Structure of the Ternary Complex Formed by a Chemotaxis Receptor Signaling Domain, the CheA Histidine Kinase, and the Coupling Protein CheW As Determined by Pulsed Dipolar ESR Spectroscopy

被引:63
作者
Bhatnagar, Jaya [2 ]
Borbat, Peter P. [2 ]
Pollard, Abiola M. [1 ]
Bilwes, Alexandrine M. [1 ]
Freed, Jack H. [2 ]
Crane, Brian R. [1 ]
机构
[1] Cornell Univ, Dept Chem & Biol Chem, Ithaca, NY 14853 USA
[2] Cornell Univ, Ctr Adv ESR Studies, Ithaca, NY 14853 USA
关键词
ESCHERICHIA-COLI CHEMOTAXIS; BACILLUS-SUBTILIS CHEMOTAXIS; PAIR DISTANCE DISTRIBUTIONS; BACTERIAL CHEMOTAXIS; THERMOTOGA-MARITIMA; BINDING DOMAIN; TIKHONOV REGULARIZATION; CAULOBACTER-CRESCENTUS; TRANSDUCTION PATHWAY; CHEMORECEPTOR ARRAY;
D O I
10.1021/bi100055m
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
The signaling apparatus that controls bacterial chemotaxis is composed of a core complex containing chemoreceptors, the histidine autokinase CheA, and the coupling protein CheW. Site-specific spin labeling and pulsed dipolar ESR spectroscopy (PDS) have been applied to investigate the structure of a soluble ternary complex formed by Thermotoga maritima CheA (TmCheA), CheW, and receptor signaling domains. Thirty-five symmetric spin-label sites (SLSs) were engineered into the five domains of the CheA dimer and CheW to provide distance restraints within the CheA:CheW complex in the absence and presence of a soluble receptor that inhibits kinase activity (Tm14). Additional PDS restraints among spin-labeled CheA, CheW, and an engineered single-chain receptor labeled at six different sites allow docking of the receptor structure relative to the CheA:CheW complex. Disulfide cross-linking between selectively incorporated Cys residues finds two pairs of positions that provide further constraints within the ternary complex: one involving Tm14 and CheW and another involving Tm14 and CheA. The derived structure of the ternary complex indicates a primary site of interaction between CheW and Tm14 that agrees well with previous biochemical and genetic data for transmembrane chemoreceptors. The PDS distance distributions are most consistent with only one CheW directly engaging one dimeric Tm14. The CheA dimerization domain (P3) aligns roughly antiparallel to the receptor-conserved signaling tip but does not interact strongly with it. The angle of the receptor axis with respect to P3 and the CheW-binding P5 domains is bound by two limits differing by similar to 20 degrees. In one limit, Tm14 aligns roughly along P3 and may interact to some extent with the hinge region near the P3 hairpin loop. In the other limit, Tm14 tilts to interact with the P5 domain of the opposite subunit in an interface that mimics that observed with the P5 homologue CheW. The time domain ESR data can be simulated from the model only if orientational variability is introduced for the P5 and, especially, P3 domains. The Tm14 tip also binds beside one of the CheA kinase domains (P4); however, in both bound and unbound states, P4 samples a broad range of distributions that are only minimally affected by Tm14 binding. The CheA P1 domains that contain the substrate histidine are also broadly distributed in space under all conditions. In the context of the hexagonal lattice formed by trimeric transmembrane chemoreceptors, the PDS structure is best accommodated with the P3 domain in the center of a honeycomb edge.
引用
收藏
页码:3824 / 3841
页数:18
相关论文
共 94 条
[11]   Nanodiscs separate chemoreceptor oligomeric states and reveal their signaling properties [J].
Boldog, Thomas ;
Grimme, Stephen ;
Li, Mingshan ;
Sligar, Stephen G. ;
Hazelbauer, Gerald L. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (31) :11509-11514
[12]   Measuring distances by pulsed dipolar ESR spectroscopy: Spin-labeled histidine kinases [J].
Borbat, Peter P. ;
Freed, Jack H. .
TWO-COMPONENT SIGNALING SYSTEMS, PT B, 2007, 423 :52-+
[13]   Multifrequency two-dimensional Fourier transform ESR: An X/Ku-band spectrometer [J].
Borbat, PP ;
Crepeau, RH ;
Freed, JH .
JOURNAL OF MAGNETIC RESONANCE, 1997, 127 (02) :155-167
[14]   Protein structure determination using long-distance constraints from double-quantum coherence ESR: Study of T4 lysozyme [J].
Borbat, PP ;
Mchaourab, HS ;
Freed, JH .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (19) :5304-5314
[15]   TRANSMEMBRANE SIGNAL TRANSDUCTION IN BACTERIAL CHEMOTAXIS INVOLVES LIGAND-DEPENDENT ACTIVATION OF PHOSPHATE GROUP TRANSFER [J].
BORKOVICH, KA ;
KAPLAN, N ;
HESS, JF ;
SIMON, MI .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1989, 86 (04) :1208-1212
[16]   Attractant regulation of the aspartate receptor-kinase complex: Limited cooperative interactions between receptors and effects of the receptor modification state [J].
Bornhorst, JA ;
Falke, JJ .
BIOCHEMISTRY, 2000, 39 (31) :9486-9493
[17]   Quantitative analysis of aspartate receptor signaling complex reveals that the homogeneous two-state model is inadequate: Development of a heterogeneous two-state model [J].
Bornhorst, JA ;
Falke, JJ .
JOURNAL OF MOLECULAR BIOLOGY, 2003, 326 (05) :1597-1614
[18]   Chemical probes of bacterial signal transduction reveal that repellents stabilize and attractants destabilize the chemoreceptor array [J].
Borrok, M. Jack ;
Kolonko, Erin M. ;
Kiessling, Laura L. .
ACS CHEMICAL BIOLOGY, 2008, 3 (02) :101-109
[19]   CheA kinase and chemoreceptor interaction surfaces on CheW [J].
Boukhvalova, M ;
VanBruggen, R ;
Stewart, RC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (26) :23596-23603
[20]   CheW binding interactions with CheA and Tar -: Importance for chemotaxis signaling in Escherichia coli [J].
Boukhvalova, MS ;
Dahlquist, FW ;
Stewart, RC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (25) :22251-22259