Building on recent evidence that dense Tryptophan (Trp) networks in protein lattices support room-temperature superradiance and ultrafast optical emission, we investigate the hypothesis that these emissions may serve a signaling function. Analysis of 20 cryo-EM and X-ray structures from the Protein Data Bank confirms that neural receptor and channel proteins contain 3–27 Trp residues with 1–28 quantum-coupled pairs (98% gating reliability via repetition coding over an asymmetric binary channel with zero false positives, should the proposed mechanism operate in vivo. The Trp–CCO Channel hypothesis operates at the quantum-to-classical boundary: quantum superradiance enables efficient photon generation, while classical information theory governs the signaling. Energy per bit is ~6. 23 × 10⁵ times the Landauer limit, ~16-fold more efficient than classical CMOS and consuming < 2% of the brain's 20 W budget at rest. This framework is testable via superradiance scaling and phase-interference experiments
Kumar et al. (Tue,) studied this question.
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