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本文引用的文献

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A microscale protein NMR sample screening pipeline.一种微尺度蛋白 NMR 样品筛选流水线。
J Biomol NMR. 2010 Jan;46(1):11-22. doi: 10.1007/s10858-009-9386-z. Epub 2009 Nov 14.
2
Parallel methods for expression and purification.表达与纯化的并行方法。
Methods Enzymol. 2009;463:767-85. doi: 10.1016/S0076-6879(09)63041-X.
3
Heterodimer formation of the myeloid zinc finger 1 SCAN domain and association with promyelocytic leukemia nuclear bodies.髓系锌指1 SCAN结构域的异源二聚体形成及其与早幼粒细胞白血病核体的关联。
Leuk Res. 2008 Oct;32(10):1582-92. doi: 10.1016/j.leukres.2008.03.024. Epub 2008 May 9.
4
Protein production and purification.蛋白质的生产与纯化。
Nat Methods. 2008 Feb;5(2):135-46. doi: 10.1038/nmeth.f.202.
5
Small-scale, semi-automated purification of eukaryotic proteins for structure determination.用于结构测定的真核蛋白质小规模半自动化纯化
J Struct Funct Genomics. 2007 Dec;8(4):153-66. doi: 10.1007/s10969-007-9032-5. Epub 2007 Nov 6.
6
Structures of proteins of biomedical interest from the Center for Eukaryotic Structural Genomics.来自真核生物结构基因组学中心的具有生物医学意义的蛋白质结构
J Struct Funct Genomics. 2007 Sep;8(2-3):73-84. doi: 10.1007/s10969-007-9023-6. Epub 2007 Sep 6.
7
Microgram-scale protein structure determination by NMR.通过核磁共振进行微克级蛋白质结构测定。
Nat Methods. 2007 Jun;4(6):491-3. doi: 10.1038/nmeth1051. Epub 2007 May 13.
8
Performance of cryogenic probes as a function of ionic strength and sample tube geometry.低温探头的性能与离子强度及样品管几何形状的关系。
J Magn Reson. 2006 Nov;183(1):102-9. doi: 10.1016/j.jmr.2006.08.002. Epub 2006 Sep 1.
9
NMR and X-ray crystallography, complementary tools in structural proteomics of small proteins.核磁共振(NMR)和X射线晶体学,小分子蛋白质结构蛋白质组学中的互补工具。
J Am Chem Soc. 2005 Nov 30;127(47):16512-7. doi: 10.1021/ja053565+.
10
Comparisons of NMR spectral quality and success in crystallization demonstrate that NMR and X-ray crystallography are complementary methods for small protein structure determination.核磁共振光谱质量与结晶成功率的比较表明,核磁共振和X射线晶体学是确定小蛋白质结构的互补方法。
J Am Chem Soc. 2005 Nov 30;127(47):16505-11. doi: 10.1021/ja053564h.

用于 NMR 筛选和结构测定的快速、机器人、小规模蛋白质生产。

Rapid, robotic, small-scale protein production for NMR screening and structure determination.

机构信息

Department of Biochemistry and Center for Eukaryotic Structural Genomics, Medical College of Wisconsin, Milwaukee, Wisconsin 53226, USA.

出版信息

Protein Sci. 2010 Mar;19(3):570-8. doi: 10.1002/pro.335.

DOI:10.1002/pro.335
PMID:20073081
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2866281/
Abstract

Three-dimensional protein structure determination is a costly process due in part to the low success rate within groups of potential targets. Conventional validation methods eliminate the vast majority of proteins from further consideration through a time-consuming succession of screens for expression, solubility, purification, and folding. False negatives at each stage incur unwarranted reductions in the overall success rate. We developed a semi-automated protocol for isotopically-labeled protein production using the Maxwell-16, a commercially available bench top robot, that allows for single-step target screening by 2D NMR. In the span of a week, one person can express, purify, and screen 48 different (15)N-labeled proteins, accelerating the validation process by more than 10-fold. The yield from a single channel of the Maxwell-16 is sufficient for acquisition of a high-quality 2D (1)H-(15)N-HSQC spectrum using a 3-mm sample cell and 5-mm cryogenic NMR probe. Maxwell-16 screening of a control group of proteins reproduced previous validation results from conventional small-scale expression screening and large-scale production approaches currently employed by our structural genomics pipeline. Analysis of 18 new protein constructs identified two potential structure targets that included the second PDZ domain of human Par-3. To further demonstrate the broad utility of this production strategy, we solved the PDZ2 NMR structure using [U-(15)N,(13)C] protein prepared using the Maxwell-16. This novel semi-automated protein production protocol reduces the time and cost associated with NMR structure determination by eliminating unnecessary screening and scale-up steps.

摘要

三维蛋白质结构测定是一个昂贵的过程,部分原因是潜在目标群体的成功率较低。传统的验证方法通过耗时的表达、可溶性、纯化和折叠筛选,淘汰了绝大多数蛋白质进一步考虑。每个阶段的假阴性都会导致整体成功率不必要地降低。我们开发了一种使用 Maxwell-16 进行同位素标记蛋白质生产的半自动化方案,Maxwell-16 是一种市售的台式机器人,允许通过 2D NMR 进行单步靶标筛选。在一周的时间内,一个人可以表达、纯化和筛选 48 种不同的 (15)N 标记蛋白,将验证过程加速了 10 多倍。Maxwell-16 单个通道的产量足以使用 3mm 样品池和 5mm 低温 NMR 探头获得高质量的 2D (1)H-(15)N-HSQC 谱。对一组对照蛋白的 Maxwell-16 筛选复制了传统小规模表达筛选和我们结构基因组学管道目前使用的大规模生产方法的先前验证结果。对 18 个新蛋白构建体的分析确定了两个潜在的结构靶标,包括人 Par-3 的第二个 PDZ 结构域。为了进一步证明这种生产策略的广泛适用性,我们使用 Maxwell-16 制备的 [U-(15)N,(13)C] 蛋白解决了 PDZ2 NMR 结构。这种新的半自动化蛋白质生产方案通过消除不必要的筛选和扩大规模步骤,减少了与 NMR 结构测定相关的时间和成本。