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Engineering inclusion bodies for non denaturing extraction of functional proteins

机译:工程包涵体,用于非变性提取功能蛋白

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Background For a long time IBs were considered to be inactive deposits of accumulated target proteins. In our previous studies, we discovered IBs containing a high percentage of correctly folded protein that can be extracted under non-denaturing conditions in biologically active form without applying any renaturation steps. In order to widen the concept of correctly folded protein inside IBs, G-CSF (granulocyte colony stimulating factor) and three additional proteins were chosen for this study: GFP (Green fluorescent protein), His7dN6TNF-α (Truncated form of Tumor necrosis factor α with an N-terminal histidine tag) and dN19 LT-α (Truncated form of Lymphotoxin α). Results Four structurally different proteins that accumulate in the bacterial cell in the form of IBs were studied, revealing that distribution of each target protein between the soluble fraction (cytoplasm) and insoluble fraction (IBs) depends on the nature of the target protein. Irrespective of the folding pattern of each protein, spectroscopy studies have shown that proteins in IBs exhibit similar structural characteristics to the biologically active pure protein when produced at low temperature. In the case of the three studied proteins, G-CSF, His7ΔN6TNF-α, and GFP, a significant amount of protein could be extracted from IBs with 0.2% N-lauroyl sarcosine (NLS) and the proteins retained biological activity although no renaturation procedure was applied. Conclusion This study shows that the presence of biologically active proteins inside IBs is more general than usually believed. A large amount of properly folded protein is trapped inside IBs prepared at lower temperatures. This protein can be released from IBs with mild detergents under non-denaturing conditions. Therefore, the active protein can be obtained from such IBs without any renaturation procedure. This is of great importance for the biopharmaceutical industry. Furthermore, such IBs composed of active proteins could also be used as pure nanoparticles in diagnostics, as biocatalysts in enzymatic processes, or even as biopharmaceuticals.
机译:背景技术长期以来,IB被认为是累积的靶蛋白的非活性沉积物。在我们以前的研究中,我们发现含有高百分比正确折叠蛋白的IBs可以在非变性条件下以生物活性形式提取而无需应用任何复性步骤。为了拓宽IB内部正确折叠的蛋白质的概念,本研究选择了G-CSF(粒细胞集落刺激因子)和其他三种蛋白质:GFP(绿色荧光蛋白),His7dN6TNF-α(肿瘤坏死因子α的截短形式)带有N端组氨酸标签)和dN19LT-α(截短形式的Lymphotoxinα)。结果研究了四种以IBs形式积累在细菌细胞中的结构不同的蛋白质,发现每种靶蛋白在可溶性部分(细胞质)和不溶性部分(IBs)之间的分布取决于靶蛋白的性质。不论每种蛋白质的折叠模式如何,光谱学研究均显示,IBs中的蛋白质在低温下生产时具有与生物活性纯蛋白质相似的结构特征。对于三种研究的蛋白质G-CSF,His7ΔN6TNF-α和GFP,可以从含有0.2%N-月桂酰肌氨酸(NLS)的IBs中提取大量蛋白质,并且该蛋白质保留了生物学活性,尽管没有复性程序已应用。结论这项研究表明,IBs中生物活性蛋白的存在比通常认为的更为普遍。大量适当折叠的蛋白质被困在较低温度下制备的IB内。该蛋白质可以在非变性条件下用温和的去污剂从IBs中释放出来。因此,无需任何复性程序即可从此类IB获得活性蛋白。这对于生物制药行业非常重要。此外,由活性蛋白组成的这种IB还可以用作诊断中的纯纳米颗粒,用作酶促过程的生物催化剂,甚至用作生物药物。

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