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Efficient 3D-CTF correction for cryo-electron tomography using NovaCTF improves subtomogram averaging resolution to 3.4 Å

机译:使用NovaCTF进行冷冻电子断层扫描的有效3D-CTF校正可将子图平均分辨率提高到3.4Å

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摘要

Cryo-electron tomography (cryo-ET) allows cellular ultrastructures and macromolecular complexes to be imaged in three-dimensions in their native environments. Cryo-electron tomograms are reconstructed from projection images taken at defined tilt-angles. In order to recover high-resolution information from cryo-electron tomograms, it is necessary to measure and correct for the contrast transfer function (CTF) of the microscope. Most commonly, this is performed using protocols that approximate the sample as a two-dimensional (2D) plane. This approximation accounts for differences in defocus and therefore CTF across the tilted sample. It does not account for differences in defocus of objects at different heights within the sample; instead, a 3D approach is required. Currently available approaches for 3D-CTF correction are computationally expensive and have not been widely implemented. Here we simulate the benefits of 3D-CTF correction for high-resolution subtomogram averaging, and present a user-friendly, computationally-efficient 3D-CTF correction tool, NovaCTF, that is compatible with standard tomogram reconstruction workflows in IMOD. We validate the approach on synthetic data and test it using subtomogram averaging of real data. Consistent with our simulations, we find that 3D-CTF correction allows high-resolution structures to be obtained with much smaller subtomogram averaging datasets than are required using 2D-CTF. We also show that using equivalent dataset sizes, 3D-CTF correction can be used to obtain higher-resolution structures. We present a 3.4 Å resolution structure determined by subtomogram averaging.
机译:低温电子断层扫描(cryo-ET)可使细胞超微结构和大分子复合物在其原始环境中以三维方式成像。从以定义的倾斜角度拍摄的投影图像重建低温电子断层图。为了从低温电子断层图中恢复高分辨率信息,有必要测量和校正显微镜的对比度传递函数(CTF)。最常见的是,这是使用将样品近似为二维(2D)平面的协议执行的。该近似值说明了散焦的差异,因此也解释了倾斜样品的CTF。它不考虑样品内不同高度的物体散焦的差异;而是需要3D方法。当前可用的用于3D-CTF校正的方法在计算上是昂贵的并且没有被广泛地实现。在这里,我们模拟了3D-CTF校正对高分辨率子断层图平均化的好处,并提出了一种用户友好,计算效率高的3D-CTF校正工具NovaCTF,它与IMOD中的标准断层图重建工作流兼容。我们验证了合成数据的方法,并使用实数据的子图平均进行了测试。与我们的模拟一致,我们发现3D-CTF校正允许使用比使用2D-CTF所需的小得多的子子图平均数据集来获得高分辨率结构。我们还表明,使用等效的数据集大小,可以使用3D-CTF校正来获得更高分辨率的结构。我们提出了3.4Å分辨率的结构,该结构由子图平均确定。

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