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CELL BIOPHYSICS |
1 Kinki University
2 Kobe University
* To whom correspondence should be addressed. E-mail: akasaka8{at}spring8.or.jp.
Submitted on May 5, 2006
Revised on August 15, 2006
Accepted on 31 August 2006
| Abstract |
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Vo
= -50.5 ± 1.60 ml mol-1 at 0.1 MPa and with a negative activation compressibility 

= -0.013±0.001 ml mol-1 bar-1 or -0.9 x 10-6 ml g-1 bar-1. These results indicate that the protofibril is a highly compressible high-volume state, but that it becomes less compressible and less voluminous in the transition state, most probably due to partial hydration of the existing voids. The system eventually reaches the lowest-volume state with full hydration of the monomer in the dissociated state.
Key Words: activation compressibility for dissociation, activation volume for dissociation, amyloid protofibrils, disulfide-deficient mutant of hen lysozyme, polymerization mechanism, pressure dissociation kinetics
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