Integrated Formulation of the In Vivo Analog Quantum Syn chronizer (BioQPU) Hypothesis: A Life Support System Based on Phosphate Nuclear Spins in LUCA and "The LUCA Theo rem"

How life managed to maintain self-organization and highly precise metabolic control against increasing entropy in a primordial Earth environment—characterized by ambient temperatures, moisture, and severe thermal noise (phase jitter)—remains one of the greatest challenges in modern biophysics. This paper advances the hypothesis that the core of intracellular metabolism relies on the function of an “analog quantum synchronizer (Bio-QPU),” proposing a model that redefines the essence of life as a self-organizing system that continuously synchronizes (phase locks) its local time with the absolute time of the universe (environmental waves) while constantly rejecting internal phase noise. We discuss the physical mechanism wherein the phosphorus (31P) nuclear spin, selected by the Last Universal Common Ancestor (LUCA), constituted the primordial quantum resonance hardware, and how its trajectory of activity is continuously recorded as a “single life wave function (Life Code: the drive recorder of life)” while accompanied by “selective decoherence” that selectively granulates only the necessary dimensions, maintaining the rich background information as waves

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-05
DOI
https://doi.org/10.5281/zenodo.23150988
Primary Topic
Origins and Evolution of Life
Type
preprint
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Integrated Formulation of the In Vivo Analog Quantum Syn chronizer (BioQPU) Hypothesis: A Life Support System Based on Phosphate Nuclear Spins in LUCA and "The LUCA Theo rem"

kotoan.gg
Zenodo (CERN European Organization for Nuclear Research)
Origins and Evolution of Life
preprint

Integrated Formulation of the In Vivo Analog Quantum Syn chronizer (BioQPU) Hypothesis: A Life Support System Based on Phosphate Nuclear Spins in LUCA and "The LUCA Theo rem"

kotoan.gg
preprint en

Abstract

How life managed to maintain self-organization and highly precise metabolic control against increasing entropy in a primordial Earth environment—characterized by ambient temperatures, moisture, and severe thermal noise (phase jitter)—remains one of the greatest challenges in modern biophysics. This paper advances the hypothesis that the core of intracellular metabolism relies on the function of an “analog quantum synchronizer (Bio-QPU),” proposing a model that redefines the essence of life as a self-organizing system that continuously synchronizes (phase locks) its local time with the absolute time of the universe (environmental waves) while constantly rejecting internal phase noise. We discuss the physical mechanism wherein the phosphorus (31P) nuclear spin, selected by the Last Universal Common Ancestor (LUCA), constituted the primordial quantum resonance hardware, and how its trajectory of activity is continuously recorded as a “single life wave function (Life Code: the drive recorder of life)” while accompanied by “selective decoherence” that selectively granulates only the necessary dimensions, maintaining the rich background information as waves

Zenodo (CERN European Organization for Nuclear Research)
Origins and Evolution of Life
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Integrated Formulation of the In Vivo Analog Quantum Syn chronizer (BioQPU) Hypothesis: A Life Support System Based on Phosphate Nuclear Spins in LUCA and "The LUCA Theo rem" — kotoan.gg · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS