In situ gelation of water-in-oil polymer emulsions is a key method to produce hydrogel particles. Although this approach is in principle ideal for encapsulating bioactive components such as cells, the oil phase can interfere with straightforward presentation of crosslinker molecules. Several approaches have been developed to induce in-emulsion gelation by exploiting the triggered generation or release of crosslinker molecules. However, these methods typically rely on photo- or acid-based reactions that are detrimental to cell survival and functioning. In this work, we demonstrate the diffusion-based supplementation of small molecules for the in-emulsion gelation of multiple tyramine-functionalized polymers via enzymatic crosslinking using a...
Biofunctional hydrogel particles have become increasingly popular in medical diagnostics; however, t...
As stem-cell-based therapies rapidly advance toward clinical applications, there is a need for cheap...
The stability of encapsulation in self-assembly systems is limited during blood circulation because ...
In situ gelation of water-in-oil polymer emulsions is a key method to produce hydrogel particles. Al...
Cell-laden hydrogel microcapsules enable the high-throughput production of cell aggregates, which ar...
Cell-laden micrometer-sized hydrogels (microgels) hold great promise for improving high throughput e...
Cell-laden micrometer-sized hydrogels (microgels) hold great promise for improving high throughput e...
Microscale hydrogels consisting of macromolecular networks in aqueous continuous phases have receive...
In this study, a novel biodegradable hyaluronic acid (HA) based microgel were prepared via enzymatic...
*S Supporting Information ABSTRACT: Micrometer-sized hydrogel particles that contain living cells ca...
Micrometer sized hydrogel particles that contain living cells can be fabricated with exquisite contr...
Microfluidic encapsulation platforms have great potential not only in pharmaceutical applications bu...
Cell-laden microgels with highly uniform sizes have significant potential in tissue engineering and ...
Microgels are hydrophilic polymer matrix with high water content suitable for encapsulation and deli...
National Nature Science Foundation of China [21376194, 21076170]; research fund for the Priority Are...
Biofunctional hydrogel particles have become increasingly popular in medical diagnostics; however, t...
As stem-cell-based therapies rapidly advance toward clinical applications, there is a need for cheap...
The stability of encapsulation in self-assembly systems is limited during blood circulation because ...
In situ gelation of water-in-oil polymer emulsions is a key method to produce hydrogel particles. Al...
Cell-laden hydrogel microcapsules enable the high-throughput production of cell aggregates, which ar...
Cell-laden micrometer-sized hydrogels (microgels) hold great promise for improving high throughput e...
Cell-laden micrometer-sized hydrogels (microgels) hold great promise for improving high throughput e...
Microscale hydrogels consisting of macromolecular networks in aqueous continuous phases have receive...
In this study, a novel biodegradable hyaluronic acid (HA) based microgel were prepared via enzymatic...
*S Supporting Information ABSTRACT: Micrometer-sized hydrogel particles that contain living cells ca...
Micrometer sized hydrogel particles that contain living cells can be fabricated with exquisite contr...
Microfluidic encapsulation platforms have great potential not only in pharmaceutical applications bu...
Cell-laden microgels with highly uniform sizes have significant potential in tissue engineering and ...
Microgels are hydrophilic polymer matrix with high water content suitable for encapsulation and deli...
National Nature Science Foundation of China [21376194, 21076170]; research fund for the Priority Are...
Biofunctional hydrogel particles have become increasingly popular in medical diagnostics; however, t...
As stem-cell-based therapies rapidly advance toward clinical applications, there is a need for cheap...
The stability of encapsulation in self-assembly systems is limited during blood circulation because ...