Related Experiment Video
Updated: Jul 28, 2026

Preparation and Delivery of Protein Microcrystals in Lipidic Cubic Phase for Serial Femtosecond Crystallography
Published on: September 20, 2016
Quantum-topological simulation of Berry phase-induced fentanyl-μ-opioid receptor dissociation via terahertz vortex
1Photonics and Theoretical Solid State Physics Unit, Department of Physics, Ignatius Ajuru University of Education, Rumuolumeni, Nigeria. moses.udoisoh@iaue.edu.ng.
Context:
Fentanyl's sub-nanomolar affinity and ultra-slow dissociation from the μ-opioid receptor (μOR) limit the efficacy of pharmacological antagonists like naloxone in acute overdose. We propose a non-pharmacological strategy in which structured terahertz (THz) vortex fields imprint a geometric (Berry) phase on the ligand-receptor complex to selectively bias unbinding pathways without bulk heating. This approach targets the quantum-coherent control of the dissociation coordinate through topological phase engineering.
Method:
We formulated the quantum dynamics on a curved 2D reaction manifold encoding proton transfer distance and ligand torsion. The system was driven by a near-field THz vortex (topological charge ℓ ≠ 0) and evolved via the covariant time-dependent Schrödinger equation, solved with a Crank-Nicolson propagator and absorbing boundaries. Berry phases were computed on adiabatic cycles, and dissociation rate enhancement was quantified through probability flux analysis incorporating solvent recapture effects. The model parameters were derived from cryo-EM and QM/MM data to ensure biochemical realism. Simulations indicate an effective torsional barrier reduction of 0.06 eV ( at 300 K) within the 1-1.5 THz band, sufficient to accelerate μOR-fentanyl escape by∼10x at fixed temperature. A value consistent with non-thermal, frequency-addressable biasing of dissociation pathways. These findings provide a quantum-coherent, non-pharmacological strategy for disengaging potent opioid ligands, offering a new pathway for photonic control of Biochemical interactions with sub-molecular precision.

