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为进行结构药物靶向研究纯化正确折叠的富含半胱氨酸的含锌指重组蛋白:以p300的CH1结构域为例

Purifying Properly Folded Cysteine-rich, Zinc Finger Containing Recombinant Proteins for Structural Drug Targeting Studies: the CH1 Domain of p300 as a Case Example.

作者信息

Kim Yong Joon, Kaluz Stefan, Mehta Anil, Weinert Emily, Rivera Shannon, Van Meir Erwin G

机构信息

Department of Chemistry, Emory University, Atlanta, USA.

Laboratory of Molecular Neuro-Oncology, Departments of Neurosurgery and Hematology & Medical Oncology, School of Medicine and Winship Cancer Institute, Emory University, Atlanta, USA.

出版信息

Bio Protoc. 2017 Sep 5;7(17). doi: 10.21769/BioProtoc.2537.

Abstract

The transcription factor Hypoxia-Inducible Factor (HIF) complexes with the coactivator p300, activating the hypoxia response pathway and allowing tumors to grow. The CH1 and CAD domains of each respective protein form the interface between p300 and HIF. Small molecule compounds are in development that target and inhibit HIF/p300 complex formation, with the goal of reducing tumor growth. High resolution NMR spectroscopy is necessary to study ligand interaction with p300-CH1, and purifying high quantities of properly folded p300-CH1 is needed for pursuing structural and biophysical studies. p300-CH1 has 3 zinc fingers and 9 cysteine residues, posing challenges associated with reagent compatibility and protein oxidation. A protocol has been developed to overcome such issues by incorporating zinc during expression and streamlining the purification time, resulting in a high yield of optimally folded protein (120 mg per 4 L expression media) that is suitable for structural NMR studies. The structural integrity of the final recombinant p300-CH1 has been verified to be optimal using onedimensional H NMR spectroscopy and circular dichroism. This protocol is applicable for the purification of other zinc finger containing proteins.

摘要

转录因子缺氧诱导因子(HIF)与共激活因子p300形成复合物,激活缺氧反应途径,从而使肿瘤得以生长。每种蛋白质各自的CH1和CAD结构域构成了p300与HIF之间的界面。目前正在开发靶向并抑制HIF/p300复合物形成的小分子化合物,目的是减少肿瘤生长。高分辨率核磁共振波谱对于研究配体与p300-CH1的相互作用是必要的,而进行结构和生物物理研究则需要纯化大量正确折叠的p300-CH1。p300-CH1有3个锌指和9个半胱氨酸残基,这给试剂兼容性和蛋白质氧化带来了挑战。已开发出一种方案来克服这些问题,即在表达过程中加入锌并简化纯化时间,从而获得高产量的最佳折叠蛋白(每4升表达培养基120毫克),适用于结构核磁共振研究。使用一维氢核磁共振波谱和圆二色性已验证最终重组p300-CH1的结构完整性是最佳的。该方案适用于其他含锌指蛋白的纯化。

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