Unni Mythreyi, Savliwala Shehaab, Partain Brittany D, Maldonado-Camargo Lorena, Zhang Qingteng, Narayanan Suresh, Dufresne Eric M, Ilavsky Jan, Grybos Pawel, Koziol Anna, Maj Piotr, Szczygiel Robert, Allen Kyle D, Rinaldi-Ramos Carlos M
Department of Chemical Engineering, University of Florida, Gainesville, FL 32611, USA.
J. Crayton Pruitt Family Department of Biomedical Engineering, University of Florida, Gainesville, FL 32611, USA.
Sci Adv. 2021 Jun 30;7(27). doi: 10.1126/sciadv.abf8467. Print 2021 Jun.
Nanoparticles are under investigation as diagnostic and therapeutic agents for joint diseases, such as osteoarthritis. However, there is incomplete understanding of nanoparticle diffusion in synovial fluid, the fluid inside the joint, which consists of a mixture of the polyelectrolyte hyaluronic acid, proteins, and other components. Here, we show that rotational and translational diffusion of polymer-coated nanoparticles in quiescent synovial fluid and in hyaluronic acid solutions is well described by the Stokes-Einstein relationship, albeit with an effective medium viscosity that is much smaller than the macroscopic low shear viscosity of the fluid. This effective medium viscosity is well described by an equation for the viscosity of dilute polymer chains, where the additional viscous dissipation arises because of the presence of the polymer segments. These results shed light on the diffusive behavior of polymer-coated inorganic nanoparticles in complex and crowded biological environments, such as in the joint.
纳米颗粒正在作为关节疾病(如骨关节炎)的诊断和治疗剂进行研究。然而,人们对纳米颗粒在滑液(关节内的液体,由聚电解质透明质酸、蛋白质和其他成分混合而成)中的扩散了解并不完全。在这里,我们表明,聚合物包覆的纳米颗粒在静态滑液和透明质酸溶液中的旋转和平动扩散可以用斯托克斯-爱因斯坦关系很好地描述,尽管有效介质粘度远小于流体的宏观低剪切粘度。这种有效介质粘度可以用稀聚合物链粘度方程很好地描述,其中额外的粘性耗散是由于聚合物链段的存在而产生的。这些结果揭示了聚合物包覆的无机纳米颗粒在复杂且拥挤的生物环境(如关节中)中的扩散行为。