Deterministic Pressure Dissociation and Unfolding of Triose Phosphate Isomerase: Persistent Heterogeneity of a Protein Dimer
- 1 January 1996
- journal article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 35 (24) , 7743-7751
- https://doi.org/10.1021/bi952118b
Abstract
Subunit dissociation and unfolding of dimeric rabbit muscle triose phosphate isomerase (TIM) induced by hydrostatic pressure were investigated. Changes in fluorescence emission of TIM (both intrinsic and of covalently attached probes) indicated that pressure ranging from 1 bar to 3.5 kbar promoted subunit dissociation and unfolding. Intrinsic fluorescence changes upon unfolding by pressure included a 27 nm red-shift of the emission, a decrease in fluorescence anisotropy from 0.14 to about 0.01, and a 1.5-fold increase in fluorescence quantum yield, similar to that observed in the presence of guanidine hydrochloride. Kinetics of pressure-induced fluorescence changes were slow (t1/2 ≈ 15 min) and little dependent on pressure. In order to selectively monitor subunit dissociation, fluorescence resonance energy transfer (FRET) measurements were carried out with TIM that was separately labeled with 5-((((2-iodoacetyl)amino)ethyl)amino)naphthalene-1-sulfonic acid (1,5-IAEDANS) or fluorescein-5-isothiocyanate (FITC). FRET measurements indicated that subunit dissociation and unfolding took place concomitantly, both under equilibrium conditions and in kinetic experiments in which dissociation/unfolding was triggered by a sudden increase in pressure. Release of pressure caused monomer refolding and dimerization. Contrary to what would be expected for a process involving subunit dissociation, pressure effects on TIM were not dependent on protein concentration. Experiments involving a series of pressure jumps demonstrated persistent heterogeneity in sensitivity toward pressure in the ensemble of TIM dimers. This kind of deterministic behavior is similar to that exhibited by higher order protein aggregates and indicates that not all individual dimers are energetically identical in solution. The heterogeneity of native TIM revealed by sensitivity to pressure could not be detected by traditional means of protein separation, such as polyacrylamide gel electrophoresis (under both native and denaturing conditions) and size exclusion gel chromatography. This suggests that energetic heterogeneity originates from conformational heterogeneity of the protein. The possible biological relevance of the deterministic character of stability of TIM is discussed.Keywords
This publication has 14 references indexed in Scilit:
- An interface point‐mutation variant of triosephosphate isomerase is compactly folded and monomeric at low protein concentrationsFEBS Letters, 1995
- Pressure denaturation of the bacteriophage P22 coat protein and its entropic stabilization in icosahedral shellsBiophysical Journal, 1994
- Pressure Stability of ProteinsAnnual Review of Physical Chemistry, 1993
- Dimerization and reactivation of triosephosphate isomerase in reverse micellesEuropean Journal of Biochemistry, 1992
- Dissociation of a native dimer to a molten globule monomer: Effects of pressure and dilution on the association equilibrium of arc repressorJournal of Molecular Biology, 1992
- Probing the catalytic sites of triosephosphate isomerase by 31P‐NMR with reversibly and irreversibly binding substrate analoguesEuropean Journal of Biochemistry, 1991
- Pressure-induced dissociation of brome mosaic virusJournal of Molecular Biology, 1988
- High Pressure Effects on Proteins and other BiomoleculesAnnual Review of Biophysics and Bioengineering, 1982
- Ligand binding and denaturation titration of free and matrix-bound triosephosphate isomerasesArchives of Biochemistry and Biophysics, 1975
- Refolding of triose phosphate isomeraseBiochemical Journal, 1973