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Updated: Jul 15, 2025

A11-positive β-amyloid Oligomer Preparation and Assessment Using Dot Blotting Analysis
Published on: May 22, 2018
Membrane protein chaperone and sodium chloride modulate the kinetics and morphology of amyloid beta aggregation
Christopher Sun1, Leah Slade2, Prisca Mbonu1
1Department of Biology, Midwestern State University, Wichita Falls, TX, USA.
Abstract:
Protein aggregation is a biological phenomenon caused by the accumulation of misfolded proteins. Amyloid beta (Aβ) peptides are derived from the cleavage of a larger membrane protein molecule and accumulate to form plaques extracellularly. According to the amyloid hypothesis, accumulation of Aβ aggregates in the brain is primarily responsible for the pathogenesis of Alzheimer's disease (AD). Therefore, the disassembly of Aβ aggregates may provide opportunities for alleviating or treating AD. Here, we show that the novel protein targeting machinery from chloroplast, chloroplast signal recognition particle 43 (cpSRP43), is an ATP-independent membrane protein chaperone that can both prevent and reverse Aβ aggregation effectively. Using of thioflavin T dye, we obtained the aggregation kinetics of Aβ aggregation and determined that the chaperone prevents Aβ aggregation in a concentration-dependent manner. Size exclusion chromatography and sedimentation assays showed that 10-fold excess of cpSRP43 can keep Aβ in the soluble monomeric form. Electron microscopy showed that the fibril structure was disrupted in the presence of this chaperone. Importantly, cpSRP43 utilizes the binding energy to actively remodel the preformed Aβ aggregates without assistance by a co-chaperone and ATP, emphasizing its unique function among protein chaperones. Moreover, when sodium chloride concentration is higher than 25 mm, the Aβ aggregation rate increases drastically to form tightly associated aggregates and generate more oligomers. Our results demonstrate that the presence of cpSRP43 and low NaCl levels inhibit or retard Aβ peptide aggregation, potentially opening new avenues to strategically develop an effective treatment for AD.
Insights
Chloroplast signal recognition particle 43 (cpSRP43) prevents and reverses amyloid beta (Aβ) aggregation, a key factor in Alzheimer
Area of Science:
- Biochemistry
- Neuroscience
- Molecular Biology
Background:
- Protein aggregation, particularly amyloid beta (Aβ) peptides forming plaques, is central to Alzheimer's disease (AD) pathogenesis.
- Disassembly of Aβ aggregates is a potential therapeutic strategy for AD.
Purpose of the Study:
- To investigate the potential of chloroplast signal recognition particle 43 (cpSRP43) as a novel agent to prevent and reverse Aβ aggregation.
Main Methods:
- Thioflavin T dye assay to monitor Aβ aggregation kinetics.
- Size exclusion chromatography and sedimentation assays to assess Aβ solubility.
- Electron microscopy to visualize the effect of cpSRP43 on Aβ fibril structure.
Main Results:
- cpSRP43 effectively prevents and reverses Aβ aggregation in a concentration-dependent manner.
- cpSRP43 maintains Aβ in a soluble monomeric form and disrupts existing fibril structures.
- cpSRP43 functions ATP-independently, utilizing binding energy for aggregate remodeling.
- Low sodium chloride (NaCl) levels (<25 mM) combined with cpSRP43 inhibit Aβ aggregation.
Conclusions:
- cpSRP43 is a potent ATP-independent chaperone capable of inhibiting and reversing Aβ aggregation.
- The findings suggest cpSRP43 and controlled NaCl levels as potential therapeutic avenues for Alzheimer's disease.
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