Gao, RuixuanYu, Chih-Chieh (Jay)Gao, LinyiPiatkevich, Kiryl D.Neve, RachaelMunro, James B.Upadhyayula, SrigokulBoyden, Edward S.2023-02-162021-03-29Gao, Ruixuan, Chih-Chieh Jay Yu, Linyi Gao, Kiryl D Piatkevich, Rachael L Neve, James B Munro, Srigokul Upadhyayula, and Edward S Boyden. 2021. “A Highly Homogeneous Polymer Composed of Tetrahedron-Like Monomers for High-Isotropy Expansion Microscopy.” Nature Nanotechnology 16 (6): 698–707.1748-33871748-3395https://nrs.harvard.edu/URN-3:HUL.INSTREPOS:37374382Expansion microscopy (ExM) physically magnifies biological specimens to enable nanoscale-resolution imaging on conventional microscopes. Current ExM methods permeate specimens with free-radical-chain-growth-polymerized polyacrylate hydrogels, whose network structure limits the local isotropy of expansion, and the preservation of morphology and shape at the nanoscale. Here we report that ExM is possible using hydrogels with more homogeneous network structure, assembled via non-radical terminal linking of tetrahedral monomers. As with earlier forms of ExM, such “tetra-gel”-embedded specimens can be iteratively expanded for greater physical magnification. Iterative tetra-gel expansion of HSV-1 virions by ~10x in linear dimension results in a median spatial error of 9.2 nm for localizing the viral envelope layer, rather than 14.3 nm from earlier versions of ExM. Moreover, tetra-gel-based expansion better preserved virion spherical shape. Thus, tetra-gels may support ExM with reduced spatial errors and improved local isotropy, pointing the way towards single biomolecule precision ExM.en-USElectrical and Electronic EngineeringCondensed Matter PhysicsGeneral Materials ScienceBiomedical EngineeringAtomic and Molecular Physics, and OpticsBioengineeringA Highly Homogeneous Polymer Composed of Tetrahedron-Like Monomers for High-Isotropy Expansion MicroscopyJournal Article2023-02-1610.1038/s41565-021-00875-7