Takeuchi N, Ueda T, Watanabe K
Department of Chemistry and Biotechnology, Graduate School of Engineering, The University of Tokyo, Hongo, Bunkyo-ku, Tokyo, 113-8656, Japan.
J Biochem. 1998 Dec 1;124(6):1069-71. doi: 10.1093/oxfordjournals.jbchem.a022222.
Translational initiation in bacteria and some organelles such as mitochondria and chloroplasts requires formyl-methionyl-tRNA (fMet-tRNA). Methionyl-tRNA (Met-tRNA) undergoes formylation by methionyl-tRNA transformylase (MTF), and the resulting fMet-tRNA is utilized exclusively in the initiation process. The gene encoding mammalian mitochondrial MTF (MTFmt) was cloned recently. When the cDNA corresponding to mature MTFmt was cloned into an expression vector, no expression of MTFmt was observed. However, if the cDNA was fused with the histidine-tag sequence at the N-terminus, MTFmt could be expressed in Escherichia coli. The recombinant enzyme was purified by a single step on a histidine-binding metal affinity column. We previously found that native MTFmt is able to formylate E. coli elongator Met-tRNA as well as the initiator Met-tRNA. The specific formylation of the initiator Met-tRNA by E. coli MTF is quite important in bacterial translational initiation. The purified recombinant MTFmt with the histidine-tag showed almost identical kinetic parameters to those of native MTFmt. This expression system is suitable for the rapid, efficient production of MTFmt in amounts adequate for further biophysical studies, which will provide another approach for elucidating the formylation mechanism, in addition to studies on E. coli MTF.
细菌以及一些细胞器(如线粒体和叶绿体)中的翻译起始需要甲酰甲硫氨酰 - tRNA(fMet - tRNA)。甲硫氨酰 - tRNA(Met - tRNA)由甲硫氨酰 - tRNA转甲酰基酶(MTF)进行甲酰化,生成的fMet - tRNA仅用于起始过程。编码哺乳动物线粒体MTF(MTFmt)的基因最近已被克隆。当将与成熟MTFmt对应的cDNA克隆到表达载体中时,未观察到MTFmt的表达。然而,如果将cDNA在N端与组氨酸标签序列融合,MTFmt就能在大肠杆菌中表达。重组酶通过在组氨酸结合金属亲和柱上一步纯化得到。我们之前发现天然MTFmt能够使大肠杆菌延伸型Met - tRNA以及起始型Met - tRNA甲酰化。大肠杆菌MTF对起始型Met - tRNA的特异性甲酰化在细菌翻译起始中非常重要。带有组氨酸标签的纯化重组MTFmt显示出与天然MTFmt几乎相同的动力学参数。该表达系统适合快速、高效地生产足够量的MTFmt,以用于进一步的生物物理研究,这除了对大肠杆菌MTF的研究之外,还将为阐明甲酰化机制提供另一种方法。