首页> 外文期刊>Journal of Electron Microscopy >Problems in obtaining perfect images by single-particle electron cryomicroscopy of biological structures in amorphous ice.
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Problems in obtaining perfect images by single-particle electron cryomicroscopy of biological structures in amorphous ice.

机译:通过单粒子电子低温显微镜对无定形冰中生物结构获得完美图像的问题。

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Theoretical considerations together with simulations of single-particle electron cryomicroscopy images of biological assemblies in ice demonstrate that atomic structures should be obtainable from images of a few thousand asymmetric units, provided the molecular weight of the whole assembly being studied is greater than the minimum needed for accurate position and orientation determination. However, with present methods of specimen preparation and current microscope and detector technologies, many more particles are needed, and the alignment of smaller assemblies is difficult or impossible. Only larger structures, with enough signal to allow good orientation determination and with enough images to allow averaging of many hundreds of thousands or even millions of asymmetric units, have successfully produced high-resolution maps. In this review, we compare the contrast of experimental electron cryomicroscopy images of two smaller molecular assemblies, namely apoferritin and beta-galactosidase, with that expected from perfect simulated images calculated from their known X-ray structures. We show that the contrast and signal-to-noise ratio of experimental images still require significant improvement before it will be possible to realize the full potential of single-particle electron cryomicroscopy. In particular, although reasonably good orientations can be obtained for beta-galactosidase, we have been unable to obtain reliable orientation determination from experimental images of apoferritin. Simulations suggest that at least 2-fold improvement of the contrast in experimental images at ~10 ? resolution is needed and should be possible.
机译:理论上的考虑以及对生物组件在冰中的单粒子电子低温显微镜图像的模拟表明,只要所研究的整个组件的分子量大于所需的最小分子量,则应可从数千个不对称单元的图像中获得原子结构。准确的位置和方向确定。然而,利用当前的样品制备方法以及当前的显微镜和检测器技术,需要更多的颗粒,并且更小组件的对准是困难的或不可能的。只有较大的结构,具有足够的信号可以进行良好的方向确定,并具有足够的图像以对数十万乃至数百万个不对称单元进行平均,才能成功生成高分辨率地图。在这篇综述中,我们比较了两个较小分子组装体(即脱铁铁蛋白和β-半乳糖苷酶)的实验电子低温显微镜图像的对比度,以及根据其已知的X射线结构计算得出的理想模拟图像的对比度。我们表明,实验图像的对比度和信噪比仍需要显着改善,才有可能实现单粒子电子低温显微术的全部潜力。特别是,尽管可以为β-半乳糖苷酶获得相当好的取向,但我们无法从载铁蛋白的实验图像中获得可靠的取向测定。模拟表明,在〜10?时,实验图像的对比度至少提高了2倍。解决方案是必要的,应该是可能的。

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