Sara B.-M. Whittaker
University of East Anglia
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Featured researches published by Sara B.-M. Whittaker.
Journal of Molecular Biology | 2002
Emily S. Collins; Sara B.-M. Whittaker; Kaeko Tozawa; Colin Macdonald; Christopher N. Penfold; Ann Reilly; Nigel J. Clayden; Michael J. Osborne; Andrew M. Hemmings; Richard James; Geoffrey R. Moore
In order for the 61 kDa colicin E9 protein toxin to enter the cytoplasm of susceptible cells and kill them by hydrolysing their DNA, the colicin must interact with the outer membrane BtuB receptor and Tol translocation pathway of target cells. The translocation function is located in the N-terminal domain of the colicin molecule. (1)H, (1)H-(1)H-(15)N and (1)H-(13)C-(15)N NMR studies of intact colicin E9, its DNase domain, minimal receptor-binding domain and two N-terminal constructs containing the translocation domain showed that the region of the translocation domain that governs the interaction of colicin E9 with TolB is largely unstructured and highly flexible. Of the expected 80 backbone NH resonances of the first 83 residues of intact colicin E9, 61 were identified, with 43 of them being assigned specifically. The absence of secondary structure for these was shown through chemical shift analyses and the lack of long-range NOEs in (1)H-(1)H-(15)N NOESY spectra (tau(m)=200 ms). The enhanced flexibility of the region of the translocation domain containing the TolB box compared to the overall tumbling rate of the protein was identified from the relatively large values of backbone and tryptophan indole (15)N spin-spin relaxation times, and from the negative (1)H-(15)N NOEs of the backbone NH resonances. Variable flexibility of the N-terminal region was revealed by the (15)N T(1)/T(2) ratios, which showed that the C-terminal end of the TolB box and the region immediately following it was motionally constrained compared to other parts of the N terminus. This, together with the observation of inter-residue NOEs involving Ile54, indicated that there was some structural ordering, resulting most probably from the interactions of side-chains. Conformational heterogeneity of parts of the translocation domain was evident from a multiplicity of signals for some of the residues. Im9 binding to colicin E9 had no effect on the chemical shifts or other NMR characteristics of the region of colicin E9 containing the TolB recognition sequence, though the interaction of TolB with intact colicin E9 bound to Im9 did affect resonances from this region. The flexibility of the translocation domain of colicin E9 may be connected with its need to recognise protein partners that assist it in crossing the outer membrane and in the translocation event itself.
Journal of Biomolecular NMR | 1998
Sara B.-M. Whittaker; Colin Macdonald; Lu-Yun Lian; Ansgar J. Pommer; Ann Reilly; Richard James; Geoffrey R. Moore
The cytotoxic activity of the secreted bacterial toxin colicin E9 is due to a non-specific DNase housed in the C-terminus of the protein. Double-resonance and triple-resonance NMR studies of the 134-amino acid15 N- and 13C/15N-labelled DNase domain are presented. Extensive conformational heterogeneity was evident from the presence of far more resonances than expected based on the amino acid sequence of the DNase, and from the appearance of chemical exchange cross-peaks in TOCSY and NOESY spectra. EXSY spectra were recorded to confirm that slow chemical exchange was occurring. Unambiguous sequence-specific resonance assignments are presented for one region of the protein, Pro65-Asn72, which exists in two slowly exchanging conformers based on the identification of chemical exchange cross-peaks in 3D 1H-1H-15N EXSY-HSQC, NOESY-HSQC and TOCSY-HSQC spectra, together with Cα and Cβ chemical shifts measured in triple-resonance spectra and sequential NH NOEs. The rates of conformational exchange for backbone amide resonances in this stretch of amino acids, and for the indole NH of either Trp22 or Trp58, were determined from the intensity variation of the appropriate diagonal and chemical exchange cross-peaks recorded in 3D1 H-1H-15N NOESY-HSQC spectra. The data fitted a model in which this region of the DNase has two conformers, NA and NB, which interchange at 15 °C with a forward rate constant of 1.61 ± 0.5 s-1 and a backward rate constant of 1.05 ± 0.5 s-1. Demonstration of this conformational equilibrium has led to a reappraisal of a previously proposed kinetic scheme describing the interaction of E9 DNase with immunity proteins [Wallis et al. (1995) Biochemistry, 34, 13743–13750 and 13751–13759]. The revised scheme is consistent with the specific inhibitor protein for the E9 DNase, Im9, associating with both the NA and NB conformers of the DNase and with binding only to the NB conformer detected because the rate of dissociation of the complex of Im9 and the NA conformer, NAI, is extremely rapid. In this model stoichiometric amounts of Im9 convert, the E9 DNase is converted wholly into the NBI form. The possibility that cis–trans isomerisation of peptide bonds preceding proline residues is the cause of the conformational heterogeneity is discussed. E9 DNase contains 10 prolines, with two bracketing the stretch of amino acids that have allowed the NA ⇋ NB interconversion to be identified, Pro65 and Pro73. The model assumes that one or both of these can exist in either the cis or trans form with strong Im9 binding possible to only one form.
