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March 5, 20260 citationsOpen Access

Topological Coherence Domains in Microtubules: A Metriplectic and Non-Linear Sigma Model Approach

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DNDávid Návratil

Key Points

  • To derive a topological protection mechanism for vibrational modes in microtubules using advanced theoretical models.
  • Utilized the metriplectic formalism to analyze microtubules.
  • Applied a non-linear sigma model to demonstrate topological features.
  • Calculated the Berry connection and QHF exchange gap from dipole states.
  • Identified a Berry connection of approximately 2.82 from dipole rotations.
  • Projected collective modes into the Lowest Landau Level with a QHF gap of about 0.339 eV.
  • Showed that the topological winding number remains invariant under decoherence effects.

Abstract

This paper provides a rigorous first-principles derivation of a topological protection mechanism for collective vibrational modes in microtubules. Addressing the standard Markovian decoherence limits in biological matter, the work utilizes the metriplectic formalism and a non-linear sigma model to demonstrate how the helical symmetry of the tubulin lattice generates a synthetic gauge field. Key technical contributions include: The derivation of a Berry connection (A_ 2. 82) from the adiabatic rotation of dipole ground states. Projection of collective modes into the Lowest Landau Level (LLL) with a calculated Quantum Hall Ferromagnet (QHF) exchange gap of approximately 0. 339 eV. Analytical proof within the metriplectic framework that the topological winding number Q remains invariant under the dissipative influence of the sub-Ohmic hydration shell. A predicted extension of phase-coherence lifetimes to the sub-millisecond range (0. 38 ms). The model offers specific, falsifiable predictions, including a Topologically Induced Transparency (TIT) window near 0. 73 THz, characterized by a resonance frequency shift proportional to the inverse square of the domain length (L^-2).

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Cite This Study

Dávid Návratil (2026) studied this question.

synapsesocial.com/papers/69a91d9bd6127c7a504c08f6https://doi.org/10.5281/zenodo.18851306
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