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Partially unfolded states of beta(2)-microglobulin and amyloid formation in vitro
V J McParland1, N M Kad, A P Kalverda
1School of Biochemistry and Molecular Biology, University of Leeds, Leeds LS2 9JT, UK.
Abstract:
Dialysis-related amyloidosis (DRA) involves the aggregation of beta(2)-microglobulin (beta(2)m) into amyloid fibrils. Using Congo red and thioflavin-T binding, electron microscopy, and X-ray fiber diffraction, we have determined conditions under which recombinant monomeric beta(2)m spontaneously associates to form fibrils in vitro. Fibrillogenesis is critically dependent on the pH and the ionic strength of the solution, with low pH and high ionic strength favoring fibril formation. The morphology of the fibrils formed varies with the growth conditions. At pH 4 in 0.4 M NaCl the fibrils are approximately 10 nm wide, relatively short (50-200 nm), and curvilinear. By contrast, at pH 1.6 the fibrils formed have the same width and morphology as those formed at pH 4 but extend to more than 600 nm in length. The dependence of fibril growth on ionic strength has allowed the conformational properties of monomeric beta(2)m to be determined under conditions where fibril growth is impaired. Circular dichroism studies show that titration of one or more residues with a pK(a) of 4.7 destabilizes native beta(2)m and generates a partially unfolded species. On average, these molecules retain significant secondary structure and have residual, non-native tertiary structure. They also bind the hydrophobic dye 1-anilinonaphthalene-8-sulfonic acid (ANS), show line broadening in one-dimensional (1)H NMR spectra, and are weakly protected from hydrogen exchange. Further acidification destabilizes this species, generating a second, more highly denatured state that is less fibrillogenic. These data are consistent with a model for beta(2)m fibrillogenesis in vitro involving the association of partially unfolded molecules into ordered fibrillar assemblies.
Insights
Dialysis-related amyloidosis (DRA) occurs when beta(2)-microglobulin (beta(2)m) forms amyloid fibrils. This study identified conditions favoring beta(2)m fibril formation in vitro, revealing pH and ionic strength are critical factors.
Area of Science:
- Biochemistry
- Structural Biology
- Biophysics
Background:
- Dialysis-related amyloidosis (DRA) is a condition characterized by the aggregation of beta(2)-microglobulin (beta(2)m) into amyloid fibrils.
- Understanding the in vitro fibrillogenesis of beta(2)m is crucial for elucidating DRA pathogenesis.
Purpose of the Study:
- To determine the conditions that promote spontaneous fibril formation from recombinant monomeric beta(2)m in vitro.
- To investigate the conformational changes of beta(2)m associated with fibrillogenesis.
Main Methods:
- Recombinant beta(2)m was subjected to varying pH and ionic strength conditions.
- Fibril formation was assessed using Congo red and thioflavin-T binding assays.
- Morphological and structural characterization employed electron microscopy and X-ray fiber diffraction.
- Conformational changes were monitored by circular dichroism and ANS binding.
Main Results:
- Fibril formation is favored at low pH and high ionic strength.
- Fibril morphology and length are dependent on growth conditions (e.g., pH 4 vs. pH 1.6).
- Partially unfolded beta(2)m species, destabilized at specific pH ranges, are prone to fibril formation.
- Highly denatured states are less fibrillogenic.
Conclusions:
- Beta(2)m fibrillogenesis in vitro involves the association of partially unfolded molecules.
- Environmental factors like pH and ionic strength significantly influence the process.
- The study provides insights into the structural transitions underlying DRA.