Biological Quantum Gravitational State Transfer (BQGST): A Unified Theoretical Framework for Macroscopic Quantum Teleportation via Gravitational Field Entanglement and Biological Quantum Substrates

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Autor principal: Barilla, Joseph
Formato: Recurso digital
Lenguaje:inglés
Publicado: Zenodo 2026
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author Barilla, Joseph
author_facet Barilla, Joseph
contents <p>We present Biological Quantum Gravitational State Transfer (BQGST), a unified theoretical framework proposing a mechanism for macroscopic quantum teleportation exploiting the intersection of quantum gravity, quantum biology, and quantum information theory. The framework identifies biological systems — specifically microtubules, DNA, cryptochrome proteins, and biophoton emission networks — as naturally evolved quantum gravitational interfaces capable of encoding, transmitting, and reconstructing the complete quantum information pattern of an organism via superposed gravitational fields and entangled spacetime topology.</p> <p>Drawing on Penrose-Hameroff Orchestrated Objective Reduction (Orch-OR), the ER=EPR conjecture (Maldacena & Susskind 2013), the Bekenstein-Hawking holographic entropy bound, and the Bose-Marletto-Vedral (BMV) gravitational entanglement mechanism, BQGST proposes a five-stage transfer protocol. The central contribution is a reframing of the scaling problem: rather than maintaining 10^27 individual atomic quantum states, BQGST encodes and transmits a gravitational information geometry derived from the holographic boundary data of the biological system — reducing the information-theoretic complexity from volumetric to surface-area scaling. Four experimentally testable predictions are presented alongside a formal mathematical treatment of each framework stage.</p>
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spellingShingle Biological Quantum Gravitational State Transfer (BQGST): A Unified Theoretical Framework for Macroscopic Quantum Teleportation via Gravitational Field Entanglement and Biological Quantum Substrates
Barilla, Joseph
quantum gravity
quantum teleportation
quantum biology
Orchestrated Objective Reduction
Orch-OR
ER=EPR
holographic principle
gravitational entanglement
biophotons
microtubules
macroscopic quantum coherence
BQGST
Bekenstein-Hawking
BMV mechanism
Penrose-Hameroff
<p>We present Biological Quantum Gravitational State Transfer (BQGST), a unified theoretical framework proposing a mechanism for macroscopic quantum teleportation exploiting the intersection of quantum gravity, quantum biology, and quantum information theory. The framework identifies biological systems — specifically microtubules, DNA, cryptochrome proteins, and biophoton emission networks — as naturally evolved quantum gravitational interfaces capable of encoding, transmitting, and reconstructing the complete quantum information pattern of an organism via superposed gravitational fields and entangled spacetime topology.</p> <p>Drawing on Penrose-Hameroff Orchestrated Objective Reduction (Orch-OR), the ER=EPR conjecture (Maldacena & Susskind 2013), the Bekenstein-Hawking holographic entropy bound, and the Bose-Marletto-Vedral (BMV) gravitational entanglement mechanism, BQGST proposes a five-stage transfer protocol. The central contribution is a reframing of the scaling problem: rather than maintaining 10^27 individual atomic quantum states, BQGST encodes and transmits a gravitational information geometry derived from the holographic boundary data of the biological system — reducing the information-theoretic complexity from volumetric to surface-area scaling. Four experimentally testable predictions are presented alongside a formal mathematical treatment of each framework stage.</p>
title Biological Quantum Gravitational State Transfer (BQGST): A Unified Theoretical Framework for Macroscopic Quantum Teleportation via Gravitational Field Entanglement and Biological Quantum Substrates
topic quantum gravity
quantum teleportation
quantum biology
Orchestrated Objective Reduction
Orch-OR
ER=EPR
holographic principle
gravitational entanglement
biophotons
microtubules
macroscopic quantum coherence
BQGST
Bekenstein-Hawking
BMV mechanism
Penrose-Hameroff
url https://doi.org/10.5281/zenodo.19273284