Hackenbrock C R
J Cell Biol. 1972 May;53(2):450-65. doi: 10.1083/jcb.53.2.450.
An investigation was carried out in which microsamples of isolated rat liver mitochondria and freshly prepared mitoplasts in defined energy states were freeze-cleaved. Parallel microsamples were fixed with osmium tetroxide and with glutaraldehyde followed by osmium tetroxide as previously used in this laboratory for the preservation of energy-linked mitochondrial configurations. The details of the orthodox configuration of energized mitochondria and the condensed configuration of de-energized mitochondria, as revealed previously by chemical fixation, are confirmed in this report for nonfixed, freeze-cleaved mitochondria. The precise agreement in preservation of configuration obtained by the physical fixation of rapid freezing and by chemical fixation establishes unequivocally that mitochondria undergo energy-linked ultrastructural transformation between the condensed and the orthodox configurations which are thus natural structural states related to the metabolic activity of the mitochondrion. Configurations observed by freeze-cleaving and by chemical fixation reveal that mitoplasts also undergo a specific and dramatic ultrastructural transformation with the induction of oxidative phosphorylation. The transformation appears to be isovolumetric and therefore is thought to be mediated through energized conformational activity in the surface electron-transport membrane of the mitoplast. Passively swollen, spherical, osmotically active mitoplasts could not be fixed rapidly enough by chemical fixatives as normally used without altering the spherical form. In this special case preservation of configurational form required rapid freezing or chemical fixatives of low osmolar concentration.
进行了一项研究,对处于特定能量状态的分离大鼠肝线粒体和新制备的线粒体微粒体的微量样本进行冷冻断裂。平行的微量样本用四氧化锇以及戊二醛随后再用四氧化锇固定,如同本实验室先前用于保存与能量相关的线粒体结构那样。本报告证实了此前通过化学固定所揭示的活跃线粒体的正统结构以及失活线粒体的致密结构,对于未固定的冷冻断裂线粒体也是如此。通过快速冷冻的物理固定和化学固定所获得的结构保存方面的精确一致性明确地表明,线粒体在致密结构和正统结构之间经历与能量相关的超微结构转变,因此这两种结构是与线粒体代谢活性相关的自然结构状态。通过冷冻断裂和化学固定所观察到的结构表明,线粒体微粒体在诱导氧化磷酸化时也经历特定且显著的超微结构转变。这种转变似乎是等容的,因此被认为是通过线粒体微粒体表面电子传递膜中的活跃构象活性介导的。被动肿胀的球形、具有渗透活性的线粒体微粒体,在不改变球形形态的情况下,通常使用的化学固定剂无法足够快速地对其进行固定。在这种特殊情况下,保存构象形态需要快速冷冻或低渗透压浓度的化学固定剂。