解密打捞奎乌苷前体的细菌转运体的多样性

IF 2.5 Q3 GENETICS & HEREDITY
Samia Quaiyum, Yifeng Yuan, Paul J Kuipers, Maria Martinelli, Marshall Jaroch, Valérie de Crécy-Lagard
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引用次数: 0

摘要

奎乌苷(Queuosine,Q)是对带有 GUN 反密码子的 tRNA 的摆动碱基的修饰,对解码的准确性和效率有影响。它的合成过程复杂,需要多个酶解步骤,而且有几种途径的中间产物可以被回收。已知能回收 Q 前体的转运体家族只有两个,即 QPTR/COG1738 和 QrtT/QueT。对人类肠道和口腔微生物群基因组中已知 Q 合成和回收基因分布的分析表明,还有更多的转运体家族有待发现,Q 前体的交换必须在哺乳动物宿主的结构化微环境中进行。通过物理聚类和与 Q 解救基因的融合关联,确定了缺失转运体的候选基因,并在大肠杆菌中通过互补实验测试了五个候选基因。结果发现,来自三个不同 Pfam 家族的三个编码转运体的基因,即酸性杆菌的尿苷渗透酶(PF07168)、布氏双歧杆菌的溶血素 III 家族蛋白(PF03006)和鸡巴顿氏菌的主要促进剂超家族蛋白(PF07690),可以在这个异源系统中转运 preQ0 和 preQ1。这项工作表明,许多转运体家族都能进化出转运 Q 前体的能力,从而加强了转运体可塑性的概念。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deciphering the Diversity in Bacterial Transporters That Salvage Queuosine Precursors.

Queuosine (Q) is a modification of the wobble base of tRNA harboring GUN anticodons with roles in decoding accuracy and efficiency. Its synthesis is complex with multiple enzymatic steps, and several pathway intermediates can be salvaged. The only two transporter families known to salvage Q precursors are QPTR/COG1738 and QrtT/QueT. Analyses of the distribution of known Q synthesis and salvage genes in human gut and oral microbiota genomes have suggested that more transporter families remain to be found and that Q precursor exchanges must occur within the structured microenvironments of the mammalian host. Using physical clustering and fusion-based association with Q salvage genes, candidate genes for missing transporters were identified and five were tested experimentally by complementation assays in Escherichia coli. Three genes encoding transporters from three different Pfam families, a ureide permease (PF07168) from Acidobacteriota bacterium, a hemolysin III family protein (PF03006) from Bifidobacterium breve, and a Major Facilitator Superfamily protein (PF07690) from Bartonella henselae, were found to allow the transport of both preQ0 and preQ1 in this heterologous system. This work suggests that many transporter families can evolve to transport Q precursors, reinforcing the concept of transporter plasticity.

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来源期刊
Epigenomes
Epigenomes GENETICS & HEREDITY-
CiteScore
3.80
自引率
0.00%
发文量
38
审稿时长
11 weeks
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