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April 8, 2026Nano Letters0 citationsOpen Access

Hydration-Mediated Energy Landscapes Govern Rotational Flexibility in Membrane-Bound Annexin V Assemblies

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AYAyhan YurtseverKNKien Xuan NgoTSTakashi Sumikama

Key Points

  • This research aims to understand how hydration influences the stability and flexibility of annexin V assemblies on membranes.
  • Utilized 3D atomic force microscopy (3D-AFM) to visualize annexin V assemblies.
  • Conducted molecular dynamics (MD) simulations to analyze hydration effects on protein structure.
  • Examined the organization of interfacial water and its relationship with protein dynamics.
  • Identified a continuous hydration network surrounding annexin V extending into bulk solvent.
  • Observed that hydration facilitates dynamic hydrogen bonding and stabilizes protein junctions.
  • Demonstrated hydration-driven rotational flexibility of trimers, affecting membrane interactions.

Abstract

Interfacial water organization and dynamics govern protein stability and function across molecular to supramolecular scales. Annexin V (AnxA5), a membrane repair protein, forms 2D assemblies on lipid membranes, yet the hydration role in repair remains unexplored. Combining three-dimensional atomic force microscopy (3D-AFM) and molecular dynamics (MD) simulations, we resolve the 3D hydration architecture of AnxA5 assemblies at molecular resolution. AnxA5 is enveloped by a continuous, nonlayered hydration network extending 1.5-2 nm into bulk solvent, exhibiting quasi-periodic lateral organization across crystalline and noncrystalline trimer domains. MD simulations indicate this network forms dynamic hydrogen-bonded bridges that may stabilize interdomain junctions, thereby modulating the local energy landscape. This hydration-dependent configurational flexibility, coupled with thermal fluctuations, drives stochastic, reversible trimer rotation, potentially modulating membrane interactions and Ca2+ coordination. Our findings establish interfacial water as a key mediator of supramolecular organization and stabilization, proposing a mechanism for hydration-mediated conformational flexibility during Annexin-driven membrane repair.

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Cite This Study

Yurtsever et al. (2026) studied this question.

synapsesocial.com/papers/69d5f14b74eaea4b11a7ad2bhttps://doi.org/10.1021/acs.nanolett.6c00388
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