Cellular spreading is affected not only by the stiffness of the matrix but also by its dynamics. Synthetic hydrogels, formed by the assembly of supramolecular monomers, are intrinsically dynamic and tunable in their stiffness. However, the importance of molecular dynamics resulting in differences in bulk dynamics and stiffness remains elusive. Here, we present two different hydrogel systems employing slow-exchanging ureidopyrimidinone monomers and fast-exchanging benzene-1,3,5-tricarboxamide monomers to decipher design rules for supramolecular hydrogel–cell interactions. To achieve cell spreading, both robust incorporation of cell-binding ligands, reflected in slow molecular dynamics (monomer exchange), and sufficient material resistance, r...
Interfacial migration is central to multiple processes including morphogenesis and wound healing. Ho...
The mechanical and structural properties of the extracellular matrix (ECM) play an important role in...
Traditional synthetic covalent hydrogels lack the native tissue dynamics and hierarchical fibrous st...
Cellular spreading is affected not only by the stiffness of the matrix but also by its dynamics. Syn...
The extracellular matrix (ECM) forms through hierarchical assembly of small and larger polymeric mol...
Few synthetic hydrogels can mimic both the viscoelasticity and supramolecular fibrous structure foun...
There is growing evidence that the mechanical properties of extracellular matrices (ECMs), including...
Mammalian cell behavior is strongly influenced by physical and chemical cues originating from the ex...
The microenvironment of cells is dynamic and undergoes remodeling with time. This is evident in deve...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
One of the promises of synthetic materials in cell culturing is that control over their molecular st...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
Although common in biology, controlled stiffening of hydrogels in vitro is difficult to achieve; the...
\u3cp\u3eThe cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening...
Interfacial migration is central to multiple processes including morphogenesis and wound healing. Ho...
The mechanical and structural properties of the extracellular matrix (ECM) play an important role in...
Traditional synthetic covalent hydrogels lack the native tissue dynamics and hierarchical fibrous st...
Cellular spreading is affected not only by the stiffness of the matrix but also by its dynamics. Syn...
The extracellular matrix (ECM) forms through hierarchical assembly of small and larger polymeric mol...
Few synthetic hydrogels can mimic both the viscoelasticity and supramolecular fibrous structure foun...
There is growing evidence that the mechanical properties of extracellular matrices (ECMs), including...
Mammalian cell behavior is strongly influenced by physical and chemical cues originating from the ex...
The microenvironment of cells is dynamic and undergoes remodeling with time. This is evident in deve...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
One of the promises of synthetic materials in cell culturing is that control over their molecular st...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
Although common in biology, controlled stiffening of hydrogels in vitro is difficult to achieve; the...
\u3cp\u3eThe cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening...
Interfacial migration is central to multiple processes including morphogenesis and wound healing. Ho...
The mechanical and structural properties of the extracellular matrix (ECM) play an important role in...
Traditional synthetic covalent hydrogels lack the native tissue dynamics and hierarchical fibrous st...