Steric hindrance and structural flexibility shape the functional properties of a guanine-rich oligonucleotide

Author:

Troisi Romualdo1ORCID,Napolitano Valeria23,Rossitto Emanuele1,Osman Waleed4,Nagano Masanobu5,Wakui Koji5,Popowicz Grzegorz M23,Yoshimoto Keitaro45ORCID,Sica Filomena1ORCID

Affiliation:

1. Department of Chemical Sciences, University of Naples Federico II , Naples  80126, Italy

2. Institute of Structural Biology, Helmholtz Zentrum München , Ingolstädter Landstraße 1, 85764 , Neuherberg , Germany

3. Biomolecular NMR and Center for Integrated Protein Science Munich at Department Chemie, Technical University of Munich , Lichtenbergstraße 4, 85747 , Garching , Germany

4. Research and Development Division, LinkBIO Co., Ltd. , The ICI Center, 5270 Terada, Toride-shi , Ibaraki  302-0021, Japan

5. Department of Life Sciences, Graduate School of Arts and Sciences, The University of Tokyo , Tokyo 153-8902, Japan

Abstract

Abstract Ligand/protein molecular recognition involves a dynamic process, whereby both partners require a degree of structural plasticity to regulate the binding/unbinding event. Here, we present the characterization of the interaction between a highly dynamic G-rich oligonucleotide, M08s-1, and its target protein, human α-thrombin. M08s-1 is the most active anticoagulant aptamer selected thus far. Circular dichroism and gel electrophoresis analyses indicate that both intramolecular and intermolecular G-quadruplex structures are populated in solution. The presence of thrombin stabilises the antiparallel intramolecular chair-like G-quadruplex conformation, that provides by far the main contribution to the biological activity of the aptamer. The crystal structure of the thrombin-oligonucleotide complex reveals that M08s-1 adopts a kinked structural organization formed by a G-quadruplex domain and a long duplex module, linked by a stretch of five purine bases. The quadruplex motif hooks the exosite I region of thrombin and the duplex region is folded towards the surface of the protein. This structural feature, which has never been observed in other anti-exosite I aptamers with a shorter duplex motif, hinders the approach of a protein substrate to the active site region and may well explain the significant increase in the anticoagulant activity of M08s-1 compared to the other anti-exosite I aptamers.

Funder

AMED

JSPS Transformative Research Areas

SENSHIN Medical Research Foundation

University of Naples Federico II

University of Tokyo

LinkBIO Co. Ltd

Publisher

Oxford University Press (OUP)

Subject

Genetics

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