Quantifying the Emergence of Selection Prior to Biological Evolution

Fuente: arXiv
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Main Authors: Jirasek, Michael, Sharma, Abhishek, Wong, Mary, Munro, Jennifer, Cronin, Leroy
Format: Preprint
Published: 2025
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_version_ 1866908726135357440
author Jirasek, Michael
Sharma, Abhishek
Wong, Mary
Munro, Jennifer
Cronin, Leroy
author_facet Jirasek, Michael
Sharma, Abhishek
Wong, Mary
Munro, Jennifer
Cronin, Leroy
contents Selection is central to biological evolution, yet there has been no general experimental framework for quantifying selection in chemical systems before life. Here we demonstrate that selection in a prebiological chemical system can be directly quantified. Assembly Theory predicts that selection corresponds to a transition from undirected to directed exploration of chemical possibility space, measurable through the amount of Assembly, A, which integrates molecular assembly index with observed copy number. By analysing peptide ensembles produced under diverse polymerisation conditions, we show that undirected reactions explore sequence space almost uniformly, yielding exploration ratios of 0.85-0.95, whereas reactions influenced by evolved proteases generate markedly lower ratios (0.51-0.75) and elevated A, consistent with selective reinforcement of specific assembly pathways. Across multiple environments and amino-acid combinations, the exploration ratio and ensemble assembly A robustly distinguish directed from undirected exploration, establishing a general, experimentally tractable metric for detecting and measuring selection in chemical evolution.
format Preprint
id arxiv_https___arxiv_org_abs_2512_18752
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantifying the Emergence of Selection Prior to Biological Evolution
Jirasek, Michael
Sharma, Abhishek
Wong, Mary
Munro, Jennifer
Cronin, Leroy
Molecular Networks
Biological Physics
Populations and Evolution
Selection is central to biological evolution, yet there has been no general experimental framework for quantifying selection in chemical systems before life. Here we demonstrate that selection in a prebiological chemical system can be directly quantified. Assembly Theory predicts that selection corresponds to a transition from undirected to directed exploration of chemical possibility space, measurable through the amount of Assembly, A, which integrates molecular assembly index with observed copy number. By analysing peptide ensembles produced under diverse polymerisation conditions, we show that undirected reactions explore sequence space almost uniformly, yielding exploration ratios of 0.85-0.95, whereas reactions influenced by evolved proteases generate markedly lower ratios (0.51-0.75) and elevated A, consistent with selective reinforcement of specific assembly pathways. Across multiple environments and amino-acid combinations, the exploration ratio and ensemble assembly A robustly distinguish directed from undirected exploration, establishing a general, experimentally tractable metric for detecting and measuring selection in chemical evolution.
title Quantifying the Emergence of Selection Prior to Biological Evolution
topic Molecular Networks
Biological Physics
Populations and Evolution
url https://arxiv.org/abs/2512.18752