The controlled folding of synthetic polymer chains into single-chain polymeric nanoparticles (SCPNs) of defined size and shape in water is a viable way to create compartmentalized, nanometer-sized structures for a range of biological applications. Understanding the relationship between the polymer's microstructure and the stability of folded structures is crucial to achieving desired applications. Here, we introduce the solvatochromic dye Nile red into SCPNs and apply a combination of spectroscopic and microscopic techniques to relate polymer microstructure to nanoparticle stability in complex biological media and cellular environments. Our experimental data show that the polymer's microstructure has little effect on the stability of SCPNs ...
Achieving the perfection of Nature in forming ordered structures in three dimensions is one of the g...
As a relatively new class of materials, single-chain polymer nanoparticles (SCNPs) just entered the ...
\u3cp\u3eThe dynamic nature of polymeric assemblies makes their stability in biological media a cruc...
The controlled folding of synthetic polymer chains into single-chain polymeric nanoparticles (SCPNs)...
Precise control over the folding pathways of polypeptides using a combination of noncovalent and cov...
Folding a polymer chain into a well-defined single-chain polymeric nanoparticle (SCPN) is a fascinat...
Dynamic single-chain polymeric nanoparticles (SCPNs) are intriguing, bioinspired architectures that ...
\u3cp\u3eDynamic single-chain polymeric nanoparticles (SCPNs) are intriguing, bioinspired architectu...
Dynamic single-chain polymeric nanoparticles (SCPNs) are intriguing, bioinspired architectures that ...
Folding an amphiphilic polymer around a transition metal affords homogeneous, water-soluble, and sta...
Immobilizing biomolecules provides the advantage of observing them individually for extended time pe...
Achieving the perfection of Nature in forming ordered structures in three dimensions is one of the g...
As a relatively new class of materials, single-chain polymer nanoparticles (SCNPs) just entered the ...
\u3cp\u3eThe dynamic nature of polymeric assemblies makes their stability in biological media a cruc...
The controlled folding of synthetic polymer chains into single-chain polymeric nanoparticles (SCPNs)...
Precise control over the folding pathways of polypeptides using a combination of noncovalent and cov...
Folding a polymer chain into a well-defined single-chain polymeric nanoparticle (SCPN) is a fascinat...
Dynamic single-chain polymeric nanoparticles (SCPNs) are intriguing, bioinspired architectures that ...
\u3cp\u3eDynamic single-chain polymeric nanoparticles (SCPNs) are intriguing, bioinspired architectu...
Dynamic single-chain polymeric nanoparticles (SCPNs) are intriguing, bioinspired architectures that ...
Folding an amphiphilic polymer around a transition metal affords homogeneous, water-soluble, and sta...
Immobilizing biomolecules provides the advantage of observing them individually for extended time pe...
Achieving the perfection of Nature in forming ordered structures in three dimensions is one of the g...
As a relatively new class of materials, single-chain polymer nanoparticles (SCNPs) just entered the ...
\u3cp\u3eThe dynamic nature of polymeric assemblies makes their stability in biological media a cruc...