Bar Maya, Bar-Ziv Roy, Scherf Tali, Fass Deborah
Department of Structural Biology, Weizmann Institute of Science, Rehovot, Israel.
Protein Expr Purif. 2006 Aug;48(2):243-52. doi: 10.1016/j.pep.2006.01.025. Epub 2006 Feb 23.
The Tenebrio molitor thermal hysteresis protein has a cysteine content of 19%. This 84-residue protein folds as a compact beta-helix, with eight disulfide bonds buried in its core. Exposed on one face of the protein is an array of threonine residues, which constitutes the ice-binding face. Previous protocols for expression of this protein in recombinant expression systems resulted in inclusion bodies or soluble but largely inactive material. A long and laborious refolding procedure was performed to increase the fraction of active protein and isolate it from inactive fractions. We present a new protocol for production of fully folded and active T. molitor thermal hysteresis protein in bacteria, without the need for in vitro refolding. The protein coding sequence was fused to those of various carrier proteins and expressed at low temperature in a bacterial strain specially suited for production of disulfide-bonded proteins. The product, after a simple and robust purification procedure, was analyzed spectroscopically and functionally and was found to compare favorably to previously published data on refolded protein and protein obtained from its native source.
黄粉虫热滞蛋白的半胱氨酸含量为19%。这种由84个氨基酸残基组成的蛋白质折叠成紧密的β-螺旋结构,其核心有8个二硫键。蛋白质的一个面上暴露着一系列苏氨酸残基,构成了冰结合面。以前在重组表达系统中表达这种蛋白质的方法会导致包涵体形成或产生可溶性但基本上无活性的物质。为了提高活性蛋白的比例并将其与无活性部分分离,需要进行漫长而费力的复性过程。我们提出了一种在细菌中生产完全折叠且有活性的黄粉虫热滞蛋白的新方法,无需体外复性。将蛋白质编码序列与各种载体蛋白的编码序列融合,并在特别适合生产二硫键结合蛋白的细菌菌株中低温表达。经过简单而可靠的纯化程序后,对产物进行了光谱和功能分析,发现其与先前发表的关于复性蛋白和从天然来源获得的蛋白的数据相比具有优势。