Substrate Affinity Versus Catalytic Efficiency: Ancestral Sequence Reconstruction of tRNA Nucleotidyltransferases Solves an Enzyme Puzzle

Author:

Hager Martina1,Pöhler Marie-Theres1,Reinhardt Franziska23,Wellner Karolin1,Hübner Jessica2,Betat Heike1,Prohaska Sonja2345,Mörl Mario1ORCID

Affiliation:

1. Institute for Biochemistry, Leipzig University , Brüderstraße 34, D-04103 Leipzig , Germany

2. Computational EvoDevo Group, Institute for Computer Science, Leipzig University , Härtelstr. 16-18, 04109 Leipzig , Germany

3. Interdisciplinary Centre for Bioinformatics, Leipzig University , Härtelstr. 16-18, 04109 Leipzig , Germany

4. Santa Fe Institute , 1399 Hyde Park Road, Santa Fe, NM 87501 , USA

5. Complexity Science Hub Vienna , Josefstädter Str. 39, 1080 Wien , Austria

Abstract

Abstract In tRNA maturation, CCA-addition by tRNA nucleotidyltransferase is a unique and highly accurate reaction. While the mechanism of nucleotide selection and polymerization is well understood, it remains a mystery why bacterial and eukaryotic enzymes exhibit an unexpected and surprisingly low tRNA substrate affinity while they efficiently catalyze the CCA-addition. To get insights into the evolution of this high-fidelity RNA synthesis, the reconstruction and characterization of ancestral enzymes is a versatile tool. Here, we investigate a reconstructed candidate of a 2 billion years old CCA-adding enzyme from Gammaproteobacteria and compare it to the corresponding modern enzyme of Escherichia coli. We show that the ancestral candidate catalyzes an error-free CCA-addition, but has a much higher tRNA affinity compared with the extant enzyme. The consequence of this increased substrate binding is an enhanced reverse reaction, where the enzyme removes the CCA end from the mature tRNA. As a result, the ancestral candidate exhibits a lower catalytic efficiency in vitro as well as in vivo. Furthermore, the efficient tRNA interaction leads to a processive polymerization, while the extant enzyme catalyzes nucleotide addition in a distributive way. Thus, the modern enzymes increased their polymerization efficiency by lowering the binding affinity to tRNA, so that CCA synthesis is efficiently promoted due to a reduced reverse reaction. Hence, the puzzling and at a first glance contradicting and detrimental weak substrate interaction represents a distinct activity enhancement in the evolution of CCA-adding enzymes.

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,Ecology, Evolution, Behavior and Systematics

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