TY - JOUR
T1 - Undesignable motifs in structural RNAs and combinatorial consequences
AU - Yao, Hua-Ting
AU - Chauve, Cedric
AU - Regnier, Mireille
AU - Ponty, Yann
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2026.
PY - 2026/4
Y1 - 2026/4
N2 - RNA design aims at constructing RiboNucleic Acids (RNA) sequences that perform a predefined biological function, usually modeled by multiple constraints on the sequence and structure level. In its most popular setting, called the inverse folding problem, designed RNAs should adopt a predefined target secondary structure, preferentially to any alternative structure. It was previously observed that some secondary structures are undesignable, i.e. no RNA sequence can fold uniquely into the target structure while satisfying some criterion measuring how preferential this folding is compared to alternative conformations. We show that the proportion of designable secondary structures decreases exponentially with the size of the target secondary structure, for various popular combinations of energy models and design objectives. This exponential decay is, at least in part, due to the existence of undesignable motifs, which can be generically constructed, and jointly analyzed to yield asymptotic upper-bounds on the number of designable structures. Finally, we define a lower bound of the minimal ensemble defect of a secondary structure. We show that, across uniformly distributed secondary structures, such lower bound admits a normal limiting distribution whose two parameters, the expected value and the variance, both growing linearly with the size of secondary structure.
AB - RNA design aims at constructing RiboNucleic Acids (RNA) sequences that perform a predefined biological function, usually modeled by multiple constraints on the sequence and structure level. In its most popular setting, called the inverse folding problem, designed RNAs should adopt a predefined target secondary structure, preferentially to any alternative structure. It was previously observed that some secondary structures are undesignable, i.e. no RNA sequence can fold uniquely into the target structure while satisfying some criterion measuring how preferential this folding is compared to alternative conformations. We show that the proportion of designable secondary structures decreases exponentially with the size of the target secondary structure, for various popular combinations of energy models and design objectives. This exponential decay is, at least in part, due to the existence of undesignable motifs, which can be generically constructed, and jointly analyzed to yield asymptotic upper-bounds on the number of designable structures. Finally, we define a lower bound of the minimal ensemble defect of a secondary structure. We show that, across uniformly distributed secondary structures, such lower bound admits a normal limiting distribution whose two parameters, the expected value and the variance, both growing linearly with the size of secondary structure.
KW - RNA/chemistry
KW - Nucleic Acid Conformation
KW - RNA Folding
KW - Mathematical Concepts
KW - Nucleotide Motifs
KW - Thermodynamics
KW - Models, Molecular
KW - Computational Biology
KW - RNA design
KW - Enumerative Combinatorics
KW - Asymptotics
KW - Secondary structure
KW - RNA Evolution
UR - https://www.scopus.com/pages/publications/105033423679
U2 - 10.1007/s00285-026-02358-6
DO - 10.1007/s00285-026-02358-6
M3 - Article
C2 - 41817779
SN - 0303-6812
VL - 92
JO - Journal of Mathematical Biology
JF - Journal of Mathematical Biology
IS - 4
M1 - 49
ER -