Universidad Autonoma de Nuevo Leon, Facultad de Ciencias Quimicas, 66455, San Nicolas de los Garza, NL, Mexico.
Universidad Autonoma de Nuevo Leon, Centro de Investigacion en Biotecnologia y Nanotecnologia, Facultad de Ciencias Quimicas, Parque de Investigacion e Innovacion Tecnologica, 66629, Apodaca, NL, Mexico.
Mol Biotechnol. 2019 Jun;61(6):451-460. doi: 10.1007/s12033-019-00176-4.
We have previously shown that the small metal-binding protein (SmbP) extracted from the gram-negative bacterium Nitrosomonas europaea can be employed as a fusion protein for the expression and purification of recombinant proteins in Escherichia coli. With the goal of increasing the amounts of SmbP-tagged proteins produced in the E. coli periplasm, we replaced the native SmbP signal peptide with three different signal sequences: two were from the proteins CusF and PelB, for transport via the Sec pathway, and one was the signal peptide from TorA, for transport via the Tat pathway. Expression of SmbP-tagged Red Fluorescent Protein (RFP) using these three alternative signal peptides individually showed a considerable increase in protein levels in the periplasm of E. coli as compared to its level using the SmbP signal sequence. Therefore, for routine periplasmic expression and purification of recombinant proteins in E. coli, we highly recommend the use of the fusion proteins PelB-SmbP or CusF-SmbP, since these signal sequences increase periplasmic production considerably as compared to the wild-type. Our work, finally, demonstrates that periplasmic expression for SmbP-tagged proteins is not limited to the Sec pathway, in that the TorA-SmbP construct can export reasonable quantities of folded proteins to the periplasm. Although the Sec route has been the most widely used, sometimes, depending on the nature of the protein of interest, for example, if it contains cofactors, it is more appropriate to consider using the Tat route over the Sec. SmbP therefore can be recommended in terms of its particular versatility when combined with signal peptides for the two different routes.
我们之前已经证明,从革兰氏阴性菌硝化单胞菌中提取的小金属结合蛋白(SmbP)可以作为融合蛋白用于在大肠杆菌中表达和纯化重组蛋白。为了增加大肠杆菌周质中 SmbP 标记蛋白的产量,我们用三种不同的信号肽替换了天然的 SmbP 信号肽:两个信号肽来自 CusF 和 PelB 蛋白,用于通过 Sec 途径转运,一个信号肽来自 TorA,用于通过 Tat 途径转运。使用这三种替代信号肽分别表达 SmbP 标记的红色荧光蛋白(RFP),与使用 SmbP 信号序列相比,大肠杆菌周质中蛋白水平有了显著提高。因此,对于在大肠杆菌中常规进行周质表达和纯化重组蛋白,我们强烈推荐使用 PelB-SmbP 或 CusF-SmbP 融合蛋白,因为与野生型相比,这些信号序列会大大增加周质的产量。我们的工作最终表明,SmbP 标记蛋白的周质表达并不仅限于 Sec 途径,因为 TorA-SmbP 构建体可以将相当数量的折叠蛋白输出到周质中。虽然 Sec 途径是最广泛使用的途径,但有时,取决于感兴趣的蛋白的性质,例如,如果它含有辅因子,则考虑使用 Tat 途径而不是 Sec 途径更为合适。因此,考虑到与两种不同途径的信号肽相结合时的特殊多功能性,SmbP 是值得推荐的。