Related Experiment Video
Updated: Jun 23, 2026

Optimizing Tubulin Yield from Porcine Brain Tissue
Published on: October 11, 2024
Prion protein region 23-32 interacts with tubulin and inhibits microtubule assembly
Katarzyna M Osiecka1, Hanna Nieznanska, Krzysztof J Skowronek
1Department of Biochemistry, Nencki Institute of Experimental Biology, Warsaw, Poland.
Abstract:
In previous studies we have demonstrated that prion protein (PrP) binds directly to tubulin and this interaction leads to the inhibition of microtubule formation by inducement of tubulin oligomerization. This report is aimed at mapping the regions of PrP and tubulin involved in the interaction and identification of PrP domains responsible for tubulin oligomerization. Preliminary studies focused our attention to the N-terminal flexible part of PrP encompassing residues 23-110. Using a panel of deletion mutants of PrP, we identified two microtubule-binding motifs at both ends of this part of the molecule. We found that residues 23-32 constitute a major site of interaction, whereas residues 101-110 represent a weak binding site. The crucial role of the 23-32 sequence in the interaction with tubulin was confirmed employing chymotryptic fragments of PrP. Surprisingly, the octarepeat region linking the above motifs plays only a supporting role in the interaction. The binding of Cu(2+) to PrP did not affect the interaction. We also demonstrate that PrP deletion mutants lacking residues 23-32 exhibit very low efficiency in the inducement of tubulin oligomerization. Moreover, a synthetic peptide corresponding to this sequence, but not that identical with fragment 101-110, mimics the effects of the full-length protein on tubulin oligomerization and microtubule assembly. At the cellular level, peptide composed of the PrP motive 23-30 and signal sequence (1-22) disrupted the microtubular cytoskeleton. Using tryptic and chymotryptic fragments of alpha- and beta-tubulin, we mapped the docking sites for PrP within the C-terminal domains constituting the outer surface of microtubule.
Insights
Prion protein (PrP) binds tubulin, inhibiting microtubule formation. The PrP N-terminal region, specifically residues 23-32, is crucial for this interaction and tubulin oligomerization, impacting the cellular microtubule cytoskeleton.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Prion protein (PrP) interaction with tubulin inhibits microtubule formation.
- This interaction is mediated by PrP-induced tubulin oligomerization.
Purpose of the Study:
- Map the specific regions of PrP and tubulin involved in their interaction.
- Identify the PrP domains responsible for inducing tubulin oligomerization.
Main Methods:
- Utilized a panel of prion protein (PrP) deletion mutants.
- Employed chymotryptic and tryptic fragments of PrP and tubulin.
- Synthesized peptides corresponding to specific PrP sequences.
Main Results:
- Identified two microtubule-binding motifs in the N-terminal flexible part of PrP (residues 23-110).
- Residues 23-32 constitute the major interaction site, crucial for tubulin oligomerization and microtubule disruption.
- Residues 101-110 represent a weaker binding site; the octarepeat region plays a supporting role.
- Copper binding to PrP did not affect tubulin interaction.
- A synthetic peptide (23-30) mimicked full-length PrP's effects on tubulin and microtubules.
- PrP fragments bind to C-terminal domains of alpha- and beta-tubulin.
Conclusions:
- The N-terminal sequence 23-32 of PrP is essential for binding tubulin and inducing oligomerization, thereby inhibiting microtubule assembly.
- PrP interaction with tubulin involves specific binding sites on both proteins, impacting the cellular microtubule cytoskeleton.
More Related Videos
08:02Extracting Modified Microtubules from Mammalian Cells to Study Microtubule-Protein Complexes by Cryo-Electron Microscopy
Published on: March 3, 2023
07:21Quantitative Microtubule Fractionation Technique to Separate Stable Microtubules, Labile Microtubules, and Free Tubulin in Mouse Tissues
Published on: November 17, 2023
Related Concept Videos
Destabilization of Microtubules
Microtubule Associated Proteins (MAPs)
Drugs that Stabilize Microtubules
Microtubule Instability
Microtubule Instability
Microtubule Formation