Weak-cooperative binding of a long single-stranded DNA chain on a surface

Author:

Nava Giovanni1ORCID,Carzaniga Thomas1ORCID,Casiraghi Luca1ORCID,Bot Erik1ORCID,Zanchetta Giuliano1ORCID,Damin Francesco2ORCID,Chiari Marcella2ORCID,Weber Gerald3ORCID,Bellini Tommaso1ORCID,Mollica Luca1ORCID,Buscaglia Marco1ORCID

Affiliation:

1. Department of Medical Biotechnology and Translational Medicine, Università degli Studi di Milano , via F.lli Cervi 93, 20054 Segrate (MI), Italy

2. Istituto di Scienze e Tecnologie Chimiche ‘Giulio Natta’, National Research Council of Italy (SCITEC-CNR) , via Mario Bianco 11, 20131 Milano, Italy

3. Departamento de Física, Universidade Federal de Minas Gerais , 31270-901 Belo Horizonte, MG, Brazil

Abstract

Abstract Binding gene-wide single-stranded nucleic acids to surface-immobilized complementary probes is an important but challenging process for biophysical studies and diagnostic applications. The challenge comes from the conformational dynamics of the long chain that affects its accessibility and weakens its hybridization to the probes. We investigated the binding of bacteriophage genome M13mp18 on several different 20-mer probes immobilized on the surface of a multi-spot, label-free biosensor, and observed that only a few of them display strong binding capability with dissociation constant as low as 10 pM. Comparing experimental data and computational analysis of the M13mp18 chain structural features, we found that the capturing performance of a specific probe is directly related to the multiplicity of binding sites on the genomic strand, and poorly connected with the predicted secondary and tertiary structure. We show that a model of weak cooperativity of transient bonds is compatible with the measured binding kinetics and accounts for the enhancement of probe capturing observed when more than 20 partial pairings with binding free energy lower than -10 kcal mol−1 are present. This mechanism provides a specific pattern of response of a genomic strand on a panel of properly selected oligomer probe sequences.

Funder

Ministero dell’Università e della Ricerca

European Union

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Piano Sostegno alla Ricerca

University of Milan

Publisher

Oxford University Press (OUP)

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