Ahmad Sadeem, Muthukumar Sowndarya, Kuncha Santosh Kumar, Routh Satya Brata, Yerabham Antony S K, Hussain Tanweer, Kamarthapu Venu, Kruparani Shobha P, Sankaranarayanan Rajan
Centre for Cellular and Molecular Biology, Council of Scientific and Industrial Research, Uppal Road, Hyderabad 500007, India.
Nat Commun. 2015 Jun 26;6:7552. doi: 10.1038/ncomms8552.
Proofreading modules of aminoacyl-tRNA synthetases are responsible for enforcing a high fidelity during translation of the genetic code. They use strategically positioned side chains for specifically targeting incorrect aminoacyl-tRNAs. Here, we show that a unique proofreading module possessing a D-aminoacyl-tRNA deacylase fold does not use side chains for imparting specificity or for catalysis, the two hallmark activities of enzymes. We show, using three distinct archaea, that a side-chain-stripped recognition site is fully capable of solving a subtle discrimination problem. While biochemical probing establishes that RNA plays the catalytic role, mechanistic insights from multiple high-resolution snapshots reveal that differential remodelling of the catalytic core at the RNA-peptide interface provides the determinants for correct proofreading activity. The functional crosstalk between RNA and protein elucidated here suggests how primordial enzyme functions could have emerged on RNA-peptide scaffolds before recruitment of specific side chains.
氨酰-tRNA合成酶的校对模块负责在遗传密码翻译过程中确保高保真度。它们利用位置巧妙的侧链来特异性靶向错误的氨酰-tRNA。在此,我们表明,一个具有D-氨酰-tRNA脱酰基酶折叠的独特校对模块并不利用侧链来赋予特异性或进行催化,而这两项是酶的标志性活性。我们利用三种不同的古菌表明,一个去除了侧链的识别位点完全能够解决一个微妙的区分问题。虽然生化探测证实RNA发挥催化作用,但来自多个高分辨率快照的机制见解表明,RNA-肽界面处催化核心的差异重塑为正确的校对活性提供了决定因素。此处阐明的RNA与蛋白质之间的功能串扰提示了在招募特定侧链之前,原始酶功能可能是如何在RNA-肽支架上出现的。