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March 21, 2026Advanced Science3 citationsOpen Access

Timing Mechanotransduction: Mechanically Dynamic Biomaterials Reveal the Temporal Hierarchy of YAP/TAZ Control Nodes

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AGAlessandro GandinGVGiada VanniVTVeronica Torresan

Key Points

  • The study aims to clarify the temporal hierarchy and mechanisms of how cells respond to mechanical changes in their environment.
  • Developed polyacrylamide hydrogels to modulate substrate stiffness dynamically.
  • Conducted time-resolved analyses to observe cell responses to changing stiffness.
  • Analyzed YAP/TAZ inactivation and cytoskeletal changes in response to mechanical softening.
  • YAP/TAZ inactivation occurs abruptly at a specific stiffness threshold.
  • Peripheral focal adhesions remain stable even as cells undergo mechanical changes.
  • Focal adhesion resilience is affected by SUN2 disruption and changes in cellular contractility.
  • Nuclear flattening and adhesion collapse only occur at lower stiffness thresholds.

Abstract

ABSTRACT Mechanotransduction is a cardinal regulator of cell behavior, yet its temporal unfolding and hierarchy remain poorly defined. Here, we develop dynamically softening polyacrylamide hydrogels that enable in situ modulation of substrate stiffness across physiological ranges while preserving integrin‐mediated adhesion. Time‐resolved analyses reveal a biphasic response to extracellular softening. YAP/TAZ are abruptly inactivated at an early stiffness threshold, coincident with rapid collapse of the subnuclear adhesion–F‐actin–LINC nucleo‐cytoskeletal continuum. At this step, peripheral focal adhesions remain unexpectedly resilient, persisting while undergoing centripetal remodeling. Disrupting SUN2 lowers the mechanosensitive threshold, whereas increased contractility raises it, still in LINC‐dependent manner. Early YAP/TAZ shutoff is accompanied by rapid microtubule reorganization away from a centrosomal aster, and by AMOT accumulation. Changes in nuclear flattening, cell rounding, and peripheral adhesion collapse emerge later at lower stiffness thresholds. Mechanotransduction is directionally asymmetric when cells are challenged in situ: YAP/TAZ switch off abruptly at a defined softness threshold, whereas reactivation is efficiently achieved only by cyclic (not static) strain, consistent with ratchet‐like temporal integration. Together, these findings establish a spatiotemporal framework for dynamic mechanotransduction and prioritize the nodes that operate on physiologically relevant timescales, providing timing‐based constraints to distinguish initiating events from downstream adaptations.

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Cite This Study

Gandin et al. (2026) studied this question.

synapsesocial.com/papers/69be38356e48c4981c6787dahttps://doi.org/10.1002/advs.202515210
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