Fast cell wall softening causes Venus flytrap closure

Быстрая разрыхление клеточной стенки вызывает закрытие мухоловки Венеры
Joël Marthelot, Jeongeun Ryu, Mathieu Colombani, Corentin Mollier, Yoël Forterre
2026-06-11

Venus flytrap closureelastic instabilityepidermal cell wall softeningnonhydraulic mechanismrapid wall mechanics modulation
Plants can move rapidly without muscles, as seen in the Venus flytrap's snapping lobes-a long-standing puzzle in plant biomechanics. Trap closure involves an elastic instability, but the active mechanical driver has remained elusive. Using in situ hydraulic and mechanical measurements, we identified the motor driving this transition. Closure occurs too quickly to be explained by water transport, revealing a distinct, nonhydraulic mechanism: a rapid (about one second) softening of the epidermal cell wall, releasing elastic energy stored in the trap. This represents the fastest modulation of wall mechanics reported in plants. Our finding reveals a mode of plant motility based on dynamic tuning of material properties, suggesting principles for muscle-free, bioinspired actuation.
1
Dynamic tuning of material properties (cell wall softening) provides a muscle-free mode of plant motility with bioinspired actuation implications.
2
Epidermal cell wall softening occurs in about one second, releasing stored elastic energy to power closure.
3
This rapid softening is the fastest modulation of plant cell wall mechanics reported.
4
Trap closure involves an elastic instability that is triggered by rapid epidermal cell wall softening.
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Venus flytrap closure is driven by an active motor distinct from hydraulic water transport.

Venus flytrap (trap lobe) epidermal cell walls during trap closure

Rapid (≈1 s) softening of the epidermal cell wall as the active, nonhydraulic mechanical driver that releases stored elastic energy causing trap closure

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2026-06-11
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Authors
Joël Marthelot
Jeongeun Ryu
Mathieu Colombani
Corentin Mollier
Yoël Forterre
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