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利用和改进革兰氏阴性菌分泌装置高效生产重组血小板因子 4。

High-yield production of recombinant platelet factor 4 by harnessing and honing the gram-negative bacterial secretory apparatus.

机构信息

Diagnostic Laboratory Sciences and Technology Research Center, School of Paramedical Sciences, Shiraz University of Medical Sciences, Shiraz, Iran.

Department of Medical Biotechnology, School of Paramedical Sciences, Shiraz University of Medical Sciences, Shiraz, Iran.

出版信息

PLoS One. 2020 May 7;15(5):e0232661. doi: 10.1371/journal.pone.0232661. eCollection 2020.

Abstract

Platelet factor 4 is a cytokine released into the bloodstream by activated platelets where it plays a pivotal role in etiology and diagnosis of heparin-induced thrombocytopenia. Therefore, a sustainable source of recombinant PF4 with structural and functional similarity to its native form is urgently needed to be used in diagnostic procedures. To this end, a three-in-one primary construct was designed from which three secondary constructs can be derived each capable of employing either type I, type II secretory or cytoplasmic pathways. Protein expression and secretion were performed in Escherichia coli BL21 (DE3) and confirmed by SDS-PAGE and Western blotting. To further enhance protein secretion, the effect of several controllable chemical factors including IPTG, Triton X-100, sucrose, and glycine were individually investigated at the outset. In the next step, according to a fractional factorial approach, the synergistic effects of IPTG, Triton X-100, and glycine on secretion were further investigated. To ascertain the structure and function of the secreted recombinant proteins, dynamic light scattering was utilized to confirm the rPF4 tetramerization and heparin-mediated ultra-large complex formation. Moreover, Raman spectroscopy and Western blotting were exploited to evaluate the secondary and quaternary structures, respectively. The type II secretory pathway was proven to be superior to type I in the case of rPF4 secretion. Supplementation with chemical enhancers improved the protein secretion mediated by the Type II system to approximately more than 500 μg/mL. Large quantities of native rPF4 up to 20 mg were purified as the culture medium was scaled up to 40 mL. Western blotting confirmed the formation of dimers and tetramers in the secreted rPF4 proteins. Dynamic light scattering revealed the rPF4 oligomerization into of larger complexes of approximately 100-1200 nm in size following heparin supplementation, implying proper protein folding and tetramerization. Moreover, the rPF4 secondary structure was found to be 43.5% Random coil, 32.5% β-sheet, 18.6% α-helix and 4.9% Turn, which is in perfect agreement with the native structure. Our results indicate that the gram-negative type II bacterial secretory system holds a great promise as a reliable protein production strategy with industrial applications. However, further efforts are required to realize the full potential of secretory pathways regarding their application to proteins with distinct characteristics.

摘要

血小板因子 4 是一种由活化的血小板释放到血液中的细胞因子,在肝素诱导的血小板减少症的病因和诊断中起着关键作用。因此,迫切需要一种可持续的、与天然形式结构和功能相似的重组 PF4 来源,用于诊断程序。为此,设计了一个三合一的初级构建体,从中可以衍生出三个二级构建体,每个二级构建体都可以采用 I 型、II 型分泌或细胞质途径。在大肠杆菌 BL21(DE3)中进行蛋白质表达和分泌,并通过 SDS-PAGE 和 Western blot 进行确认。为了进一步提高蛋白质分泌,首先单独研究了几种可控化学因素(包括 IPTG、Triton X-100、蔗糖和甘氨酸)的影响。在下一步中,根据分因子方法,进一步研究了 IPTG、Triton X-100 和甘氨酸对分泌的协同作用。为了确定分泌的重组蛋白的结构和功能,利用动态光散射来确认 rPF4 四聚体化和肝素介导的超大复合物形成。此外,还利用拉曼光谱和 Western blot 分别评估二级和四级结构。在 rPF4 分泌方面,II 型分泌途径优于 I 型。化学增强剂的补充提高了 II 型系统介导的蛋白质分泌,达到约 500 μg/mL 以上。当培养基扩大到 40 mL 时,可从 20 mg 大量纯化出天然 rPF4。Western blot 证实了分泌的 rPF4 蛋白中二聚体和四聚体的形成。动态光散射显示,肝素补充后 rPF4 寡聚化形成约 100-1200nm 的更大复合物,表明蛋白质正确折叠和四聚体化。此外,rPF4 的二级结构为 43.5%无规卷曲、32.5%β-折叠、18.6%α-螺旋和 4.9%转角,与天然结构完全一致。我们的结果表明,革兰氏阴性 II 型细菌分泌系统具有很大的应用前景,是一种可靠的蛋白质生产策略,具有工业应用价值。然而,为了充分发挥分泌途径在具有不同特性的蛋白质中的应用潜力,还需要进一步努力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbcd/7205247/18094267241b/pone.0232661.g001.jpg

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