Department of Materials Science and Biotechnology, Graduate School of Science and Engineering, Ehime University, 3 Bunkyo-cho, Matsuyama, Ehime 790-8577, Japan.
J Biochem. 2018 Aug 1;164(2):141-152. doi: 10.1093/jb/mvy037.
TrmFO catalyzes the formation of 5-methyluridine at position 54 in tRNA and uses N5, N10-methylenetetrahydrofolate (CH2THF) as the methyl group donor. We found that the trmFO gene-disruptant strain of Thermus thermophilus, an extremely thermophilic eubacterium, can grow faster than the wild-type strain in the synthetic medium at 70°C (optimal growth temperature). Nucleoside analysis revealed that the majority of modifications were appropriately introduced into tRNA, showing that the limited nutrients are preferentially consumed in the tRNA modification systems. CH2THF is consumed not only for tRNA methylation by TrmFO but also for dTMP synthesis by ThyX and methionine synthesis by multiple steps including MetF reaction. In vivo experiment revealed that methylene group derived from serine was rapidly incorporated into DNA in the absence of TrmFO. Furthermore, the addition of thymidine to the medium accelerated growth speed of the wild-type strain. Moreover, in vitro experiments showed that TrmFO interfered with ThyX through consumption of CH2THF. Addition of methionine to the medium accelerated growth speed of wild-type strain and the activity of TrmFO was disturbed by MetF. Thus, the consumption of CH2THF by TrmFO has a negative effect on dTMP and methionine syntheses and results in the slow growth under a nutrient-poor condition.
TrmFO 催化 tRNA 中 54 位 5-甲基尿嘧啶的形成,并使用 N5、N10-亚甲基四氢叶酸 (CH2THF) 作为甲基供体。我们发现,一种极端嗜热真细菌 Thermus thermophilus 的 trmFO 基因缺陷型菌株在 70°C(最适生长温度)的合成培养基中比野生型菌株生长得更快。核苷分析表明,大多数修饰都适当地引入了 tRNA,表明有限的营养物质优先被消耗在 tRNA 修饰系统中。CH2THF 不仅被 TrmFO 用于 tRNA 甲基化,还被 ThyX 用于 dTMP 合成以及包括 MetF 反应在内的多个步骤用于甲硫氨酸合成。体内实验表明,在没有 TrmFO 的情况下,丝氨酸衍生的亚甲基迅速掺入到 DNA 中。此外,向培养基中添加胸苷可加速野生型菌株的生长速度。此外,体外实验表明,TrmFO 通过消耗 CH2THF 来干扰 ThyX。向培养基中添加蛋氨酸可加速野生型菌株的生长速度,并且 MetF 会干扰 TrmFO 的活性。因此,TrmFO 对 CH2THF 的消耗对 dTMP 和甲硫氨酸合成有负面影响,导致在营养匮乏的条件下生长缓慢。