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Updated: Mar 23, 2026

Analyzing and Building Nucleic Acid Structures with 3DNA
Published on: April 26, 2013
A Simple and Fast Semiautomatic Procedure for the Atomistic Modeling of Complex DNA Polyhedra
Cassio Alves1,2, Federico Iacovelli3, Mattia Falconi3
1Instituto de Fisica, Grupo de Fluidos Complexos, Universidade de São Paulo , Caixa Postal 66318, 05314-970 Sao Paulo, Brazil.
Abstract:
A semiautomatic procedure to build complex atomistic covalently linked DNA nanocages has been implemented in a user-friendly, free, and fast program. As a test set, seven different truncated DNA polyhedra, composed by B-DNA double helices connected through short single-stranded linkers, have been generated. The atomistic structures, including a tetrahedron, a cube, an octahedron, a dodecahedron, a triangular prism, a pentagonal prism, and a hexagonal prism, have been probed through classical molecular dynamics and analyzed to evaluate their structural and dynamical properties and to highlight possible building faults. The analysis of the simulated trajectories also allows us to investigate the role of the different geometries in defining nanocages stability and flexibility. The data indicate that the cages are stable and that their structural and dynamical parameters measured along the trajectories are slightly affected by the different geometries. These results demonstrate that the constraints imposed by the covalent links induce an almost identical conformational variability independently of the three-dimensional geometry and that the program presented here is a reliable and valid tool to engineer DNA nanostructures.
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