Leuzinger Kahlin, Dent Matthew, Hurtado Jonathan, Stahnke Jake, Lai Huafang, Zhou Xiaohong, Chen Qiang
The College of Technology and Innovation, Center for Infectious Disease and Vaccinology, The Biodesign Institute, Arizona State University, Arizona, USA.
J Vis Exp. 2013 Jul 23(77):50521. doi: 10.3791/50521.
Mammalian cell culture is the major platform for commercial production of human vaccines and therapeutic proteins. However, it cannot meet the increasing worldwide demand for pharmaceuticals due to its limited scalability and high cost. Plants have shown to be one of the most promising alternative pharmaceutical production platforms that are robust, scalable, low-cost and safe. The recent development of virus-based vectors has allowed rapid and high-level transient expression of recombinant proteins in plants. To further optimize the utility of the transient expression system, we demonstrate a simple, efficient and scalable methodology to introduce target-gene containing Agrobacterium into plant tissue in this study. Our results indicate that agroinfiltration with both syringe and vacuum methods have resulted in the efficient introduction of Agrobacterium into leaves and robust production of two fluorescent proteins; GFP and DsRed. Furthermore, we demonstrate the unique advantages offered by both methods. Syringe infiltration is simple and does not need expensive equipment. It also allows the flexibility to either infiltrate the entire leave with one target gene, or to introduce genes of multiple targets on one leaf. Thus, it can be used for laboratory scale expression of recombinant proteins as well as for comparing different proteins or vectors for yield or expression kinetics. The simplicity of syringe infiltration also suggests its utility in high school and college education for the subject of biotechnology. In contrast, vacuum infiltration is more robust and can be scaled-up for commercial manufacture of pharmaceutical proteins. It also offers the advantage of being able to agroinfiltrate plant species that are not amenable for syringe infiltration such as lettuce and Arabidopsis. Overall, the combination of syringe and vacuum agroinfiltration provides researchers and educators a simple, efficient, and robust methodology for transient protein expression. It will greatly facilitate the development of pharmaceutical proteins and promote science education.
哺乳动物细胞培养是人类疫苗和治疗性蛋白质商业化生产的主要平台。然而,由于其有限的可扩展性和高成本,它无法满足全球对药品日益增长的需求。植物已被证明是最有前途的替代药物生产平台之一,具有稳健、可扩展、低成本和安全的特点。基于病毒的载体的最新发展使得重组蛋白能够在植物中快速、高水平地瞬时表达。为了进一步优化瞬时表达系统的效用,我们在本研究中展示了一种简单、高效且可扩展的方法,将含有目标基因的农杆菌引入植物组织。我们的结果表明,通过注射器和真空方法进行农杆菌浸润都能有效地将农杆菌引入叶片,并大量生产两种荧光蛋白:绿色荧光蛋白(GFP)和红色荧光蛋白(DsRed)。此外,我们展示了这两种方法各自独特的优势。注射器浸润操作简单,不需要昂贵的设备。它还具有灵活性,既可以用一个目标基因浸润整片叶子,也可以在一片叶子上引入多个目标基因。因此,它可用于实验室规模的重组蛋白表达,也可用于比较不同蛋白质或载体的产量或表达动力学。注射器浸润的简单性还表明它在高中和大学的生物技术课程教育中具有实用性。相比之下,真空浸润更稳健,可扩大规模用于药用蛋白质的商业化生产。它还具有能够对注射器浸润不适用的植物物种(如生菜和拟南芥)进行农杆菌浸润的优势。总体而言,注射器和真空农杆菌浸润相结合为研究人员和教育工作者提供了一种简单、高效且稳健的瞬时蛋白表达方法。它将极大地促进药用蛋白质的开发并推动科学教育。