Fei Qinqin, Shalosky Emily M, Barnes Ryelie, Shukla Vasudha C, Ballinger Megan N, Farkas Laszlo, Lee Robert J, Ghadiali Samir N, Englert Joshua A
bioRxiv. 2023 Feb 19:2023.02.17.529007. doi: 10.1101/2023.02.17.529007.
The pro-inflammatory response of alveolar macrophages to injurious physical forces during mechanical ventilation is regulated by the anti-inflammatory microRNA, miR-146a. Increasing miR-146a expression to supraphysiologic levels using untargeted lipid nanoparticles reduces ventilator-induced lung injury, but requires a high initial dose of miR-146a making it less clinically applicable. In this study, we developed mannosylated lipid nanoparticles that can effectively mitigate lung injury at the initiation of mechanical ventilation with lower doses of miR-146a. We used a physiologically relevant humanized co-culture system to evaluate the cell-specific targeting efficiency of the mannosylated lipid nanoparticle. We discovered that mannosylated lipid nanoparticles preferentially deliver miR-146a to alveolar macrophages and reduce force-induced inflammation . Our study using a clinically relevant mouse model of hemorrhagic shock-induced acute respiratory distress syndrome demonstrated that delivery of a low dose miR-146a (0.1 nmol) using mannosylated lipid nanoparticles dramatically increases miR-146a in mouse alveolar macrophages and decreases lung inflammation. These data suggest that mannosylated lipid nanoparticles may have therapeutic potential to mitigate lung injury during mechanical ventilation.
肺泡巨噬细胞在机械通气期间对损伤性物理力的促炎反应受抗炎性微小RNA miR-146a调控。使用非靶向脂质纳米颗粒将miR-146a表达增加到超生理水平可减轻呼吸机诱导的肺损伤,但需要高初始剂量的miR-146a,这使其临床应用受限。在本研究中,我们开发了甘露糖基化脂质纳米颗粒,其可在较低剂量miR-146a的情况下在机械通气开始时有效减轻肺损伤。我们使用生理相关的人源化共培养系统评估甘露糖基化脂质纳米颗粒的细胞特异性靶向效率。我们发现甘露糖基化脂质纳米颗粒优先将miR-146a递送至肺泡巨噬细胞并减轻力诱导的炎症。我们使用出血性休克诱导的急性呼吸窘迫综合征的临床相关小鼠模型进行的研究表明,使用甘露糖基化脂质纳米颗粒递送低剂量miR-146a(0.1 nmol)可显著增加小鼠肺泡巨噬细胞中的miR-146a并减轻肺部炎症。这些数据表明,甘露糖基化脂质纳米颗粒可能具有减轻机械通气期间肺损伤的治疗潜力。