Microtubule Binding of a Tau Peptide Monitored through Fluorine NMR Probes

Abstract Binding of tau protein to microtubule (MT) supports the stability and cellular functions of MT. Aberrations in tau-MT binding are linked to several neurodegenerative diseases. Little is known about how regions outside the four canonical MT-binding repeat regions of tau protein (R1–R4) are involved in MT binding. Here, we synthesize a tau protein fragment (tau368–412, R’ domain), a flanking domain downstream of the R4 domain, without and with fluorine labels incorporated at its aromatic (Phe378, Tyr394) and proline (Pro397, Pro405, with 2S,4R stereochemistry) residues. The 1H and 13C chemical shift data point to slight secondary structural propensities in tau peptide and confirm that its predominantly disordered structure is largely preserved after fluorination. The NMR chemical shift and NOESY data detect and quantify cis-Pro at Pro397 and Pro405 positions, and the MD simulation data suggest that the cis/trans isomerization of these two prolines could alter the conformational ensemble of the tau peptide. Through combined 1H and 13C NMR chemical shift and 19F chemical shift, relaxation, and dark-state exchange saturation transfer (DEST) analyses, we reveal a rapid exchange process between free tau peptide and a lowly populated MT-bound state that occurs on a submillisecond time scale (τex ∼ 500 μs). The 19F DEST data also demonstrate that the MT binding predominantly occurs at the N-terminal region of the tau peptide adjacent to the canonical R4 domain and that it retains a large level of side-chain dynamics in the MT-bound state. Our study provides mechanistic insight into tau-MT binding and exemplifies how novel 19F NMR-based methods enable investigating proteins in the context of challenging large systems.

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Publication Details

Journal
The Journal of Physical Chemistry B
Published
2026-09-21
DOI
https://doi.org/10.1021/acs.jpcb.6c04549
Primary Topic
Alzheimer's disease research and treatments
Type
article
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article

Microtubule Binding of a Tau Peptide Monitored through Fluorine NMR Probes

Mehdi D. Davari, Kerstin Overkamp, Nasrollah Rezaei‐Ghaleh, D. N. DHAR et al.
The Journal of Physical Chemistry B
Alzheimer's disease research and treatments
article

Microtubule Binding of a Tau Peptide Monitored through Fluorine NMR Probes

Mehdi D. Davari, Kerstin Overkamp, Nasrollah Rezaei‐Ghaleh, D. N. DHAR, Kalyan S. Chakrabarti, Luigi Russo
article en

Abstract

Abstract Binding of tau protein to microtubule (MT) supports the stability and cellular functions of MT. Aberrations in tau-MT binding are linked to several neurodegenerative diseases. Little is known about how regions outside the four canonical MT-binding repeat regions of tau protein (R1–R4) are involved in MT binding. Here, we synthesize a tau protein fragment (tau368–412, R’ domain), a flanking domain downstream of the R4 domain, without and with fluorine labels incorporated at its aromatic (Phe378, Tyr394) and proline (Pro397, Pro405, with 2S,4R stereochemistry) residues. The 1H and 13C chemical shift data point to slight secondary structural propensities in tau peptide and confirm that its predominantly disordered structure is largely preserved after fluorination. The NMR chemical shift and NOESY data detect and quantify cis-Pro at Pro397 and Pro405 positions, and the MD simulation data suggest that the cis/trans isomerization of these two prolines could alter the conformational ensemble of the tau peptide. Through combined 1H and 13C NMR chemical shift and 19F chemical shift, relaxation, and dark-state exchange saturation transfer (DEST) analyses, we reveal a rapid exchange process between free tau peptide and a lowly populated MT-bound state that occurs on a submillisecond time scale (τex ∼ 500 μs). The 19F DEST data also demonstrate that the MT binding predominantly occurs at the N-terminal region of the tau peptide adjacent to the canonical R4 domain and that it retains a large level of side-chain dynamics in the MT-bound state. Our study provides mechanistic insight into tau-MT binding and exemplifies how novel 19F NMR-based methods enable investigating proteins in the context of challenging large systems.

The Journal of Physical Chemistry B
Forschungszentrum Jülich (DE), University of Ferrara (IT), University of Pavia (IT), Leibniz Institute of Plant Biochemistry (DE), University of Campania "Luigi Vanvitelli" (IT), Tissue Dynamics (Israel) (IL), Heinrich Heine University Düsseldorf (DE)
Openalex Percentile: Top 11%
Alzheimer's disease research and treatments
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