<i>E. coli</i> production of a multi-disulfide bonded SARS-CoV-2 Omicron BA.5 RBD exhibiting native-like biochemical and biophysical properties

Rawiwan Wongnak, Subbaian Brindha, Takahiro Yoshizue, Sawaros Onchaiya, Kenji Mizutani, Yutaka Kuroda
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Abstract

Low-cost bacterial production of the receptor binding domain (RBD) of the SARS-CoV-2 Omicron spike protein holds significant potential in expediting the development of therapeutics against COVID-19. However, RBD contains eight cysteines forming four disulfide bonds, and expression in E. coli produces insoluble RBD forming non-native disulfide bonds. Here, we expressed RBD in E. coli T7 SHuffle with high aeration, which enhanced disulfide formation in the cytoplasm and reshuffling of non-native disulfide bonds, and at a low temperature of 16°C, which stabilized the native conformation and thus the formation of the native disulfide bonds. The yield of RBD was as high as 3mg per 200 mL culture. We analyzed the conformational and biophysical properties of our E. coli-expressed RBD. First, the RP-HPLC elution profile indicated a single peak suggesting that RBD was folded with a single disulfide bond pairing pattern. Next, circular dichroism analysis indicated a secondary structure content very close to that computed from the crystal structure. RBD’s thermal denaturation monitored by CD was cooperative, strongly indicating a well-folded protein structure. Moreover, limited proteolysis showed that RBD was nearly as stable as RNase A, and the formation of native disulfide bonds was confirmed by LC-MS analysis. Furthermore, BLI analysis indicated a strong binding of RBD with the hACE2 with a dissociation constant of 0.83 nM, confirming the folded nature of RBD. Altogether, these results demonstrate that our E. coli-expression system can provide a large amount of highly purified RBD with correct disulfide bonds and native-like biochemical and biophysical properties.
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& lt; i> E。coli< / i>产生多二硫键合SARS-CoV-2 Omicron BA.5 RBD,具有类似天然生物化学和生物物理特性
低成本细菌生产SARS-CoV-2 Omicron刺突蛋白的受体结合域(RBD)在加速开发针对COVID-19的治疗方法方面具有重大潜力。然而,RBD含有8个半胱氨酸,形成4个二硫键,在大肠杆菌中表达产生不溶性RBD,形成非天然二硫键。我们在大肠杆菌T7 SHuffle中表达RBD,在高通风条件下,增强了细胞质中二硫键的形成和非天然二硫键的重组,在16℃的低温下,稳定了天然构象,从而形成了天然二硫键。RBD的产量高达每200 mL培养基3mg。我们分析了大肠杆菌表达的RBD的构象和生物物理性质。首先,RP-HPLC洗脱谱显示单峰,表明RBD以单一二硫键配对模式折叠。其次,圆二色性分析表明二级结构的含量非常接近从晶体结构计算。CD监测的RBD热变性是协同性的,强烈表明其蛋白质结构折叠良好。此外,有限的蛋白水解表明RBD几乎与RNase A一样稳定,并且LC-MS分析证实了天然二硫键的形成。此外,BLI分析表明RBD与hACE2有很强的结合,解离常数为0.83 nM,证实了RBD的折叠性质。总之,这些结果表明,我们的大肠杆菌表达系统可以提供大量高纯度的RBD,具有正确的二硫键和天然的生化和生物物理性质。
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