Journal of Inorganic Biochemistry | 2000
Jonathan P. Hannan; Sara B.-M. Whittaker; Andrew M. Hemmings; Richard James; Geoffrey R. Moore
The 134 amino acid DNase domain of colicin E9 contains a zinc-finger-like HNH motif that binds divalent transition metal ions. We have used 1D 1H and 2D 1H-15N NMR methods to characterise the binding of Co2+, Ni2+ and Zn2+ to this protein. Data for the Co2+-substituted and Ni2+-substituted proteins show that the metal ion is coordinated by three histidine residues; and the NMR characteristics of the Ni2+-substituted protein show that two of the histidines are coordinated through their N(epsilon2) atoms and one via its N(delta1). Furthermore, the NMR spectrum of the Ni2+-substituted protein is perturbed by the presence of phosphate, consistent with an X-ray structure showing that phosphate is coordinated to bound Ni2+, and by a change in pH, consistent with an ionisable group at the metal centre with a pKa of 7.9. Binding of an inhibitor protein to the DNase does not perturb the resonances of the metal site, suggesting there is no substantial conformation change of the DNase HNH motif on inhibitor binding. 1H-15N NMR data for the Zn2+-substituted DNase show that this protein, like the metal-free DNase, exists as two conformers with different 1H-15N correlation NMR spectra, and that the binding of Zn2+ does not significantly perturb the spectra, and hence structures, of these conformers beyond the HNH motif region.
Proceedings of the National Academy of Sciences of the United States of America | 2006
Joerg Gsponer; Harri Hopearuoho; Sara B.-M. Whittaker; Graham R. Spence; Geoffrey R. Moore; Emanuele Paci; Sheena E. Radford; Michele Vendruscolo
Journal of Molecular Biology | 2007
Sara B.-M. Whittaker; Graham R. Spence; J. Günter Grossmann; Sheena E. Radford; Geoffrey R. Moore
Journal of Molecular Biology | 2006
Cécile S. Le Duff; Sara B.-M. Whittaker; Sheena E. Radford; Geoffrey R. Moore
Protein Science | 2008
Sara B.-M. Whittaker; Michael Czisch; Rainer Wechselberger; Robert Kaptein; Andrew M. Hemmings; Richard James; Geoffrey R. Moore
Protein Science | 1999
Jonathan P. Hannan; Sara B.-M. Whittaker; Sharon L. Davy; Ulrike C. Kühlmann; Ansgar J. Pommer; Andrew M. Hemmings; Richard James; Geoffrey R. Moore
Journal of Biomolecular NMR | 1999
Sara B.-M. Whittaker; Colin Macdonald; Lu-Yun Lian; Richard James; Geoffrey R. Moore
Journal of Biomolecular NMR | 1999
Sara B.-M. Whittaker; Colin Macdonald; Lu-Yun Lian; Richard James; Geoffrey R. Moore