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首页> 外文期刊>Protein Science: A Publication of the Protein Society >While the revolution will not be crystallized, biochemistry reigns supreme
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While the revolution will not be crystallized, biochemistry reigns supreme

机译:虽然革命不会结晶,但生物化学统治至高无上

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摘要

Single-particle cryo-electron microscopy (EM) is currently gaining attention for the ability to calculate structures that reach sub-5 angstrom resolutions; however, the technique is more than just an alternative approach to X-ray crystallography. Molecular machines work via dynamic conformational changes, making structural flexibility the hallmark of function. While the dynamic regions in molecules are essential, they are also the most challenging to structurally characterize. Single-particle EM has the distinct advantage of being able to directly visualize purified molecules without the formation of ordered arrays of molecules locked into identical conformations. Additionally, structures determined using single-particle EM can span resolution ranges from very low-to atomic-levels (>30-1.8 angstrom), sometimes even in the same structure. The ability to accommodate various resolutions gives single-particle EM the unique capacity to structurally characterize dynamic regions of biological molecules, thereby contributing essential structural information needed for the development of molecular models that explain function. Further, many important molecular machines are intrinsically dynamic and compositionally heterogeneous. Structures of these complexes may never reach sub-5 angstrom resolutions due to this flexibility required for function. Thus, the biochemical quality of the sample, as well as, the calculation and interpretation of low-to mid-resolution cryo-EM structures (30-8 angstrom) remains critical for generating insights into the architecture of many challenging biological samples that cannot be visualized using alternative techniques.
机译:单粒子冷冻电子显微镜(EM)目前正在注意能力计算到达SUB-5 Angstrom分辨率的结构;然而,该技术不仅仅是X射线晶体学的替代方法。分子机通过动态构象变化工作,使结构灵活性功能的标志。虽然分子中的动态区域是必不可少的,但它们也是在结构表征的最具挑战性的。单粒子EM具有能够直接可视化纯化分子的明显优点,而不形成锁定成相同构象的有序分子阵列。另外,使用单粒子EM测定的结构可以跨越极低到原子水平(> 30-1.8埃)的分辨率,有时即使在相同的结构中。适应各种分辨率的能力使单粒子EM具有结构性地表征生物分子的动态区域的独特能力,从而有助于解释功能的分子模型所需的基本结构信息。此外,许多重要的分子机是本质上动态和合成的异质性的。由于功能所需的这种灵活性,这些复合物的结构可能永远不会到达Sub-5 Angstrom分辨率。因此,样品的生化质量以及低到中分辨率的低温 - EM结构的计算和解释仍然至关重要,以产生无法成为许多具有挑战性的生物样本的结构的洞察力使用替代技术可视化。

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