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August 19, 20260 citationsOpen Access

Mechanical Energy Flow and Dynamic Maintenance in Prebiotic Vesicles: A Minimal Non-Equilibrium Model

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PMPeter Mikuláš

Key Points

  • To determine whether continuous environmental mechanical energy flow can dynamically maintain prebiotic fatty-acid vesicles away from thermodynamic equilibrium.
  • Developed a minimal numerical non-equilibrium model coupling environmental mechanical forcing, membrane tension, tension-dependent fatty-acid incorporation, material loss, relaxation, and energy dissipation.
  • Conducted robustness tests across varied membrane loss rates, incorporation rates, and fatty-acid availability, incorporating Kelvin–Voigt viscoelasticity to analyze forcing frequency dependence.
  • Identified transitions between three distinct dynamical regimes: membrane decay, dynamic maintenance, and net membrane growth.
  • Determined a baseline critical forcing amplitude of approximately Fc = 0.3735 that yielded dynamic maintenance with essentially zero net membrane growth (ΔA ≈ 0.004).
  • Demonstrated that increasing mechanical forcing frequency under Kelvin–Voigt viscoelasticity raised both the required forcing amplitude and dissipated energy needed for membrane maintenance.

Abstract

The emergence of life may be approached not only as a chemical problem but also as a problem of maintaining organized matter away from thermodynamic equilibrium. Inspired by Prigogine's framework of dissipative structures, we developed a minimal numerical model of a prebiotic fatty-acid vesicle exposed to continuous mechanical fluctuations from its environment. The model couples environmental mechanical forcing, membrane tension, tension-dependent fatty-acid incorporation, membrane-material loss, mechanical relaxation, and energy dissipation. A distinct transition between three dynamical regimes emerged: membrane decay, dynamic maintenance, and net membrane growth. For the baseline parameter set, a critical forcing amplitude of approximately (Fc = 0. 3735) produced essentially zero net membrane growth (ΔA ≈ 0. 004). Below this threshold membrane losses exceeded incorporation, whereas above it incorporation exceeded losses. Robustness tests showed that the decay–maintenance–growth transition persisted after variations in membrane loss rate, fatty-acid incorporation rate, and fatty-acid availability. Introducing Kelvin–Voigt viscoelasticity produced a pronounced frequency dependence of the maintenance threshold. Increasing forcing frequency increased both the mechanical amplitude and dissipated energy required to maintain the vesicle. The model does not demonstrate a mechanism for the origin of life. Rather, it demonstrates a physically plausible principle: an open membrane system can possess a dynamic maintenance regime in which continuous environmental energy flow compensates structural losses and preserves organization without requiring thermodynamic equilibrium.

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Cite This Study

Peter Mikuláš (2026) studied this question.

synapsesocial.com/papers/6a85634f03308d306e2d66c1https://doi.org/10.5281/zenodo.21970085
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