Membrane composition and thermodynamic identity as boundaries of life for synthetic cell research

Biological membranes are more than structural boundaries: they are the thermodynamic interfaces that enable living systems to maintain a state far from equilibrium, continuously exchanging matter and energy with their environment. In this review, we explore three interconnected themes. First, we examine the biochemical composition of cell membranes, with particular focus on Escherichia coli, including lipid diversity, membrane asymmetry, and homeoviscous adaptation. Second, we reframe the membrane as the physical representation of the Markov blanket, the statistical boundary separating internal from external states, and discuss how biological systems minimize free energy to maintain homeostasis. Third, we evaluate synthetic cell research strategies for reconstructing life-like systems, highlighting how out-of-equilibrium approaches, based on selective membrane transport coupled to metabolic networks, may recapitulate the thermodynamic identity of living cells.

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Publication Details

Journal
FEBS Letters
Published
2026-09-25
DOI
https://doi.org/10.1002/1873-3468.70476
Primary Topic
Lipid Membrane Structure and Behavior
Type
article
Field-Weighted Citation Impact
0.00
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article

Membrane composition and thermodynamic identity as boundaries of life for synthetic cell research

Bert Poolman, Caterina Presutti
FEBS Letters
Lipid Membrane Structure and Behavior
article

Membrane composition and thermodynamic identity as boundaries of life for synthetic cell research

Bert Poolman, Caterina Presutti
article en

Abstract

Biological membranes are more than structural boundaries: they are the thermodynamic interfaces that enable living systems to maintain a state far from equilibrium, continuously exchanging matter and energy with their environment. In this review, we explore three interconnected themes. First, we examine the biochemical composition of cell membranes, with particular focus on Escherichia coli, including lipid diversity, membrane asymmetry, and homeoviscous adaptation. Second, we reframe the membrane as the physical representation of the Markov blanket, the statistical boundary separating internal from external states, and discuss how biological systems minimize free energy to maintain homeostasis. Third, we evaluate synthetic cell research strategies for reconstructing life-like systems, highlighting how out-of-equilibrium approaches, based on selective membrane transport coupled to metabolic networks, may recapitulate the thermodynamic identity of living cells.

FEBS Letters
University of Groningen (NL)
Life in Land
Openalex Percentile: Top 19%
Lipid Membrane Structure and Behavior
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Membrane composition and thermodynamic identity as boundaries of life for synthetic cell research — Bert Poolman, Caterina Presutti · FEBS Letters (2026) | TGRS Research Map | TGRS