Institute of Biomedical Engineering, Ji Nan University, Guang Zhou, China.
J Cell Mol Med. 2011 Dec;15(12):2634-42. doi: 10.1111/j.1582-4934.2011.01310.x.
Red blood cells (RBCs) during microcirculation, aging and storage, lose N-acetylneuraminic acid (NANA) and other biomaterials thereby altering cell structures, some properties and functions. Such cell damage very likely underlies the serious adverse effects of blood transfusion. However, a controversy has remained since 1961-1977 as to whether with aging, the RBCs, suffering loss of NANA, do have a decreased charge density. Any correlation between the changes in the cell properties with cell aging is also not clear. Therefore, to remove the ambiguity and uncertainty, we carried out multiparameteric studies on Percoll fractions of blood of 38 volunteers (lightest-young-Y-RBCs, densest-old-O-RBCs, two middle fractions).We found that there were striking differences between the properties of Y-RBCs and O-RBCs. The ζ-potential of Y-RBCs decreased gradually with aging. Studies in parallel on RBC fractions incubated with both positively charged quantum dots and Sambucus Nigra-fluorescein isothiocyanate (FITC) along with their ζ-potentials provide for the first time direct visual evidence about the lesser amount of charge density and NANA on O-RBCs, and a collinear decrease in their respective ζ-potentials. Close correlation was found between the surface charge on an aging RBC and its structure and functions, from the cell morphology, the membrane deformability to the intracellular Hb structure and oxidation ability. This quantitative approach not only clarifies the picture but also has implications in biology and medicine.
在微循环中,衰老和储存过程中的红细胞(RBC)会失去 N-乙酰神经氨酸(NANA)和其他生物材料,从而改变细胞结构、某些性质和功能。这种细胞损伤很可能是输血严重不良反应的基础。然而,自 1961 年至 1977 年以来,一直存在争议,即随着衰老,失去 NANA 的 RBC 是否电荷密度降低。细胞老化过程中细胞性质的任何变化之间的相关性也不清楚。因此,为了消除歧义性和不确定性,我们对 38 名志愿者的 Percol 血液分馏物进行了多参数研究(最轻的年轻-Y-RBC、最密集的年老-O-RBC、两个中间分馏物)。我们发现 Y-RBC 和 O-RBC 的性质存在显著差异。Y-RBC 的 ζ-电位随着衰老逐渐降低。同时对用带正电荷的量子点和黑接骨木-荧光素异硫氰酸酯(FITC)孵育的 RBC 分馏物进行的平行研究首次提供了关于 O-RBC 上电荷密度和 NANA 较少以及各自 ζ-电位呈线性下降的直接直观证据。从细胞形态、膜变形性到细胞内 Hb 结构和氧化能力,衰老 RBC 上的表面电荷与其结构和功能之间存在密切相关性。这种定量方法不仅澄清了情况,而且对生物学和医学也具有重要意义。