Pyridine-containing block copolymers are a special type of macromolecules, and they can self-assemble into highly-ordered nano-objects for a wide range of applications due to their multiple properties including the hydrogen...
Transgenic
RNA interference (RNAi) represents a burgeoning and
promising alternative avenue to manage plant diseases and insect pests
in plants. Nonviral nanostructured dsRNA carriers have been demonstrated
to possess great potential to facilitate the application of RNAi.
However, it remains a critical challenge to achieve the targeted and
effective release of dsRNA into the pest cells, limiting the efficiency
of the biological control of pests and diseases in practical applications.
In this study, we designed and constructed a new type of core–shell
polymeric nanostructure (CSPN) with controllable structure, eco-friendliness,
and good biocompatibility, on which dsRNA can be efficiently loaded.
Once loaded into CSPNs, the dsRNA can be effectively prevented from
nonsense degradation by enzymes before entering cells, and it shows
targeted and image-guided release triggered by intracellular ATP,
which significantly increases the efficiency of gene transfection.
Significantly, the in vivo study of the typical lepidoptera
silkworm after oral feeding demonstrates the potential of dsCHT10 in CSPNs for a much better knockdown efficiency than
that of naked dsCHT10. This innovation enables the
nanotechnology developed for the disease microenvironment-triggered
release of therapeutic genes for application in sustainable crop protection.
scite is a Brooklyn-based organization that helps researchers better discover and understand research articles through Smart Citations–citations that display the context of the citation and describe whether the article provides supporting or contrasting evidence. scite is used by students and researchers from around the world and is funded in part by the National Science Foundation and the National Institute on Drug Abuse of the National Institutes of Health.