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Updated: May 10, 2026

Characterization of pH-Dependent Reversible Self-Assembly of Amyloid Beta 1-40-Coated Gold Colloids
Published on: March 21, 2025
Thermodynamically stable amyloid-β monomers have much lower membrane affinity than the small oligomers
Bidyut Sarkar1, Anand K Das, Sudipta Maiti
1Department of Chemical Sciences, Tata Institute of Fundamental Research Colaba, Mumbai, India.
Abstract:
Amyloid beta (Aβ) is an extracellular 39-43 residue long peptide present in the mammalian cerebrospinal fluid, whose aggregation is associated with Alzheimer's disease (AD). Small oligomers of Aβ are currently thought to be the key to toxicity. However, it is not clear why the monomers of Aβ are non-toxic, and at what stage of aggregation toxicity emerges. Interactions of Aβ with cell membranes is thought to be the initiator of toxicity, but membrane binding studies with different preparations of monomers and oligomers have not settled this issue. We have earlier found that thermodynamically stable Aβ monomers emerge spontaneously from oligomeric mixtures upon long term incubation in physiological solutions (Nag et al., 2011). Here we show that the membrane-affinity of these stable Aβ monomers is much lower than that of a mixture of monomers and small oligomers (containing dimers to decamers), providing a clue to the emergence of toxicity. Fluorescently labeled Aβ40 monomers show negligible binding to cell membranes of a neuronal cell line (RN46A) at physiological concentrations (250 nM), while oligomers at the same concentrations show strong binding within 30 min of incubation. The increased affinity most likely does not require any specific neuronal receptor, since this difference in membrane-affinity was also observed in a somatic cell-line (HEK 293T). Similar results are also obtained for Aβ42 monomers and oligomers. Minimal amount of cell death is observed at these concentrations even after 36 h of incubation. It is likely that membrane binding precedes subsequent slower toxic events induced by Aβ. Our results (a) provide an explanation for the non-toxic nature of Aβ monomers, (b) suggest that Aβ toxicity emerges at the initial oligomeric phase, and (c) provide a quick assay for monitoring the benign-to-toxic transformation of Aβ.
Insights
Amyloid beta (Aβ) monomers are non-toxic because they have low membrane affinity. Toxicity emerges with early Aβ oligomers, which bind readily to cell membranes, offering a new assay for Aβ transformation.
Area of Science:
- Neuroscience
- Biochemistry
- Cell Biology
Background:
- Amyloid beta (Aβ) aggregation is linked to Alzheimer's disease (AD).
- Small Aβ oligomers are suspected to be toxic, but the reasons for monomer non-toxicity and the onset of aggregation-induced toxicity remain unclear.
- Aβ interactions with cell membranes are implicated in initiating toxicity, yet studies on monomer and oligomer binding are inconclusive.
Purpose of the Study:
- To investigate the membrane-binding affinity of stable amyloid beta (Aβ) monomers compared to oligomers.
- To elucidate the stage of Aβ aggregation where toxicity emerges.
- To develop a rapid assay for monitoring the transition of Aβ from a benign to a toxic state.
Main Methods:
- Utilized fluorescently labeled Aβ40 and Aβ42 monomers and oligomers.
- Assessed membrane binding to neuronal (RN46A) and somatic (HEK 293T) cell lines at physiological concentrations (250 nM).
- Incubation times varied up to 36 hours to observe binding and cell death.
Main Results:
- Stable Aβ monomers exhibited significantly lower membrane binding compared to mixtures of monomers and small oligomers (dimers to decamers).
- Aβ oligomers showed strong membrane binding within 30 minutes, while monomers showed negligible binding.
- This difference in membrane affinity was observed in both neuronal and somatic cell lines, independent of specific neuronal receptors.
- Minimal cell death was observed even after prolonged incubation, suggesting membrane binding precedes toxicity.
Conclusions:
- Provides a molecular explanation for the non-toxic nature of Aβ monomers.
- Indicates that Aβ toxicity originates during the initial oligomeric phase of aggregation.
- Offers a novel, rapid assay for tracking the transformation of Aβ from benign monomers to toxic oligomers.
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