A Unifying Topological Framework for Prebiotic Emergence: Integrating Hybrid Co-evolution with Rough Operator Algebra and Complex Torsion

The structural limitations of the pure RNA World Hypothesis—namely, inherent chemical instability due to the 2’-OH group, insurmountable error thresholds, and the strand dissociation problem—pose significant barriers to the prebiotic emergence of life. This paper deductively constructs an elevated theoretical framework utilizing Rough Operator Algebra (ROA), the Seonggil Theory of Complex Torsion (STCT), and principles of structural decom position. By replacing the pure RNA paradigm with a synergistic Hybrid Information Unit (HIU) model (RNA-peptide-lipid), we demonstrate mathematically that functional emer-gence shifts from an NP-hard random search space into a biologically viable, polynomial-time determinism driven by non-commutative environmental selection operators.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-30
DOI
https://doi.org/10.5281/zenodo.23055496
Primary Topic
Origins and Evolution of Life
Type
preprint
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A Unifying Topological Framework for Prebiotic Emergence: Integrating Hybrid Co-evolution with Rough Operator Algebra and Complex Torsion

Seonggil Lee
Zenodo (CERN European Organization for Nuclear Research)
Origins and Evolution of Life
preprint

A Unifying Topological Framework for Prebiotic Emergence: Integrating Hybrid Co-evolution with Rough Operator Algebra and Complex Torsion

Seonggil Lee
preprint en

Abstract

The structural limitations of the pure RNA World Hypothesis—namely, inherent chemical instability due to the 2’-OH group, insurmountable error thresholds, and the strand dissociation problem—pose significant barriers to the prebiotic emergence of life. This paper deductively constructs an elevated theoretical framework utilizing Rough Operator Algebra (ROA), the Seonggil Theory of Complex Torsion (STCT), and principles of structural decom position. By replacing the pure RNA paradigm with a synergistic Hybrid Information Unit (HIU) model (RNA-peptide-lipid), we demonstrate mathematically that functional emer-gence shifts from an NP-hard random search space into a biologically viable, polynomial-time determinism driven by non-commutative environmental selection operators.

Zenodo (CERN European Organization for Nuclear Research)
Life in Land
Origins and Evolution of Life
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