Benedetti Manuel, Vecchi Valeria, Guardini Zeno, Dall'Osto Luca, Bassi Roberto
Dipartimento di Medicina Clinica, Sanità Pubblica, Scienze della Vita e dell'Ambiente, Università dell'Aquila, Piazzale Salvatore Tommasi 1, 67100 L'Aquila, Italy.
Dipartimento di Biotecnologie, Università di Verona, Strada Le Grazie 15, 37134 Verona, Italy.
Plants (Basel). 2020 Dec 18;9(12):1799. doi: 10.3390/plants9121799.
Plant expression of microbial Cell Wall Degrading Enzymes (CWDEs) is a valuable strategy to produce industrial enzymes at affordable cost. Unfortunately, the constitutive expression of CWDEs may affect plant fitness to variable extents, including developmental alterations, sterility and even lethality. In order to explore novel strategies for expressing CWDEs in crops, the cellobiohydrolase CBM3GH5, from the hyperthermophilic bacterium , was constitutively expressed in by targeting the enzyme both to the apoplast and to the protein storage vacuole. The apoplast targeting failed to isolate plants expressing the recombinant enzyme despite a large number of transformants being screened. On the opposite side, the targeting of the cellobiohydrolase to the protein storage vacuole led to several transgenic lines expressing CBM3GH5, with an enzyme yield of up to 0.08 mg g DW (1.67 Units g DW) in the mature leaf tissue. The analysis of CBM3GH5 activity revealed that the enzyme accumulated in different plant organs in a developmental-dependent manner, with the highest abundance in mature leaves and roots, followed by seeds, stems and leaf ribs. Notably, both leaves and stems from transgenic plants were characterized by an improved temperature-dependent saccharification profile.
在植物中表达微生物细胞壁降解酶(CWDEs)是一种以可承受的成本生产工业酶的宝贵策略。不幸的是,CWDEs的组成型表达可能在不同程度上影响植物适应性,包括发育改变、不育甚至致死。为了探索在作物中表达CWDEs的新策略,来自嗜热细菌的纤维二糖水解酶CBM3GH5通过将该酶靶向质外体和蛋白质储存液泡,在[具体植物名称未给出]中组成型表达。尽管筛选了大量转化体,但质外体靶向未能分离出表达重组酶的植物。相反,将纤维二糖水解酶靶向蛋白质储存液泡导致了几个表达CBM3GH5的转基因系,在成熟叶片组织中的酶产量高达0.08 mg g干重(1.67单位g干重)。对CBM3GH5活性的分析表明,该酶以发育依赖性方式在不同植物器官中积累,在成熟叶片和根中丰度最高,其次是种子、茎和叶脉。值得注意的是,转基因植物的叶片和茎均具有改善的温度依赖性糖化特征。