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Small-Molecule Targeted Aβ42 Aggregate Degradation: Negatively Charged Small Molecules Are More Promising than the
Jinfei Mei1, Huijuan Yang1, Bo Sun1
1School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, P. R. China.
Abstract:
Heavy evidence has confirmed that Aβ42 oligomers are the most neurotoxic aggregates and play a critical role in the occurrence and development of Alzheimer's disease by causing functional neuron death, cognitive damage, and dementia. Disordered Aβ42 oligomers are challenging therapeutic targets, and no drug is currently in clinical use that modifies the properties of their monomeric states. Here, a negatively charged molecule (ER), rather than the neutral TS1 one, is identified by a molecular dynamics simulation method to be more capable of binding and sequestering the intrinsically disordered amyloid-β peptide Aβ42 in its soluble pentameric state as well as its monomeric components. Results reveal that the ERs interact with Aβ and inhibit the primary nucleation pathways in its aggregation process in entropic expansion mechanism for both Aβ42 and Aβ40 oligomers but with opposite characteristics of hydrophobic surface area (HSA). The interaction between Aβ42 oligomer and either charged ER or neutral TS1/TS0 characterizes decreased HSA, and the decrease in ER-involved case is highly visible, consistent with the observations from in silico and in vitro studies. By contrast, the presence of these inhibitors causes the HSA of Aβ40 oligomer to change undetectably and there is even a bit of increase in the histidine isomerized Aβ40 oligomer. The HSA distinction between Aβ42 and Aβ40 oligomer is possibly derived from the different effects of M35-inhibitor interaction, which is analogous to the effect of M35 oxidation. In comparison with the neutral TS1/TS0 inhibitors, ER is more prone to bind the residues located in the central (β1) and C-terminal (β2) regions of Aβ42 peptide, two key nucleation regions for Aβ intramolecular folding, intermolecular aggregation, and assembly. Notably, ER can strongly bind the charged residues, such as K16, K28, D23, to greatly disturb the potential stabilizer (e.g., salt-bridge, etc.) in metastable Aβ42 oligomers and protofibrils. These results illustrate the strategy of overcoming Alzheimer's disease from inhibiting its early stage Aβ aggregation with two kinds of small molecules to alter their behavior for therapeutic purposes and strongly recommend paying more attention to the engineering and development of negatively charged inhibitors, the long-term underappreciated ones, targeting the early stage Aβ aggregates.
Insights
Negatively charged molecules effectively inhibit early-stage amyloid-beta (Aβ) aggregation, a key driver of Alzheimer's disease. This study highlights charged inhibitors as promising therapeutic agents for preventing neurotoxicity.
Area of Science:
- Biochemistry
- Neuroscience
- Computational Chemistry
Background:
- Amyloid-beta (Aβ) oligomers, particularly Aβ42, are strongly implicated in Alzheimer's disease pathogenesis due to their neurotoxic effects.
- Developing therapeutics that target and modify the aggregation properties of Aβ oligomers remains a significant challenge.
- Current treatments do not effectively address the early stages of Aβ aggregation or the properties of monomeric Aβ.
Purpose of the Study:
- To identify small molecules capable of binding and sequestering intrinsically disordered amyloid-beta (Aβ) peptide.
- To investigate the differential effects of charged versus neutral molecules on Aβ42 and Aβ40 oligomerization.
- To explore the potential of negatively charged inhibitors for early-stage Alzheimer's disease therapeutic strategies.
Main Methods:
- Molecular dynamics simulations were employed to assess the binding affinity of charged (ER) and neutral (TS1) molecules with Aβ42.
- Analysis of hydrophobic surface area (HSA) changes upon inhibitor interaction with Aβ42 and Aβ40 oligomers.
- In silico and in vitro studies were conducted to validate simulation findings regarding inhibitor efficacy and binding sites.
Main Results:
- Negatively charged ER molecules demonstrated superior binding and sequestration of Aβ42 monomers and soluble pentamers compared to neutral TS1.
- ER molecules inhibited primary nucleation pathways in both Aβ42 and Aβ40 aggregation, significantly reducing Aβ42 oligomer HSA.
- ER preferentially binds key nucleation regions (β1 and β2) of Aβ42, disrupting stabilizing interactions and inhibiting aggregation.
Conclusions:
- Negatively charged small molecules, like ER, are effective in inhibiting early-stage Aβ aggregation, offering a promising therapeutic avenue for Alzheimer's disease.
- The distinct effects on Aβ42 versus Aβ40 HSA highlight the specificity of charged inhibitors in targeting neurotoxic species.
- Further development of negatively charged inhibitors targeting early Aβ aggregates is strongly recommended for Alzheimer's disease treatment.

