| Literature DB >> 32132205 |
Xiang Zhou1, Dongbao Yao2, Wenqiang Hua3, Ningdong Huang4, Xiaowei Chen4, Liangbin Li5, Miao He1, Yunhan Zhang1, Yijun Guo1, Shiyan Xiao2, Fenggang Bian6, Haojun Liang2.
Abstract
As a strategy for regulating entropy, thermal annealing is a commonly adopted approach for controlling dynamic pathways in colloid assembly. By coupling DNA strand-displacement circuits with DNA-functionalized colloid assembly, we developed an enthalpy-mediated strategy for achieving the same goal while working at a constant temperature. Using this tractable approach allows colloidal bonding to be programmed for synchronization with colloid assembly, thereby realizing the optimal programmability of DNA-functionalized colloids. We applied this strategy to conditionally activate colloid assembly and dynamically switch colloid identities by reconfiguring DNA molecular architectures, thereby achieving orderly structural transformations; leveraging the advantage of room-temperature assembly, we used this method to prepare a lattice of temperature-sensitive proteins and gold nanoparticles. This approach bridges two subfields: dynamic DNA nanotechnology and DNA-functionalized colloid programming.Keywords: DNA strand-displacement circuitry; colloid assembly; enthalpy-mediated strategy; programmable colloidal bonding; structural transformation
Year: 2020 PMID: 32132205 PMCID: PMC7084094 DOI: 10.1073/pnas.1917941117
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205