Related Experiment Video
Updated: Jun 26, 2025

Flow-pattern Guided Fabrication of High-density Barcode Antibody Microarray
Published on: January 6, 2016
Computational design of non-porous pH-responsive antibody nanoparticles
Erin C Yang1,2,3, Robby Divine1,2,4,5, Marcos C Miranda1,6
1Institute for Protein Design, University of Washington, Seattle, WA, USA.
Abstract:
Programming protein nanomaterials to respond to changes in environmental conditions is a current challenge for protein design and is important for targeted delivery of biologics. Here we describe the design of octahedral non-porous nanoparticles with a targeting antibody on the two-fold symmetry axis, a designed trimer programmed to disassemble below a tunable pH transition point on the three-fold axis, and a designed tetramer on the four-fold symmetry axis. Designed non-covalent interfaces guide cooperative nanoparticle assembly from independently purified components, and a cryo-EM density map closely matches the computational design model. The designed nanoparticles can package protein and nucleic acid payloads, are endocytosed following antibody-mediated targeting of cell surface receptors, and undergo tunable pH-dependent disassembly at pH values ranging between 5.9 and 6.7. The ability to incorporate almost any antibody into a non-porous pH-dependent nanoparticle opens up new routes to antibody-directed targeted delivery.

