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Preparation of Oligomeric β-amyloid1-42 and Induction of Synaptic Plasticity Impairment on Hippocampal Slices
Published on: July 14, 2010
N-terminal domain of myelin basic protein inhibits amyloid beta-protein fibril assembly
Mei-Chen Liao1, Michael D Hoos, Darryl Aucoin
1Department of Neurosurgery and Medicine, Stony Brook University, Stony Brook, New York 11794, USA.
Abstract:
Accumulation of amyloid β-protein (Aβ) into brain parenchymal plaques and the cerebral vasculature is a pathological feature of Alzheimer disease and related disorders. Aβ peptides readily form β-sheet-containing oligomers and fibrils. Previously, we reported a strong interaction between myelin basic protein (MBP) and Aβ peptides that resulted in potent inhibition of fibril assembly (Hoos, M. D., Ahmed, M., Smith, S. O., and Van Nostrand, W. E. (2007) J. Biol. Chem. 282, 9952-9961; Hoos, M. D., Ahmed, M., Smith, S. O., and Van Nostrand, W. E. (2009) Biochemistry 48, 4720-4727). MBP is recognized as a highly post-translationally modified protein. In the present study, we demonstrate that human MBP purified from either brain or a bacterial recombinant expression system comparably bound to Aβ and inhibited Aβ fibril assembly indicating that post-translational modifications are not required for this activity. We also show that purified mouse brain MBP and recombinantly expressed mouse MBP similarly inhibited Aβ fibril formation. Through a combination of biochemical and ultrastructural techniques, we demonstrate that the binding site for Aβ is located in the N-terminal 64 amino acids of MBP and that a stable peptide (MBP1) comprising these residues was sufficient to inhibit Aβ fibrillogenesis. Under conditions comparable with those used for Aβ, the fibrillar assembly of amylin, another amyloidogenic peptide, was not inhibited by MBP1, although MBP1 still bound to it. This observation suggests that the potent inhibitory effect of MBP on fibril formation is not general to amyloidogenic peptides. Finally, MBP1 could prevent the cytotoxic effects of Aβ in primary cortical neurons. Our findings suggest that inhibition of Aβ fibril assembly by MBP, mediated through its N-terminal domain, could play a role in influencing amyloid formation in Alzheimer disease brain and corresponding mouse models.
Insights
Myelin basic protein (MBP) inhibits amyloid-beta (Aβ) fibril assembly, a key process in Alzheimer disease. Its N-terminal domain is sufficient for this effect, suggesting a therapeutic role.
Area of Science:
- Neuroscience
- Biochemistry
- Molecular Biology
Background:
- Alzheimer disease is characterized by amyloid-beta (Aβ) accumulation in the brain.
- Aβ peptides form toxic oligomers and fibrils, contributing to disease pathology.
- Myelin basic protein (MBP) has previously shown interaction with Aβ, inhibiting fibril formation.
Purpose of the Study:
- To determine if post-translational modifications of MBP are necessary for its Aβ inhibitory activity.
- To identify the specific region of MBP responsible for binding and inhibiting Aβ fibril assembly.
- To investigate the potential of MBP and its fragments in preventing Aβ-induced cytotoxicity.
Main Methods:
- Biochemical assays to assess MBP-Aβ binding and Aβ fibril assembly inhibition.
- Purification of human and mouse MBP from brain tissue and recombinant expression systems.
- Ultrastructural techniques to analyze Aβ fibril formation.
- Testing the inhibitory effects of MBP and its N-terminal peptide (MBP1) on amylin fibril assembly.
- Assessment of MBP1's neuroprotective effects against Aβ in primary cortical neurons.
Main Results:
- Both native and recombinantly expressed human and mouse MBP comparably inhibited Aβ fibril assembly, indicating post-translational modifications are not required.
- The N-terminal 64 amino acids of MBP (MBP1) were identified as the binding site for Aβ and were sufficient to inhibit Aβ fibrillogenesis.
- MBP1 inhibited Aβ fibril formation but not amylin fibril assembly, suggesting specificity.
- MBP1 demonstrated neuroprotective effects against Aβ-induced cytotoxicity in neurons.
Conclusions:
- The N-terminal domain of MBP is crucial for inhibiting Aβ fibril assembly.
- MBP's ability to inhibit Aβ aggregation may be a significant factor in Alzheimer disease pathogenesis.
- MBP and its N-terminal fragment represent potential therapeutic targets for Alzheimer disease.
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