Institute of Transfusion Medicine and Berlin-Brandenburg Center for Regenerative Therapies, Charité-Universitätsmedizin Berlin , Charitéplatz 1, 10117 Berlin, Germany.
ACS Nano. 2013 Sep 24;7(9):7454-61. doi: 10.1021/nn402073n. Epub 2013 Aug 7.
Artificial oxygen carriers, favorably hemoglobin-based oxygen carriers (HBOCs), are being investigated intensively during the last 30 years with the aim to develop a universal blood substitute. However, serious side effects mainly caused by vasoconstriction triggered by nitric oxide (NO) scavenging due to penetration of nanosized HBOCs through the endothelial gaps of the capillary walls and/or oxygen oversupply in the precapillary arterioles due to their low oxygen affinity led to failure of clinical trials and FDA disapproval. To avoid these effects, HBOCs with a size between 100 and 1000 nm and high oxygen affinity are needed. Here we present for the first time unique hemoglobin particles (HbPs) of around 700 nm with high oxygen affinity and low immunogenicity using a novel, highly effective, and simple technique. The fabrication procedure provides particles with a narrow size distribution and nearly uniform morphology. The content of hemoglobin (Hb) in the particles corresponded to 80% of the Hb content in native erythrocytes. Furthermore, we demonstrate a successful perfusion of isolated mouse glomeruli with concentrated HbP suspensions in vitro. A normal, nonvasoconstrictive behavior of the afferent arterioles is observed, suggesting no oxygen oversupply and limited NO scavenging by these particles, making them a highly promising blood substitute.
人工氧载体,特别是基于血红蛋白的氧载体(HBOCs),在过去 30 年中受到了广泛的研究,旨在开发一种通用的血液替代品。然而,由于纳米级 HBOCs 通过毛细血管壁的内皮间隙渗透和/或前毛细血管小动脉中的氧供应过度(由于其低氧亲和力)导致的一氧化氮(NO)清除引起的严重副作用,主要是血管收缩,导致临床试验失败和 FDA 不批准。为了避免这些影响,需要具有 100 至 1000nm 之间的尺寸和高氧亲和力的 HBOCs。在这里,我们首次使用一种新颖、高效、简单的技术,展示了具有高氧亲和力和低免疫原性的独特血红蛋白颗粒(HbPs),粒径约为 700nm。制造过程提供了具有窄粒径分布和几乎均匀形态的颗粒。颗粒中的血红蛋白(Hb)含量与天然红细胞中的 Hb 含量相当,达到 80%。此外,我们还证明了浓缩的 HbP 悬浮液在体外可成功灌注分离的小鼠肾小球。观察到输入小动脉的正常、非血管收缩行为,表明这些颗粒不会过度供氧,也不会有限地清除 NO,这使它们成为一种很有前途的血液替代品。