Department of Cellular and Molecular Physiology, Yale University School of Medicine, New Haven, CT 06520
Proc Natl Acad Sci U S A. 2018 Feb 13;115(7):1641-1645. doi: 10.1073/pnas.1721463115. Epub 2018 Jan 30.
The main conclusion of the results reported in this article is that during centrifugation, sphered red blood cell ghosts become oriented in their attachment to a coverslip such that a dense band within the ghosts lies parallel to the centrifugal field. The result of the orientation of this dense band is that when the attached spherical ghosts are shrunken to become biconcave discs, they do so by directly collapsing on themselves without any lateral motion. This result is interpreted to suggest that a dense band, relative to the dimple, resides in the rim of the ghost and is responsible for its biconcave shape. These results confirm the conclusions reached in a previous publication in which there was the uncertainty that the shape change of the spherical ghosts to discs could not be directly imaged. The present work corrects this limitation by use of a chamber in which the tonicity of the solutions in the ghosts' surround could be altered by perfusion coupled with constant microscopic imaging. The identity of the components that are responsible for the differences in the density (mass) between the rim and the dimple regions of the cytoskeletal/membrane complex in the biconcave disk are unknown. It is also unknown what forces apply or what the explanation is for the unique orientation of the dense band during the ghosts' centrifugation, as described in this article. Nevertheless, the results reported in this article indicate the membrane's underlying cytoskeletal complex is asymmetrically distributed.
本文报告的主要结论是,在离心过程中,球形红细胞“幽灵”会附着在盖玻片上,并沿离心力方向排列,从而使“幽灵”内部的致密带与离心力方向平行。这种致密带的定向排列导致当附着的球形“幽灵”收缩成双凹盘时,它们不会发生侧向运动,而是直接向内坍塌。这一结果表明,相对于凹陷,致密带位于“幽灵”的边缘,负责其双凹盘形状。这些结果证实了之前发表的一篇论文中的结论,该论文曾存在一个不确定性,即球形“幽灵”向盘状的形状变化不能直接成像。本研究通过使用一个室来校正这一限制,该室可通过灌流耦合恒微镜成像来改变“幽灵”周围溶液的渗透压。双凹盘的细胞骨架/膜复合物的边缘和凹陷区域的密度(质量)差异的原因尚不清楚。也不知道在本文所述的“幽灵”离心过程中施加了什么力,或者是什么解释导致了致密带的独特定向。尽管如此,本文报告的结果表明,膜下的细胞骨架复合物是不对称分布的。