English

Softness and Hydrodynamic Interactions Regulate Lipoprotein Transport in Crowded Yolk Environments

Soft Condensed Matter 2025-05-29 v1

Abstract

Low-density lipoproteins (LDLs) serve as nutrient reservoirs in egg yolk for embryonic development and as promising drug carriers. Both roles critically depend on their mobility in densely crowded biological environments. Under these crowded conditions, diffusion is hindered by transient confinement within dynamic cages formed by neighboring particles, driven by solvent-mediated hydrodynamic interactions and memory effects -- phenomena that have remained challenging to characterize computationally and experimentally. Here, we employ megahertz X-ray photon correlation spectroscopy to directly probe the cage dynamics of LDLs in yolk-plasma across various concentrations. We find that LDLs undergo anomalous diffusion, experiencing \approx 100-fold reduction in self-diffusion at high concentrations compared to dilute solutions. This drastic slowing-down is attributed to a combination of hydrodynamic interactions, direct particle-particle interactions, and the inherent softness of LDL particles. Despite reduced dynamics, yolk-plasma remains as a liquid, yet sluggish, balancing dense packing, structural stability, and fluidity essential for controlled lipid release during embryogenesis.

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Cite

@article{arxiv.2505.22520,
  title  = {Softness and Hydrodynamic Interactions Regulate Lipoprotein Transport in Crowded Yolk Environments},
  author = {Nimmi Das Anthuparambil and Michelle Dargasz and Sonja Timmermann and Anita Girelli and Sebastian Retzbach and Johannes Möller and Wonhyuk Jo and Agha Mohammad Raza and Aliaksandr Leonau and James Wrigley and Frederik Unger and Maddalena Bin and Prince Prabhu Rajaiah and Iason Andronis and William Chèvremont and Jörg Hallmann and Angel Rodriguez-Fernandez and Jan-Etienne Pudell and Felix Brausse and Ulrike Boesenberg and Mohamed Youssef and Roman Shayduk and Rustam Rysov and Anders Madsen and Felix Lehmkühler and Michael Paulus and Fajun Zhang and Fivos Perakis and Frank Schreiber and Christian Gutt},
  journal= {arXiv preprint arXiv:2505.22520},
  year   = {2025}
}

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59 pages