BasT, a membrane-bound transducer protein for amino acid detection in Halobacterium salinarum

被引:19
|
作者
Kokoeva, MV [1 ]
Oesterhelt, D [1 ]
机构
[1] Max Planck Inst Biochem, D-82152 Martinsried, Germany
关键词
D O I
10.1046/j.1365-2958.2000.01735.x
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
Halophilic archaea, such as eubacteria, use methyl-accepting chemotaxis proteins (MCPs) to sense their environment. We show here that BasT is a halobacterial transducer protein (Htp) responsible for chemotaxis towards five attractant amino acids. The C-terminus of the protein exhibits the highly conserved regions that are diagnostic for MCPs: the signalling domain for communication with the histidine kinase and the methylation sites that interact with the methylation/ demethylation enzymes for adaptation. Hydropathy analysis predicts an enterobacterial-type transducer protein topology for BasT, with an extracellular putative ligand-binding domain flanked by two transmembrane helices and a cytoplasmic domain. BasT-inactivated mutant cells are missing a membrane protein radiolabelled with L-[methyl-H-3]-methionine in wildtype cells, confirming that BasT is methylatable and membrane bound. Behavioural analysis of the basT mutant cells by capillary and chemical-in-plug assays demonstrates complete loss of chemotactic responses towards five (leucine, isoleucine, valine, methionine and cysteine) of the six attractant amino acids for Halobacterium salinarum, whereas they still respond to arginine. The volatile methyl group production assays also corroborate these findings and confirm that BasT signalling induces methyl group turnover. Our data identify BasT as the chemotaxis transducer protein for the branched chain amino acids leucine, isoleucine and valine as well as far methionine and cysteine, Thus, BasT and the arginine sensor Car cover the entire spectrum of chemotactic responses towards attractant amino acids in H. salinarum.
引用
收藏
页码:647 / 656
页数:10
相关论文
共 50 条
  • [31] PROTEIN-POLYSACCHARIDE BIOSYNTHESIS - MEMBRANE-BOUND SACCHARIDES
    DERGE, JG
    DAVIDSON, EA
    BIOCHEMICAL JOURNAL, 1972, 126 (01) : 217 - &
  • [32] BIOSYNTHESIS OF NONGLOBIN PROTEIN BY MEMBRANE-BOUND RIBOSOMES IN RETICULOCYTES
    BULOVA, SI
    BURKA, ER
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1970, 245 (19) : 4907 - &
  • [33] Electron crystallography of membrane-bound G protein, transducin
    Wensel, TG
    Melia, TJ
    McGough, A
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 1999, 40 (04) : S378 - S378
  • [34] PROTEIN-SYNTHESIS BY MEMBRANE-BOUND RETICULOCYTE RIBOSOMES
    BURKA, ER
    ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 1974, 241 (NOV29) : 191 - 203
  • [35] Drosophila mitochondrial membrane-bound tafazzin protein is a transacylase
    Xu, Yang
    Ren, Mindong
    Malhotra, Ashim
    Lee, Louis
    Zhang, Jin
    Blanck, Thomas J. J.
    Schlame, Michael
    FASEB JOURNAL, 2007, 21 (05): : A667 - A667
  • [36] FREE AND MEMBRANE-BOUND POLYRIBOSOMES IN PROTEIN-SYNTHESIS
    DESVEAUXCHABROL, J
    ANNEE BIOLOGIQUE, 1978, 17 (9-10): : 393 - 413
  • [37] DIFFERENTIAL REGULATION OF MEMBRANE-BOUND PROTEIN PHOSPHATASES IN BRAIN
    SIM, ATR
    RATCLIFFE, E
    ROSTAS, JAP
    JOURNAL OF NEUROCHEMISTRY, 1995, 65 : S93 - S93
  • [38] RADIOSENSITIVITY OF PROTEIN-SYNTHESIS OF MEMBRANE-BOUND RIBOSOMES
    HOLLAND, J
    KOROSI, L
    ACTA BIOCHIMICA ET BIOPHYSICA HUNGARICA, 1980, 15 (02) : 136 - 136
  • [39] Detection of membrane-bound and soluble antigens by magnetic levitation
    Andersen, Mikkel Schou
    Howard, Emily
    Lu, Shulin
    Richard, Matthew
    Gregory, Mark
    Ogembo, Gordon
    Mazor, Ofer
    Gorelik, Pavel
    Shapiro, Nathan I.
    Sharda, Anish V.
    Ghiran, Ionita
    LAB ON A CHIP, 2017, 17 (20) : 3462 - 3473
  • [40] ONTOGENY OF MEMBRANE-BOUND PROTEIN PHOSPHORYLATING SYSTEMS IN THE RAT
    HOLMES, H
    RODNIGHT, R
    DEVELOPMENTAL NEUROSCIENCE, 1981, 4 (01) : 79 - 88