Structuring Role of Tau-Tubulin Co-Condensates in Early Microtubule Organization
Lee-Eom, C.; Jung, J.; Park, C.; Shon, M. J.
Show abstract
Tau protein, a key microtubule-associated protein in neurons, is traditionally known for stabilizing microtubules. However, its recently discovered ability to undergo liquid-liquid phase separation (LLPS) reveals a broader, dynamic role in nucleating and organizing microtubule networks. Here, using a combination of real-time imaging and a geometric approach based on Voronoi tessellation, we examined how tau condensation leads to clustering and local tubulin enrichment, supporting microtubule organization. Our observations show that tau-tubulin co-condensates not only initiate nucleation and branching of microtubules but also drive the networks gradual evolution through a "dynamic weaving" process. By generating Voronoi diagrams from super-resolution and confocal microscopy images of the stabilized network, we quantitatively mapped tubulin enrichment as a function of tau density, revealing that high-density tau clusters, approximately 0.2 m in size, correlate with tubulin-rich spots at equilibrium. Overall, these findings provide new insights into tau-tubulin co-condensates as dynamic structuring elements, whose liquid-like properties continuously reshape the microtubule network, creating a flexible and adaptive architecture essential for cellular function.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Multiple Kinesins Induce Tension for Smooth Cargo Transport 95%
- Changes in seam number and location induce holes within microtubules assembled from porcine brain tubulin and in Xenopus egg cytoplasmic extracts 95%
- The transition state and regulation of γ-TuRC-mediated microtubule nucleation revealed by single molecule microscopy 95%
Similar papers in this journal
- Myosin-driven actin-microtubule networks exhibit self-organized contractile dynamics 94%
- Evolutionarily conserved principles of ESCRT-III-mediated membrane remodelling revealed by a two-subunit Asgard archaeal system 94%
- Synthetic control of actin polymerization and symmetry breaking in activeprotocells 93%
Similar papers in this journal
- Radial contractility of Actomyosin-II rings facilitates cargo trafficking and maintains axonal structural stability following cargo-induced transient axonal expansion 95%
- CSPP1 stabilizes growing microtubule ends and damaged lattices from the luminal side. 94%
- Cryo-electron tomography reveals postsynaptic nanoblocks in excitatory synapses 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.