首页> 美国卫生研究院文献>Applied and Environmental Microbiology >The Twin-Arginine Signal Peptide of Bacillus subtilis YwbN Can Direct either Tat- or Sec-Dependent Secretion of Different Cargo Proteins: Secretion of Active Subtilisin via the B. subtilis Tat Pathway
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The Twin-Arginine Signal Peptide of Bacillus subtilis YwbN Can Direct either Tat- or Sec-Dependent Secretion of Different Cargo Proteins: Secretion of Active Subtilisin via the B. subtilis Tat Pathway

机译:枯草芽孢杆菌YwbN的双精氨酸信号肽可以指导Tat或Sec依赖性分泌不同的货物蛋白质:通过枯草芽孢杆菌Tat途径分泌活性枯草杆菌蛋白酶

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摘要

Proteins that are produced for commercial purposes in Bacillus subtilis are commonly secreted via the Sec pathway. Despite its high secretion capacity, the secretion of heterologous proteins via the Sec pathway is often unsuccessful. Alternative secretion routes, like the Tat pathway, are therefore of interest. Two parallel Tat pathways with distinct specificities have previously been discovered in B. subtilis. To explore the application potential of these Tat pathways, several commercially relevant or heterologous model proteins were fused to the signal peptides of the known B. subtilis Tat substrates YwbN and PhoD. Remarkably, the YwbN signal peptide directed secretion of active subtilisin, a typical Sec substrate, via the B. subtilis TatAyCy route. In contrast, the same signal peptide directed Tat-independent secretion of the Bacillus licheniformis α-amylase (AmyL). Moreover, the YwbN signal peptide directed secretion of SufI, an Escherichia coli Tat substrate, in a Tat-independent manner, most likely via Sec. Our results suggest that cytoplasmic protein folding prior to translocation is probably a major determinant of Tat-dependent protein secretion in B. subtilis, as is the case with E. coli. We conclude that future applications for the Tat system of B. subtilis will most likely involve commercially interesting proteins that are Sec incompatible.
机译:枯草芽孢杆菌中用于商业目的生产的蛋白质通常通过Sec途径分泌。尽管具有很高的分泌能力,但通过Sec途径分泌异源蛋白质通常还是失败的。因此,其他的分泌途径,如Tat途径,是令人关注的。枯草芽孢杆菌先前已发现两条具有不同特异性的平行Tat途径。为了探索这些Tat途径的应用潜力,将几种商业相关或异源模型蛋白融合到已知枯草芽孢杆菌Tat底物YwbN和PhoD的信号肽上。值得注意的是,YwbN信号肽通过枯草芽孢杆菌TatAyCy途径指导分泌活性枯草杆菌蛋白酶(一种典型的Sec底物)。相反,相同的信号肽指导地衣芽孢杆菌α-淀粉酶(AmyL)的Tat依赖性分泌。此外,YwbN信号肽以不依赖Tat的方式指导SufI(大肠杆菌Tat底物)的分泌,很可能是通过Sec。我们的结果表明,易位之前胞质蛋白折叠可能是枯草芽孢杆菌中依赖Tat的蛋白分泌的主要决定因素,就像大肠杆菌一样。我们得出结论,枯草芽孢杆菌的Tat系统的未来应用很可能涉及与Sec不相容的商业上感兴趣的蛋白质。

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