Published September 30, 2005 | Version v1
Journal article

Conformational change in full-length mouse prion: A site-directed spin-labeling study

  • 1. CREST-JST, Multi-Quantum Coherence ESR Project, Muroran 050-8585 (Japan)
  • 2. COE program, Program for Excellence of Zoonosis Control, Sapporo 060-0818 (Japan)
  • 3. Laboratory of Radiation Biology, Department of Environmental Veterinary Medical Sciences, Graduate School of Veterinary Medicine, Hokkaido University, Sapporo 060-0818 (Japan)
  • 4. Department of Physics, School of Science and Technology, Meiji University, Kawasaki 214-8571 (Japan)
  • 5. CREST-JST, Multi-Quantum Coherence ESR Project, Hakodate 040-8567 (Japan)
  • 6. Soft-Matter Physics Laboratory, Department of Materials Science and Engineering, Muroran Institute of Technology, Muroran 050-8585 (Japan)
  • 7. Laboratory of Chemistry, Faculty of Education, Hokkaido University of Education, Hakodate 040-8567 (Japan)
  • 8. Department of Structural Biology, Graduate School of Pharmaceutical Sciences, Hokkaido University, Sapporo 060-0812 (Japan)

Description

The structure of the mouse prion (moPrP) was studied using site-directed spin-labeling electron spin resonance (SDSL-ESR). Since a previous NMR study by Hornemanna et al., [Hornemanna, Korthb, Oeschb, Rieka, Widera, Wuethricha, Glockshubera, Recombinant full-length murine prion protein, mPrP (23-231): purification and spectroscopic characterization, FEBS Lett. 413 (1997) 277-281] has indicated that N96, D143, and T189 in moPrP are localized in a Cu2+ binding region, Helix1 and Helix2, respectively, three recombinant moPrP mutations (N96C, D143C, and T189C) were expressed in an Escherichia coli system, and then refolded by dialysis under low pH and purified by reverse-phase HPLC. By using the preparation, we succeeded in preserving a target cystein residue without alteration of the α-helix structure of moPrP and were able to apply SDSL-ESR with a methane thiosulfonate spin label to the full-length prion protein. The rotational correlation times (τ) of 1.1, 3.3, and 4.8 ns were evaluated from the X-band ESR spectra at pH 7.4 and 20 deg C for N96R1, D143R1, and T189R1, respectively. τ reflects the fact that the Cu2+ binding region is more flexible than Helix1 or Helix2. ESR spectra recorded at various temperatures revealed two phases together with a transition point at around 20 deg C in D143R1 and T189R1, but not in N96R1. With the variation of pH from 4.0 to 7.8, ESR spectra of T189R1 at 20 deg C showed a gradual increase of τ from 2.9 to 4.8 ns. On the other hand, the pH-dependent conformational changes in N96R1 and D143R1 were negligible. These results indicated that T189 located in Helix2 possessed a structure sensitive to physiological pH changes; simultaneously, N96 in the Cu2+ binding region and D143 in Helix1 were conserved

Additional details

Identifiers

DOI
10.1016/j.bbrc.2005.07.148;
PII
S0006-291X(05)01632-3;

Publishing Information

Journal Title
Biochemical and Biophysical Research Communications
Journal Volume
335
Journal Issue
3
Journal Page Range
p. 785-792
ISSN
0006-291X
CODEN
BBRCA9

Optional Information

Copyright
Copyright (c) 2005 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.