| Literature DB >> 32725689 |
Xiaocui Guo1, Feng Li1, Chunxia Liu1, Yi Zhu1, Nannan Xiao2, Zi Gu3, Dan Luo4, Jianhui Jiang5, Dayong Yang1.
Abstract
The design of controllable dynamic systems is vital for the construction of organelle-like architectures in living cells, but has proven difficult due to the lack of control over defined topological transformation of self-assembled structures. Herein, we report a DNA based dynamic assembly system that achieves lysosomal acidic microenvironment specifically inducing topological transformation from nanoparticles to organelle-like hydrogel architecture in living cells. Designer DNA nanoparticles are constructed from double-stranded DNA with cytosine-rich stick ends (C-monomer) and are internalized into cells through lysosomal pathway. The lysosomal acidic microenvironment can activate the assembly of DNA monomers, inducing transformation from nanoparticles to micro-sized organelle-like hydrogel which could further escape into cytoplasm. We show how the hydrogel regulates cellular behaviors: cytoskeleton is deformed, cell tentacles are significantly shortened, and cell migration is promoted.Entities:
Keywords: DNA hydrogels; DNA nanotechnology; i-motif DNA; organelle-like structure; self-assembly
Year: 2020 PMID: 32725689 DOI: 10.1002/anie.202009387
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336