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Published on: November 30, 2018
The stability and dynamics of the Aβ40/Aβ42 interlaced mixed fibrils
Asis K Jana1, Özgür Güven2, Fatih Yaşar2
1Department of Microbiology and Biotechnology, Sister Nivedita University, Kolkata, West Bengal, India.
Abstract:
The accumulation of fibrillar amyloid-β (Aβ) aggregates in the brain, predominantly comprising 40- and 42-residue amyloid-β (Aβ40 and Aβ42), is a major pathological hallmark of Alzheimer's disease (AD). Aβ40 and Aβ42 naturally coexist in the brain under normal physiological conditions, and their interplay is generally considered to be a critical factor in the progression of AD. In addition to forming homogeneous oligomers and fibrils, Aβ40 and Aβ42 are also reported to co-assemble into hetero-oligomers and interlaced mixed fibrils, as evidenced by solid-state nuclear magnetic resonance spectroscopy (NMR), high molecular weight mass spectrometry and cross-seeding experiments. However, the exact molecular mechanisms underlying these processes remain unclear. In this study, we have used a recently resolved structurally uniform 1:1 mixture of Aβ40/Aβ42 interlaced mixed fibril as a prototype to gain insights into the molecular-level interactions between Aβ40 and Aβ42. We employed fully atomistic molecular dynamics simulation and compared the results with a homogeneous U-shaped Aβ40 fibrillar model. Our simulations using two different force fields provide conclusive evidence that the Aβ40/Aβ42 interlaced mixed fibril is energetically more favorable than the homogeneous Aβ40 fibrillar model. Furthermore, we also show that the increase in stability observed in the mixed model stems primarily from the packing interfaces and the stacking interfaces between C-termini. Our simulation results provide valuable mechanistic insights that are not readily accessible in experiment and could have significant implications for both the pathogenesis of AD and the development of current therapeutic strategies.Communicated by Ramaswamy H. Sarma.
Insights
Alzheimer's disease research shows mixed amyloid-β (Aβ40/Aβ42) fibrils are more stable than Aβ40-only fibrils. This stability arises from specific C-terminal interactions, offering new therapeutic targets for Alzheimer's disease.
Area of Science:
- Neuroscience
- Biochemistry
- Computational Biology
Background:
- Alzheimer's disease (AD) is characterized by amyloid-beta (Aβ) aggregate accumulation.
- Aβ40 and Aβ42 peptides coexist and interact, influencing AD pathogenesis.
- The molecular mechanisms of Aβ40/Aβ42 co-assembly into mixed fibrils are not fully understood.
Purpose of the Study:
- To investigate the molecular interactions and stability of Aβ40/Aβ42 interlaced mixed fibrils.
- To compare the energetic favorability of mixed fibrils versus homogeneous Aβ40 fibrils.
- To provide mechanistic insights into Aβ aggregation relevant to Alzheimer's disease.
Main Methods:
- Utilized fully atomistic molecular dynamics simulations.
- Employed a structurally uniform 1:1 Aβ40/Aβ42 interlaced mixed fibril as a prototype.
- Compared simulation results with a homogeneous U-shaped Aβ40 fibrillar model using two distinct force fields.
Main Results:
- The Aβ40/Aβ42 interlaced mixed fibril is energetically more favorable than the homogeneous Aβ40 fibril.
- Increased stability in the mixed fibril model is attributed to specific packing and stacking interfaces at the C-termini.
- Simulation results offer mechanistic details not easily obtainable through experimental methods.
Conclusions:
- Aβ40/Aβ42 mixed fibrils exhibit enhanced stability due to specific intermolecular interactions.
- These findings provide crucial mechanistic insights into Alzheimer's disease pathogenesis.
- The results could inform the development of novel therapeutic strategies targeting Aβ aggregation.
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