Centre for Plant Biotechnology and Genomics, Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria (INIA), Universidad Politécnica de Madrid (UPM), Madrid, Spain.
Departamento de Biotecnología-Biología Ve ge tal, Escuela Técnica Superior de Ingeniería Agronómica, Alimentaría y de Biosistemas, Universidad Politécnica de Madrid, Madrid, Spain.
Plant Biotechnol J. 2020 Sep;18(9):1882-1896. doi: 10.1111/pbi.13347. Epub 2020 Apr 7.
The generation of nitrogen fixing crops is considered a challenge that could lead to a new agricultural 'green' revolution. Here, we report the use of synthetic biology tools to achieve and optimize the production of active nitrogenase Fe protein (NifH) in the chloroplasts of tobacco plants. Azotobacter vinelandii nitrogen fixation genes, nifH, M, U and S, were re-designed for protein accumulation in tobacco cells. Targeting to the chloroplast was optimized by screening and identifying minimal length transit peptides performing properly for each specific Nif protein. Putative peptidyl-prolyl cis-trans isomerase NifM proved necessary for NifH solubility in the stroma. Purified NifU, a protein involved in the biogenesis of NifH [4Fe-4S] cluster, was found functional in NifH reconstitution assays. Importantly, NifH purified from tobacco chloroplasts was active in the reduction of acetylene to ethylene, with the requirement of nifU and nifS co-expression. These results support the suitability of chloroplasts to host functional nitrogenase proteins, paving the way for future studies in the engineering of nitrogen fixation in higher plant plastids and describing an optimization pipeline that could also be used in other organisms and in the engineering of new metabolic pathways in plastids.
固氮作物的培育被认为是一项具有挑战性的任务,它可能引发新的农业“绿色”革命。在这里,我们报告了使用合成生物学工具在烟草植物的叶绿体中实现和优化活性氮酶 Fe 蛋白(NifH)的生产。经过重新设计,来自维氏固氮菌的固氮基因 nifH、M、U 和 S 可在烟草细胞中积累蛋白。通过筛选和鉴定每个特定 Nif 蛋白的正确发挥作用的最小长度转运肽来优化靶向叶绿体的效率。假定的肽基脯氨酰顺反异构酶 NifM 被证明对 NifH 在基质中的可溶性是必要的。参与 NifH [4Fe-4S]簇生物发生的纯化 NifU 蛋白被发现可用于 NifH 重组测定。重要的是,从烟草叶绿体中纯化的 NifH 可在乙炔还原为乙烯的反应中发挥作用,需要 nifU 和 nifS 的共表达。这些结果支持叶绿体适合容纳功能性氮酶蛋白,为未来在高等植物质体中进行固氮工程的研究以及描述可用于其他生物体和质体中新代谢途径的工程的优化管道铺平了道路。