Davis Aubrey, Crum Lauren T, Corbeil Lynette B, Hildebrand Mark
Marine Biology Research Division, Scripps Institution of Oceanography, 9500 Gilman Dr, La Jolla, CA, 92093, USA.
Department of Pathology, School of Medicine, UC San Diego, San Diego, CA, USA.
Appl Microbiol Biotechnol. 2017 Jul;101(13):5313-5324. doi: 10.1007/s00253-017-8267-8. Epub 2017 Apr 12.
Increasing demand for the low-cost production of valuable proteins has stimulated development of novel expression systems. Many challenges faced by existing technology may be overcome by using unicellular microalgae as an expression platform due to their ability to be cultivated rapidly, inexpensively, and in large scale. Diatoms are a particularly productive type of unicellular algae showing promise as production organisms. Here, we report the development of an expression system in the diatom Thalassiosira pseudonana by expressing the protective IbpA DR2 antigen from Histophilus somni for the production of a vaccine against bovine respiratory disease. The utilization of diatoms with their typically silicified cell walls permitted development of silicon-responsive transcription elements to induce protein expression. Specifically, we demonstrate that transcription elements from the silicon transporter gene SIT1 are sufficient to drive high levels of IbpA DR2 expression during silicon limitation and growth arrest. These culture conditions eliminate the flux of cellular resources into cell division processes, yet do not limit protein expression. In addition to improving protein expression levels by molecular manipulations, yield was dramatically increased through cultivation enhancement including elevated light and CO supplementation. We substantially increased recombinant protein production over starting levels to 1.2% of the total sodium dodecyl sulfate-extractable protein in T. pseudonana, which was sufficient to conduct preliminary immunization trials in mice. Mice exposed to 5 μg of diatom-expressed DR2 in whole or sonicated cells (without protein purification) exhibited a modest immune response without the addition of adjuvant.
对低成本生产有价值蛋白质的需求不断增加,刺激了新型表达系统的开发。由于单细胞微藻能够快速、廉价且大规模培养,现有技术面临的许多挑战可以通过将其用作表达平台来克服。硅藻是一种特别高产的单细胞藻类,有望成为生产生物。在此,我们报告了通过表达来自睡眠嗜血杆菌的保护性IbpA DR2抗原,在硅藻三角褐指藻中开发一种表达系统,用于生产抗牛呼吸道疾病的疫苗。利用具有典型硅化细胞壁的硅藻,开发了硅响应转录元件来诱导蛋白质表达。具体而言,我们证明来自硅转运蛋白基因SIT1的转录元件足以在硅限制和生长停滞期间驱动高水平的IbpA DR2表达。这些培养条件消除了细胞资源向细胞分裂过程的流动,但不限制蛋白质表达。除了通过分子操作提高蛋白质表达水平外,通过包括提高光照和补充CO在内的培养增强措施,产量大幅提高。我们将重组蛋白产量从起始水平大幅提高到三角褐指藻中十二烷基硫酸钠可提取总蛋白的1.2%,这足以在小鼠中进行初步免疫试验。暴露于5μg全细胞或超声破碎细胞(未进行蛋白质纯化)中硅藻表达的DR2的小鼠,在不添加佐剂的情况下表现出适度的免疫反应。