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Updated: Jun 19, 2026

Purification and Aggregation of the Amyloid Precursor Protein Intracellular Domain
Published on: August 28, 2012
K3 fragment of amyloidogenic beta(2)-microglobulin forms ion channels: implication for dialysis related amyloidosis
Mirela Mustata1, Ricardo Capone, Hyunbum Jang
1Center for Nanomedicine and Department of Medicine, University of Chicago, Chicago, Illinois 60637, USA.
Abstract:
Beta(2)-microglobulin (beta(2)m) amyloid deposits are linked to dialysis-related amyloidosis (DRA) in hemodialysis patients. The mechanism by which beta(2)m causes DRA is not understood. It is also unclear whether only the full-length beta(2)m induces pathophysiology or if proteolytic fragments are sufficient for inducing this effect. Ser20-Lys41 (K3) is a digestion fragment of full-length beta(2)m. Solid state NMR (ssNMR) combined with X-ray diffraction and atomic force microscopy (AFM) revealed the characteristic oligomeric amyloid conformation of the U-turn beta-strand-turn-beta-strand motif stacked in parallel and stabilized by intermolecular interactions also shown by Abeta(9-40)/Abeta(17-42) and the CA150 WW domain. Here we use the K3 U-turn atomic coordinates and molecular dynamic (MD) simulations to model K3 channels in the membrane. Consistent with previous AFM imaging of other amyloids that show channel-like structures in the membrane, in the simulations K3 also forms ion channels with 3-6 loosely attached mobile subunits. We carry out AFM, single channel electrical recording, and fluorescence imaging experiments. AFM images display 3D ion channel topography with shapes, morphologies, and dimensions consistent with the theoretical model. Electrical conductance measurements indicate multiple single channel conductances, suggesting that various K3 oligomer sizes can constitute the channel structure. Fluorescence measurements in kidney cells show channel-mediated cell calcium uptake. These results suggest that the beta(2)m-induced DRA can be mediated by ion channels formed by its K3 fragment. Because the beta-strand-turn-beta-strand motif appears to be a universal amyloid feature, its ability to form ion channels further suggests that the motif may play a generic role in toxicity.
Insights
Beta(2)-microglobulin amyloid deposits cause dialysis-related amyloidosis. A K3 fragment forms ion channels, leading to calcium uptake in kidney cells, suggesting this fragment mediates the disease. This highlights a potential generic role for amyloid motifs in toxicity.
Area of Science:
- Biophysics
- Biochemistry
- Cell Biology
Background:
- Beta(2)-microglobulin (beta(2)m) amyloid deposits are associated with dialysis-related amyloidosis (DRA) in hemodialysis patients.
- The exact mechanism of beta(2)m-induced DRA and the role of its fragments in pathophysiology remain unclear.
Purpose of the Study:
- To investigate whether the proteolytic fragment Ser20-Lys41 (K3) of beta(2)m can form ion channels and mediate cellular toxicity.
- To elucidate the structural basis of K3 amyloid formation and its channel properties.
Main Methods:
- Solid-state NMR, X-ray diffraction, and atomic force microscopy (AFM) to determine the amyloid structure of the K3 fragment.
- Molecular dynamics (MD) simulations to model K3 ion channels.
- AFM, single channel electrical recording, and fluorescence imaging to characterize K3 channel function and cellular effects.
Main Results:
- The K3 fragment adopts a characteristic amyloid conformation with a U-turn beta-strand-turn-beta-strand motif.
- MD simulations and AFM imaging revealed that K3 forms ion channels in membranes, composed of 3-6 mobile subunits.
- Electrical recordings showed multiple conductances, and fluorescence imaging demonstrated K3 channel-mediated calcium uptake in kidney cells.
Conclusions:
- The K3 fragment of beta(2)m can form functional ion channels that induce calcium uptake in kidney cells.
- These findings suggest that beta(2)m-induced DRA may be mediated by ion channels formed by the K3 fragment.
- The amyloid beta-strand-turn-beta-strand motif's ability to form ion channels suggests a potential generic role in amyloid toxicity.
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