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Re-directing bacterial microcompartment systems to enhance recombinant expression of lysis protein E from bacteriophage ?X174 in Escherichia coli

机译:重定向细菌微区室系统以增强大肠杆菌中噬菌体λX174的裂解蛋白E的重组表达

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Background Recombinant expression of toxic proteins remains a challenging problem. One potential method to shield toxicity and thus improve expression of these proteins is to encapsulate them within protein compartments to sequester them away from their targets. Many bacteria naturally produce so-called bacterial microcompartments (BMCs) in which enzymes comprising a biosynthetic pathway are encapsulated in a proteinaeous shell, which is in part thought to shield the cells from the toxicity of reaction intermediates. As a proof-of-concept, we attempted to encapsulate toxic, lysis protein E (E) from bacteriophage ?X174 inside recombinant BMCs to enhance its expression and achieve higher yields during downstream purification. Results E was fused with various N-terminal BMC targeting tags (PduP-, PduD-, and EutC-tags, 18–20 amino acids) and co-expressed with appropriate BMC shell proteins that associate with the tags and are required to form BMCs. Only BMC targeted E fusions, but not non-tagged E, could be successfully cloned, suggesting that the BMC tags reduce the toxicity of E. A PduP-tagged E system appeared to achieve the highest expression of E. Co-expression of Pdu BMC shell proteins with PduP-E increased its expression by 20–50%. Affinity purification of PduP-E via Ni–NTA in the presence of Empigen BB detergent yielded 270?μg of PduP-E per L of induced culture. Removal of the PduP-tag via proteolysis resulted in a final yield of 200?μg of E per L of induced culture, a nearly order of magnitude (~sevenfold) improvement compared to prior reports. Conclusions These results demonstrate improved expression of ?X174 lysis protein E via re-directed BMC systems and ultimately higher E purification yields. Similar strategies can be used to enhance expression of other toxic proteins in recombinant Escherichia coli systems.
机译:背景毒性蛋白的重组表达仍然是一个具有挑战性的问题。屏蔽毒性并因此改善这些蛋白质表达的一种潜在方法是将它们封装在蛋白质区室中,以将其与目标隔离。许多细菌自然产生所谓的细菌微区室(BMC),其中包含生物合成途径的酶被封装在蛋白质壳中,这部分被认为可以使细胞免受反应中间体的毒性。作为概念验证,我们尝试将来自噬菌体λX174的有毒裂解蛋白E(E)封装在重组BMC中,以增强其表达并在下游纯化中获得更高的产率。结果E与各种N末端BMC靶向标签(PduP-,PduD-和EutC标签,18-20个氨基酸)融合在一起,并与与标签相关并形成BMC所需的适当BMC外壳蛋白共表达。仅BMC靶向的E融合蛋白可以成功克隆,而非标签E则不能成功克隆,这表明BMC标签可以降低E的毒性。PduP标签的E系统似乎可以实现E的最高表达。Pdu BMC的共表达具有PduP-E的壳蛋白可将其表达提高20–50%。在Empigen BB去污剂存在下,通过Ni-NTA亲和纯化PduP-E,每升诱导培养产生270?μgPduP-E。通过蛋白水解去除PduP-tag的最终产量为每L诱导培养物200μgE,与以前的报道相比提高了近一个数量级(约七倍)。结论这些结果表明,通过重定向的BMC系统可改善?X174裂解蛋白E的表达,并最终提高E的纯化率。类似的策略可用于增强重组大肠杆菌系统中其他有毒蛋白质的表达。

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