Dong Jia, Croslow Seth W, Lane Stephan T, Castro Daniel C, Blanford Jantana, Zhou Shuaizhen, Park Kiyoul, Burgess Steven, Root Mike, Cahoon Edgar B, Shanklin John, Sweedler Jonathan V, Zhao Huimin, Hudson Matthew E
Department of Crop Sciences, College of Agricultural, Consumer and Environmental Sciences, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Department of Energy Center for Advanced Bioenergy and Bioproducts Innovation, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Plant Cell. 2025 Feb 13;37(2). doi: 10.1093/plcell/koaf026.
Plant bioengineering is a time-consuming and labor-intensive process with no guarantee of achieving desired traits. Here, we present a fast, automated, scalable, high-throughput pipeline for plant bioengineering (FAST-PB) in maize (Zea mays) and Nicotiana benthamiana. FAST-PB enables genome editing and product characterization by integrating automated biofoundry engineering of callus and protoplast cells with single-cell matrix-assisted laser desorption/ionization mass spectrometry (MALDI-MS). We first demonstrated that FAST-PB could streamline Golden Gate cloning, with the capacity to construct 96 vectors in parallel. Using FAST-PB in protoplasts, we found that PEG2050 increased transfection efficiency by over 45%. For proof-of-concept, we established a reporter-gene-free method for CRISPR editing and phenotyping via mutation of high chlorophyll fluorescence 136. We show that diverse lipids were enhanced up to 6-fold using CRISPR activation of lipid controlling genes. In callus cells, an automated transformation platform was employed to regenerate plants with enhanced lipid traits through introducing multigene cassettes. Lastly, FAST-PB enabled high-throughput single-cell lipid profiling by integrating MALDI-MS with the biofoundry, protoplast, and callus cells, differentiating engineered and unengineered cells using single-cell lipidomics. These innovations massively increase the throughput of synthetic biology, genome editing, and metabolic engineering and change what is possible using single-cell metabolomics in plants.
植物生物工程是一个耗时且劳动密集型的过程,无法保证获得所需性状。在此,我们展示了一种用于玉米(Zea mays)和本氏烟草(Nicotiana benthamiana)植物生物工程的快速、自动化、可扩展的高通量流程(FAST-PB)。FAST-PB通过将愈伤组织和原生质体细胞的自动化生物铸造工程与单细胞基质辅助激光解吸/电离质谱(MALDI-MS)相结合,实现了基因组编辑和产物表征。我们首先证明FAST-PB可以简化金门克隆,能够并行构建96个载体。在原生质体中使用FAST-PB,我们发现PEG2050可将转染效率提高45%以上。为了进行概念验证,我们建立了一种通过高叶绿素荧光136突变进行CRISPR编辑和表型分析的无报告基因方法。我们表明,通过CRISPR激活脂质控制基因,多种脂质可增强高达6倍。在愈伤组织细胞中,采用自动化转化平台通过引入多基因盒来再生具有增强脂质性状的植物。最后,FAST-PB通过将MALDI-MS与生物铸造、原生质体和愈伤组织细胞相结合,实现了高通量单细胞脂质谱分析,利用单细胞脂质组学区分工程细胞和未工程化细胞。这些创新极大地提高了合成生物学、基因组编辑和代谢工程的通量,并改变了植物单细胞代谢组学的可能性。