Department of Molecular and Cellular Biology, University of Guelph, Guelph, ON, Canada.
PlantForm Corporation Canada, Toronto, ON, Canada.
Plant Biotechnol J. 2024 Aug;22(8):2248-2266. doi: 10.1111/pbi.14342. Epub 2024 Mar 22.
The need for therapeutics to treat a plethora of medical conditions and diseases is on the rise and the demand for alternative approaches to mammalian-based production systems is increasing. Plant-based strategies provide a safe and effective alternative to produce biological drugs but have yet to enter mainstream manufacturing at a competitive level. Limitations associated with batch consistency and target protein production levels are present; however, strategies to overcome these challenges are underway. In this study, we apply state-of-the-art mass spectrometry-based proteomics to define proteome remodelling of the plant following agroinfiltration with bacteria grown under shake flask or bioreactor conditions. We observed distinct signatures of bacterial protein production corresponding to the different growth conditions that directly influence the plant defence responses and target protein production on a temporal axis. Our integration of proteomic profiling with small molecule detection and quantification reveals the fluctuation of secondary metabolite production over time to provide new insight into the complexities of dual system modulation in molecular pharming. Our findings suggest that bioreactor bacterial growth may promote evasion of early plant defence responses towards Agrobacterium tumefaciens (updated nomenclature to Rhizobium radiobacter). Furthermore, we uncover and explore specific targets for genetic manipulation to suppress host defences and increase recombinant protein production in molecular pharming.
治疗多种医疗状况和疾病的疗法的需求正在上升,对替代哺乳动物生产系统方法的需求也在增加。基于植物的策略为生产生物药物提供了安全有效的替代方法,但尚未在具有竞争力的水平上进入主流制造。批次一致性和目标蛋白生产水平相关的限制仍然存在;然而,克服这些挑战的策略正在进行中。在这项研究中,我们应用基于最先进的质谱的蛋白质组学来定义在细菌在摇瓶或生物反应器条件下生长时进行农杆菌浸润后植物的蛋白质组重塑。我们观察到了与不同生长条件相对应的细菌蛋白质生产的明显特征,这些条件直接影响植物防御反应和目标蛋白在时间轴上的生产。我们将蛋白质组分析与小分子检测和定量相结合,揭示了次生代谢产物生产随时间的波动,为双系统在分子植药中的调控复杂性提供了新的见解。我们的研究结果表明,生物反应器中的细菌生长可能促进了根瘤农杆菌(更新的名称为 Rhizobium radiobacter)早期植物防御反应的逃避。此外,我们发现并探索了用于遗传操作的特定目标,以抑制宿主防御并提高分子植药中的重组蛋白生产。