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Published on: October 10, 2017
On the Microtubule-Stabilizing Properties of a Tau Oligopeptide
1Departamento de Ciencias Químicas, Facultad de Ciencias Exactas, Universidad Andres Bello, Sede Concepción, Autopista Concepción-Talcahuano, Talcahuano 7100, Chile.
Abstract:
Preserving the integrity of neuronal microtubules (MTs) has emerged as a promising strategy to inhibit the progression of neurodegenerative disorders such as Alzheimer's disease. Such a goal could be achieved by peptides that mimic the functional role of Tau, an MT-associated protein that stabilizes MTs by dynamically binding to their outer surface. This work examines the binding properties and MT-stabilizing potential of a 27-amino acid Tau oligopeptide from 300 ns Gaussian-accelerated molecular dynamics simulations and Molecular Mechanics/Generalized Born Surface Area (MM/GBSA) calculations on octameric MT models bound to two equivalent and independent Tau peptides. Bound peptides adopted extended conformations that are highly consistent with cryo-electron microscopy reports for full-length Tau bound to MTs. Anchoring points in three consecutive tubulin subunits were identified, with a relevant contribution of the Ser419-Val435 region to α-tubulin. Tau peptides strengthen the longitudinal protein-protein contacts within the MT lattice and exert a cooperative MT-stabilizing effect in MT complexes simultaneously bonded to taxol or peloruside A. Ser phosphorylation results in a larger peptide mobility, altered interaction profiles, and MT destabilization, which are in line with the loss of MT integrity resulting from the post-translational hyperphosphorylation of Tau. Our results shed light on the MT-stabilizing potential of Tau-mimetic peptides to act as novel neuroprotective agents targeting MTs.
Insights
Tau-mimetic peptides can stabilize neuronal microtubules (MTs), offering a potential strategy against neurodegenerative diseases like Alzheimer's. These peptides mimic Tau's function, showing promise as novel neuroprotective agents.
Area of Science:
- Neuroscience
- Biophysics
- Computational Biology
Background:
- Neuronal microtubule (MT) integrity is crucial for preventing neurodegenerative disorders such as Alzheimer's disease.
- Tau protein stabilizes MTs by binding to their surface, and mimicking this function is a therapeutic strategy.
- Understanding Tau peptide interactions with MTs is key to developing new neuroprotective agents.
Purpose of the Study:
- To investigate the binding properties and MT-stabilizing potential of a Tau oligopeptide.
- To explore the molecular mechanisms underlying Tau peptide-MT interactions.
- To assess the impact of phosphorylation on Tau peptide efficacy.
Main Methods:
- Gaussian-accelerated molecular dynamics simulations (300 ns).
- Molecular Mechanics/Generalized Born Surface Area (MM/GBSA) calculations.
- Modeling of octameric MTs bound to Tau peptides.
Main Results:
- Tau peptides adopt extended conformations, consistent with cryo-EM data of full-length Tau.
- Identified specific anchoring points within tubulin subunits, highlighting the Ser419-Val435 region's role.
- Demonstrated that Tau peptides strengthen MT lattice contacts and cooperatively stabilize MTs, even with drugs like taxol.
Conclusions:
- Tau-mimetic peptides show significant potential for stabilizing neuronal microtubules.
- These peptides can act as novel neuroprotective agents targeting MTs in neurodegenerative diseases.
- Phosphorylation negatively impacts peptide binding and MT stabilization, mirroring Tau's pathological behavior.
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