC6803
    Papageorgiou, GC
    Govindjee
    Govindjee, R
    Mimuro, M
    Stamatakis, K
    Alygizaki-Zorba, A
    Murata, N
    [J]. PHOTOSYNTHESIS: MECHANISMS AND EFFECTS, VOLS I-V, 1998, : 2485 - 2488
  • [32] Carbon neutral electricity production by Synechocystis sp PCC6803 in a microbial fuel cell
    Madiraju, Kartik S.
    Lyew, Darwin
    Kok, Robert
    Raghavan, Vijaya
    [J]. BIORESOURCE TECHNOLOGY, 2012, 110 : 214 - 218
  • [33] Reconstruction and verification of a genome-scale metabolic model for Synechocystis sp PCC6803
    Yoshikawa, Katsunori
    Kojima, Yuta
    Nakajima, Tsubasa
    Furusawa, Chikara
    Hirasawa, Takashi
    Shimizu, Hiroshi
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2011, 92 (02) : 347 - 358
  • [34] EPR study of thylakoid membrane dynamics in mutants of the carotenoid biosynthesis pathway of Synechocystis sp PCC6803
    Klodawska, Kinga
    Malec, Przemyslaw
    Kis, Mihaly
    Gombos, Zoltan
    Strzalka, Kazimierz
    [J]. ACTA BIOCHIMICA POLONICA, 2012, 59 (01) : 87 - 90
  • [35] Lipid and carotenoid cooperation-driven adaptation to light and temperature stress in Synechocystis sp PCC6803
    Zakar, Tomas
    Herman, Eva
    Vajravel, Sindhujaa
    Kovacs, Laszlo
    Knoppova, Jana
    Komenda, Josef
    Domonkos, Ildiko
    Kis, Mihaly
    Gombos, Zoltan
    Laczko-Dobos, Hajnalka
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2017, 1858 (05): : 337 - 350
  • [36] Metabolic Engineering of Synechocystis sp Strain PCC 6803 for Isobutanol Production
    Varman, Arul M.
    Xiao, Yi
    Pakrasi, Himadri B.
    Tang, Yinjie J.
    [J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2013, 79 (03) : 908 - 914
  • [37] Nutrient Acquisition and Limitation for the Photoautotrophic Growth of Synechocystis sp PCC6803 as a Renewable Biomass Source
    Kim, Hyun Woo
    Vannela, Raveender
    Zhou, Chao
    Rittmann, Bruce E.
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2011, 108 (02) : 277 - 285
  • [38] Expression, purification and preliminary crystallization study of RpaC protein from Synechocystis sp PCC6803
    Csefalvay, E.
    Lapkouski, M.
    Komarek, O.
    [J]. PHOTOSYNTHETICA, 2009, 47 (03) : 355 - 362
  • [39] Transcriptomic analysis of Synechocystis sp. PCC6803 under low-temperature stress
    刘志香
    崔红利
    刘正一
    王寅初
    崔玉琳
    刘兆普
    秦松
    [J]. Journal of Oceanology and Limnology, 2014, (02) : 403 - 418
  • [40] A multidrug efflux response to methyl viologen and acriflavine toxicity in the cyanobacterium Synechocystis sp PCC6803
    Ongley, Sarah E.
    Pengelly, Jasper J. L.
    Neilan, Brett A.
    [J]. JOURNAL OF APPLIED PHYCOLOGY, 2016, 28 (05) : 2793 - 2803