Deka Ranjit K, Brautigam Chad A, Liu Wei Z, Tomchick Diana R, Norgard Michael V
Department of Microbiology, The University of Texas Southwestern Medical Center, Dallas, Texas, USA.
Department of Biophysics, The University of Texas Southwestern Medical Center, Dallas, Texas, USA.
mBio. 2015 May 5;6(3):e00519-15. doi: 10.1128/mBio.00519-15.
The syphilis spirochete Treponema pallidum is an important human pathogen but a highly enigmatic bacterium that cannot be cultivated in vitro. T. pallidum lacks many biosynthetic pathways and therefore has evolved the capability to exploit host-derived metabolites via its periplasmic lipoprotein repertoire. We recently reported a flavin-trafficking protein in T. pallidum (Ftp_Tp; TP0796) as the first bacterial metal-dependent flavin adenine dinucleotide (FAD) pyrophosphatase that hydrolyzes FAD into AMP and flavin mononucleotide (FMN) in the spirochete's periplasm. However, orthologs of Ftp_Tp from other bacteria appear to lack this hydrolytic activity; rather, they bind and flavinylate subunits of a cytoplasmic membrane redox system (Nqr/Rnf). To further explore this dichotomy, biochemical analyses, protein crystallography, and structure-based mutagenesis were used to show that a single amino acid change (N55Y) in Ftp_Tp converts it from an Mg(2+)-dependent FAD pyrophosphatase to an FAD-binding protein. We also demonstrated that Ftp_Tp has a second enzymatic activity (Mg(2+)-FMN transferase); it flavinylates protein(s) covalently with FMN on a threonine side chain of an appropriate sequence motif using FAD as the substrate. Moreover, mutation of a metal-binding residue (D284A) eliminates Ftp_Tp's dual activities, thereby underscoring the role of Mg(2+) in the enzyme-catalyzed reactions. The posttranslational flavinylation activity that can target a periplasmic lipoprotein (TP0171) has not previously been described. The observed activities reveal the catalytic flexibility of a treponemal protein to perform multiple functions. Together, these findings imply mechanisms by which a dynamic pool of flavin cofactor is maintained and how flavoproteins are generated by Ftp_Tp locally in the T. pallidum periplasm.
Treponema pallidum, the syphilis spirochete, exploits its periplasmic lipoproteins for a number of essential physiologic processes. One of these, flavin-trafficking protein (Ftp), not only exploits its catalytic center to mediate posttranslational flavinylation of proteins (to create flavoproteins) but also likely maintains the periplasmic flavin pool via its unique ability to hydrolyze FAD. This functional diversity within a single lipoprotein is quite remarkable and reflects the enzymatic versatility of the treponemal lipoproteins, as well as molecular parsimony in an organism with a limited genome. Ftp-mediated protein flavinylation in the periplasm also likely is a key aspect of a predicted flavin-dependent Rnf-based redox homeostasis system at the cytoplasmic membrane of T. pallidum. In addition to its importance in T. pallidum physiology, Ftp homologs exist in other bacteria, thereby expanding our understanding of the bacterial periplasm as a metabolically active subcellular compartment for flavoprotein biogenesis as well as flavin homeostasis.
梅毒螺旋体苍白密螺旋体是一种重要的人类病原体,但却是一种高度神秘的细菌,无法在体外培养。苍白密螺旋体缺乏许多生物合成途径,因此通过其周质脂蛋白库进化出利用宿主衍生代谢物的能力。我们最近报道了苍白密螺旋体中的一种黄素转运蛋白(Ftp_Tp;TP0796),它是第一种细菌金属依赖性黄素腺嘌呤二核苷酸(FAD)焦磷酸酶,可在螺旋体周质中将FAD水解为AMP和黄素单核苷酸(FMN)。然而,来自其他细菌的Ftp_Tp直系同源物似乎缺乏这种水解活性;相反,它们结合并使细胞质膜氧化还原系统(Nqr/Rnf)的亚基黄素化。为了进一步探究这种差异,我们采用生化分析、蛋白质晶体学和基于结构的诱变方法,证明Ftp_Tp中的单个氨基酸变化(N55Y)将其从Mg(2+)依赖性FAD焦磷酸酶转变为FAD结合蛋白。我们还证明Ftp_Tp具有第二种酶活性(Mg(2+)-FMN转移酶);它以FAD为底物,在适当序列基序的苏氨酸侧链上用FMN共价使蛋白质黄素化。此外,金属结合残基(D284A)的突变消除了Ftp_Tp的双重活性,从而强调了Mg(2+)在酶催化反应中的作用。此前尚未描述过可靶向周质脂蛋白(TP0171)的翻译后黄素化活性。观察到的活性揭示了梅毒螺旋体蛋白执行多种功能的催化灵活性。总之,这些发现暗示了维持黄素辅因子动态库的机制,以及Ftp_Tp如何在苍白密螺旋体周质中局部产生黄素蛋白。
梅毒螺旋体苍白密螺旋体利用其周质脂蛋白进行许多基本生理过程。其中之一,黄素转运蛋白(Ftp)不仅利用其催化中心介导蛋白质的翻译后黄素化(以产生黄素蛋白),还可能通过其独特的水解FAD能力维持周质黄素库。单个脂蛋白内的这种功能多样性非常显著,反映了梅毒螺旋体脂蛋白的酶多功能性,以及基因组有限的生物体中的分子简约性。Ftp介导的周质蛋白质黄素化也可能是苍白密螺旋体细胞质膜上预测的基于黄素依赖性Rnf的氧化还原稳态系统的一个关键方面。除了在苍白密螺旋体生理学中的重要性外,Ftp同源物存在于其他细菌中,从而扩展了我们对细菌周质作为黄素蛋白生物合成以及黄素稳态的代谢活跃亚细胞区室的理解。