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低氧亲和性和高氧亲和性的不同相对分子质量戊二醛聚合牛血红蛋白的合成、生物物理特性和氧合潜力。

Synthesis, biophysical properties, and oxygenation potential of variable molecular weight glutaraldehyde-polymerized bovine hemoglobins with low and high oxygen affinity.

机构信息

William G. Lowrie Department of Chemical and Biomolecular Engineering, The Ohio State University, Columbus, OH 43210, USA.

出版信息

Biotechnol Prog. 2011 Jul;27(4):1172-84. doi: 10.1002/btpr.624. Epub 2011 May 16.

Abstract

In a recent study, ultrahigh molecular weight (Mw ) glutaraldehyde-polymerized bovine hemoglobins (PolybHbs) were synthesized with low O2 affinity and exhibited no vasoactivity and a slight degree of hypertension in a 10% top-load model.(1) In this work, we systematically investigated the effect of varying the glutaraldehyde to hemoglobin (G:Hb) molar ratio on the biophysical properties of PolybHb polymerized in either the low or high O2 affinity state. Our results showed that the Mw of the resulting PolybHbs increased with increasing G:Hb molar ratio. For low O2 affinity PolybHbs, increasing the G:Hb molar ratio reduced the O2 affinity and CO association rate constants in comparison to bovine hemoglobin (bHb). In contrast for high O2 affinity PolybHbs, increasing the G:Hb molar ratio led to increased O2 affinity and significantly increased the CO association rate constants compared to unmodified bHb and low O2 affinity PolybHbs. The methemoglobin level and NO dioxygenation rate constants were insensitive to the G:Hb molar ratio. However, all PolybHbs displayed higher viscosities compared to unmodified bHb and whole blood, which also increased with increasing G:Hb molar ratio. In contrast, the colloid osmotic pressure of PolybHbs decreased with increasing G:Hb molar ratio. To preliminarily evaluate the ability of low and high O2 affinity PolybHbs to potentially oxygenate tissues in vivo, an O2 transport model was used to simulate O2 transport in a hepatic hollow fiber (HF) bioreactor. It was observed that low O2 affinity PolybHbs oxygenated the bioreactor better than high O2 affinity PolybHbs. This result points to the suitability of low O2 affinity PolybHbs for use in tissue engineering and transfusion medicine. Taken together, our results show the quantitative effect of varying the oxygen saturation of bHb and G:Hb molar ratio on the biophysical properties of PolybHbs and their ability to oxygenate a hepatic HF bioreactor. We suggest that the information gained from this study can be used to guide the design of the next generation of hemoglobin-based oxygen carriers (HBOCs) for use in tissue engineering and transfusion medicine applications.

摘要

在最近的一项研究中,合成了超低分子量(Mw)戊二醛聚合牛血红蛋白(PolybHb),其具有低氧亲和力,在 10%顶部负荷模型中没有血管活性,仅有轻度高血压。(1)在这项工作中,我们系统地研究了改变戊二醛与血红蛋白(G:Hb)摩尔比在低氧亲和力或高氧亲和力状态下聚合的 PolybHb 的生物物理性质的影响。我们的结果表明,所得 PolybHb 的 Mw 随 G:Hb 摩尔比的增加而增加。对于低氧亲和力的 PolybHb,与牛血红蛋白(bHb)相比,增加 G:Hb 摩尔比会降低氧亲和力和 CO 结合速率常数。相比之下,对于高氧亲和力的 PolybHb,增加 G:Hb 摩尔比会导致与未修饰的 bHb 和低氧亲和力的 PolybHb 相比,氧亲和力显著增加,CO 结合速率常数也显著增加。高铁血红蛋白水平和 NO 双氧合速率常数对 G:Hb 摩尔比不敏感。然而,与未修饰的 bHb 和全血相比,所有 PolybHb 的粘度都更高,并且随 G:Hb 摩尔比的增加而增加。相比之下,PolybHb 的胶体渗透压随 G:Hb 摩尔比的增加而降低。为了初步评估低氧亲和力和高氧亲和力 PolybHb 在体内潜在氧合组织的能力,使用 O2 转运模型模拟了肝中空纤维(HF)生物反应器中的 O2 转运。观察到低氧亲和力 PolybHb 比高氧亲和力 PolybHb 更能使生物反应器氧合。这一结果表明低氧亲和力 PolybHb 适用于组织工程和输血医学。总之,我们的结果表明,改变 bHb 的氧饱和度和 G:Hb 摩尔比对 PolybHb 的生物物理性质及其在肝 HF 生物反应器中氧合的能力的定量影响。我们建议,从这项研究中获得的信息可用于指导用于组织工程和输血医学应用的下一代血红蛋白基氧载体(HBOC)的设计。

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