Design principles and functional basis of enantioselectivity of alanyl-tRNA synthetase and a chiral proofreader during protein biosynthesis

Author:

Sivakumar Koushick12,Venkadasamy Vinitha Lakshmi1,Amudhan Gurumoorthy1,Ann Kezia J1,Goud Gadela Karteek23,Nayani Kiranmai23,Gogoi Jotin1,Kuncha Santosh Kumar1,Mainkar Prathama S23,Kruparani Shobha P1,Sankaranarayanan Rajan14ORCID

Affiliation:

1. CSIR-Centre for Cellular and Molecular Biology (CSIR-CCMB) , Hyderabad , Telangana  500007 , India

2. Academy of Scientific and Innovative Research (AcSIR) , Ghaziabad , Uttar Pradesh  201002 , India

3. Department of Organic Synthesis & Process Chemistry, CSIR-Indian Institute of Chemical Technology (CSIR-IICT) , Hyderabad , Telangana  500007 , India

4. Academy of Scientific and Innovative Research (AcSIR) , CSIR–CCMB campus, Uppal Road , Hyderabad , Telangana  500007 , India

Abstract

Abstract Homochirality of the cellular proteome is attributed to the L-chiral bias of the translation apparatus. The chiral specificity of enzymes was elegantly explained using the ‘four-location’ model by Koshland two decades ago. In accordance with the model, it was envisaged and noted that some aminoacyl-tRNA synthetases (aaRS) that charge larger amino acids are porous to D-amino acids. However, a recent study showed that alanyl-tRNA synthetase (AlaRS) can mischarge D-alanine and that its editing domain, but not the universally present D-aminoacyl-tRNA deacylase (DTD), is responsible for correcting the chirality-based error. Here, using in vitro and in vivo data coupled with structural analysis, we show that AlaRS catalytic site is a strict D-chiral rejection system and therefore does not activate D-alanine. It obviates the need for AlaRS editing domain to be active against D-Ala-tRNAAla and we show that it is indeed the case as it only corrects L-serine and glycine mischarging. We further provide direct biochemical evidence showing activity of DTD on smaller D-aa-tRNAs that corroborates with the L-chiral rejection mode of action proposed earlier. Overall, while removing anomalies in the fundamental recognition mechanisms, the current study further substantiates how chiral fidelity is perpetuated during protein biosynthesis.

Funder

Council of Scientific and Industrial Research for the research fellowship

FIRST

Council of Scientific and Industrial Research, India

J.C. Bose Fellowship of SERB, India, Centre of Excellence Project of Department of Biotechnology, India

Publisher

Oxford University Press (OUP)

Subject

Genetics

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