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血流动力学模拟切应力调控血小板膜纳米囊泡的制备及其整合素 αβ 构象。

Hemodynamic Mimic Shear Stress for Platelet Membrane Nanobubbles Preparation and Integrin αβ Conformation Regulation.

机构信息

State Key Laboratory of Bioelectronics, Jiangsu Key Laboratory for Biomaterials and Devices, School of Biological Sciences and Medical Engineering, Southeast University, Nanjing 210096, P.R. China.

Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, School of Mechanical Engineering, Southeast University, Nanjing 210009, China.

出版信息

Nano Lett. 2022 Jan 12;22(1):271-279. doi: 10.1021/acs.nanolett.1c03731. Epub 2021 Dec 13.

Abstract

Platelet (PLT) membrane biomimetic nanomaterials have become promising theranostic platforms due to their good biocompatibility and effectiveness. However, in order to achieve precise regulation of cell membrane components, novel controllable construction approaches need to be developed. Inspired by the interaction mechanism among platelet production, activation, and dynamic biomechanical signals in blood circulation, here a platelet nanobubbles (PNBs) with reassembled platelet membrane with ideal echogenicity was fabricated using an adjustable pressure-induced shear stress method. The results demonstrate that the high shear stress during PNBs fabrication led to the enrichment of platelet membrane lipid rafts and proteins, as well as their reassembly on the gas-liquid interface. More importantly, the conformation of platelet integrin αβ was transformed into a shear stress-induced intermediate affinity state, which gives PNBs enhanced adhesion ability to the vascular endothelial injury. Taken together, these PNBs have great application potential in the specifically targeted ultrasound diagnosis of vascular endothelial injury.

摘要

血小板膜仿生纳米材料由于其良好的生物相容性和有效性,已成为有前途的治疗诊断一体化平台。然而,为了实现对细胞膜成分的精确调节,需要开发新的可控构建方法。受血小板在血液循环中的产生、激活和动态生物力学信号之间相互作用机制的启发,本文采用可调压力诱导剪切应力方法,构建了具有理想超声反射性能的再组装血小板膜纳米气泡(PNBs)。结果表明,PNBs 制备过程中的高剪切应力导致血小板膜脂筏和蛋白质的富集,并在气液界面上重新组装。更重要的是,血小板整合素 αβ 的构象转变成剪切应力诱导的中间亲和力状态,使 PNBs 增强了对血管内皮损伤的黏附能力。综上所述,这些 PNBs 在血管内皮损伤的超声靶向诊断方面具有很大的应用潜力。

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