Four-component protein nanocages designed by programmed symmetry breaking.

Lee, Sangmin; Kibler, Ryan D; Ahn, Green; Hsia, Yang; Borst, Andrew J; Philomin, Annika; Kennedy, Madison A; Huang, Buwei et al. · Nature · 2025

basic_science · Level V

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Abstract

Four, eight or twenty C3 symmetric protein trimers can be arranged with tetrahedral, octahedral or icosahedral point group symmetry to generate closed cage-like structures<sup>1,2</sup>. Viruses access more complex higher triangulation number icosahedral architectures by breaking perfect point group symmetry<sup>3-9</sup>, but nature appears not to have explored similar symmetry breaking for tetrahedral or octahedral symmetries. Here we describe a general design strategy for building higher triangulation number architectures starting from regular polyhedra through pseudosymmetrization of trimeric building blocks. Electron microscopy confirms the structures of T = 4 cages with 48 (tetrahedral), 96 (octahedral) and 240 (icosahedral) subunits, each with 4 distinct chains and 6 different protein-protein interfaces, and diameters of 33 nm, 43 nm and 75 nm, respectively. Higher triangulation number viruses possess very sophisticated functionalities; our general route to higher triangulation number nanocages should similarly enable a next generation of multiple antigen-displaying vaccine candidates<sup>10,11</sup> and targeted delivery vehicles<sup>12,13</sup>.

Medical subject headings