Hatzixanthis Kostas, Clarke Thomas A, Oubrie Arthur, Richardson David J, Turner Raymond J, Sargent Frank
School of Biological Sciences, University of East Anglia, Norwich NR4 7TJ, United Kingdom.
Proc Natl Acad Sci U S A. 2005 Jun 14;102(24):8460-5. doi: 10.1073/pnas.0500737102. Epub 2005 Jun 7.
The twin-arginine transport (Tat) system is a protein-targeting pathway of prokaryotes and chloroplasts. Most Escherichia coli Tat substrates are complex metalloenzymes that must be correctly folded and assembled before transport, and a preexport chaperone-mediated "proofreading" process is therefore in operation. The paradigm proofreading chaperone is TorD, which coordinates maturation and export of the key respiratory enzyme trimethylamine N-oxide reductase (TorA). It is demonstrated here that purified TorD binds tightly and with exquisite specificity to the TorA twin-arginine signal peptide in vitro. It is also reported that the TorD family constitutes a hitherto unexpected class of nucleotide-binding proteins. The affinity of TorD for GTP is enhanced by initial signal peptide binding, and it is proposed that GTP governs signal peptide binding-and-release cycles during Tat proofreading.
双精氨酸转运(Tat)系统是原核生物和叶绿体的一种蛋白质靶向途径。大多数大肠杆菌Tat底物都是复杂的金属酶,在转运之前必须正确折叠和组装,因此存在一种输出前伴侣介导的“校对”过程。典型的校对伴侣是TorD,它协调关键呼吸酶三甲胺N-氧化物还原酶(TorA)的成熟和输出。本文证明,纯化的TorD在体外与TorA双精氨酸信号肽紧密且特异性地结合。还报道了TorD家族构成了一类迄今为止意想不到的核苷酸结合蛋白。初始信号肽结合可增强TorD对GTP的亲和力,并且有人提出GTP在Tat校对过程中控制信号肽的结合和释放循环。