A pothole-filling strategy for selective targeting of rCUG-repeats associated with myotonic dystrophy type 1

J J. Dinithi R. Perera (Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University) S Shivaji A. Thadke (Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University) S Savani W. Thrikawala (Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University) I Isha Dhami (Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University) V V. M. Hridya (Department of Chemistry, Indian Institute of Science Education and Research) A Arnab Mukherjee (Department of Chemistry) A Ananya Paul (Department of Chemistry, Georgia State University) W W. David Wilson (Department of Chemistry, Georgia State University) K Keith W. R. Tan (School of Physical and Mathematical Sciences, Nanyang Technological University) N Nicholas Z. W. Chan (School of Physical and Mathematical Sciences, Nanyang Technological University) A Anh Tuân Phan (School of Physical and Mathematical Sciences, Nanyang Technological University) D Danith H. Ly (Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University)

Abstract

We present an alternative approach to conventional small-molecule and antisense strategies for selectively targeting expanded CUG-RNA repeats associated with Myotonic Dystrophy type 1. Our alternatively designed nucleic acid ligands uniquely integrate advantageous features from both existing methods: They are compact (only three units in length), structurally resembling small molecules, yet recognize RNA targets through directional hydrogen-bonding similar to antisense oligonucleotides. Notably, these ligands exhibit greater specificity and selectivity than either approach alone. This enhanced specificity results from their bifacial recognition mechanism, wherein mismatches on one binding interface are reciprocally mirrored on the complementary face. Additionally, their short length significantly amplifies specificity, as even a single mismatch substantially reduces the overall binding free energy, effectively minimizing off-target interactions. Unlike conventional oligonucleotides, these ligands avoid binding single-stranded RNA and only recognize defined hairpin motifs via a “pothole-filling” mechanism. This method amplifies recognition specificity and selectivity, circumventing the thermodynamic penalties associated with RNA unfolding. This proof-of-concept study thus lays a foundation for developing versatile nucleic acid ligands capable of selectively targeting not only pathogenic CUG-RNA repeats in Myotonic Dystrophy type 1 but also other disease-associated triplet-repeat expansions prevalent in various neuromuscular disorders.

Article Details

Volume / Issue Vol. 123, Issue 2
Published January 13, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

J

J. Dinithi R. Perera

Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University

S

Shivaji A. Thadke

Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University

S

Savani W. Thrikawala

Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University

I

Isha Dhami

Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University

V

V. M. Hridya

Department of Chemistry, Indian Institute of Science Education and Research

A

Arnab Mukherjee

Department of Chemistry

A

Ananya Paul

Department of Chemistry, Georgia State University

W

W. David Wilson

Department of Chemistry, Georgia State University

K

Keith W. R. Tan

School of Physical and Mathematical Sciences, Nanyang Technological University

N

Nicholas Z. W. Chan

School of Physical and Mathematical Sciences, Nanyang Technological University

A

Anh Tuân Phan

School of Physical and Mathematical Sciences, Nanyang Technological University

D

Danith H. Ly

Department of Chemistry and Institute for Biomolecular Design and Discovery, Carnegie Mellon University