hydrogel capsules
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2021 ◽  
Author(s):  
Veronika Kozlovskaya ◽  
Bing Xue ◽  
Maksim Dolmat ◽  
Eugenia Kharlampieva

Author(s):  
Mathias Steinacher ◽  
Alice Cont ◽  
Huachuan Du ◽  
Alexandre Persat ◽  
Esther Amstad

2021 ◽  
Author(s):  
Yusuke Sato ◽  
Masahiro Takinoue

<p>Phase separation is a key phenomenon in artificial cell construction. Recent studies have shown that the liquid-liquid phase separation of designed-DNA nanostructures induces the formation of liquid-like condensates that eventually become hydrogels by lowering the solution temperature. As a compartmental capsule is an essential artificial cell structure, many studies have focused on the lateral phase separation of artificial lipid vesicles. However, controlling phase separation using a molecular design approach remains challenging. Here, we present the lateral liquid-liquid phase separation of DNA nanostructures that leads to the formation of phase-separated capsule-like hydrogels. We designed three types of DNA nanostructures (two orthogonal and a linker nanostructure) that were adsorbed onto an interface of water-in-oil droplets via electrostatic interactions. The phase separation of DNA nanostructures led to the formation of hydrogels of bicontinuous, patch, and mix patterns, due to the immiscibility of liquid-like DNA during the self-assembly process. The frequency of appearance of these patterns was regulated by designing DNA sequences and altering the mixing ratio of the nanostructures. We constructed a phase diagram for the capsule-like DNA hydrogels by investigating pattern formation under various conditions. Our results provide a method for the design and control of phase-separated hydrogel capsules using sequence-designed DNAs. We envision that by incorporating various DNA nanodevices into DNA hydrogel capsules, the capsules will gain molecular sensing, chemical-information processing, and mechano-chemical actuating functions, allowing the construction of functional molecular systems.</p>


2021 ◽  
Author(s):  
Yusuke Sato ◽  
Masahiro Takinoue

<p>Phase separation is a key phenomenon in artificial cell construction. Recent studies have shown that the liquid-liquid phase separation of designed-DNA nanostructures induces the formation of liquid-like condensates that eventually become hydrogels by lowering the solution temperature. As a compartmental capsule is an essential artificial cell structure, many studies have focused on the lateral phase separation of artificial lipid vesicles. However, controlling phase separation using a molecular design approach remains challenging. Here, we present the lateral liquid-liquid phase separation of DNA nanostructures that leads to the formation of phase-separated capsule-like hydrogels. We designed three types of DNA nanostructures (two orthogonal and a linker nanostructure) that were adsorbed onto an interface of water-in-oil droplets via electrostatic interactions. The phase separation of DNA nanostructures led to the formation of hydrogels of bicontinuous, patch, and mix patterns, due to the immiscibility of liquid-like DNA during the self-assembly process. The frequency of appearance of these patterns was regulated by designing DNA sequences and altering the mixing ratio of the nanostructures. We constructed a phase diagram for the capsule-like DNA hydrogels by investigating pattern formation under various conditions. Our results provide a method for the design and control of phase-separated hydrogel capsules using sequence-designed DNAs. We envision that by incorporating various DNA nanodevices into DNA hydrogel capsules, the capsules will gain molecular sensing, chemical-information processing, and mechano-chemical actuating functions, allowing the construction of functional molecular systems.</p>


2020 ◽  
Vol 5 (6) ◽  
pp. 2000045 ◽  
Author(s):  
Hui Wang ◽  
Haitao Liu ◽  
Fan He ◽  
Wenwen Chen ◽  
Xu Zhang ◽  
...  

2020 ◽  
Vol 8 (19) ◽  
pp. 5476-5488
Author(s):  
Yaqing Wang ◽  
Haitao Liu ◽  
Min Zhang ◽  
Hui Wang ◽  
Wenwen Chen ◽  
...  

One-step synthesis of composite hydrogel capsules (CHCs) that allow engineering hiPSC-derived liver organoids in an oil-free droplet microfluidic system.


2020 ◽  
Vol 11 (2) ◽  
pp. 281-286 ◽  
Author(s):  
Rebecca V. Balaj ◽  
Seung Wook Cho ◽  
Prachi Singh ◽  
Lauren D. Zarzar

Polyelectrolyte capsules stabilize biphasic oil droplets while preserving droplet reconfigurability in the presence of surfactants.


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