cell adhesive
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2022 ◽  
Author(s):  
Kenji Takada ◽  
Asuka Komuro ◽  
Mohammad Asif Ali ◽  
Maninder Singh ◽  
Maiko Okajima ◽  
...  
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2022 ◽  
Vol 6 (1) ◽  
pp. 19
Author(s):  
Bohan Yin ◽  
Hongrong Yang ◽  
Mo Yang

Biophysical cues can regulate stem cell behaviours and have been considered as critical parameters of synthetic biomaterials for tissue engineering. In particular, hydrogels have been utilized as promising biomimetic and biocompatible materials to emulate the microenvironment. Therefore, well-defined mechanical properties of a hydrogel are important to direct desirable phenotypes of cells. Yet, limited research pays attention to engineering soft hydrogel with improved cell adhesive property, which is crucial for stem cell differentiation. Herein, we introduce silica nanoparticles (SiO2 NPs) onto the surface of methacrylated hyaluronic (MeHA) hydrogel to manipulate the presentation of cell adhesive ligands (RGD) clusters, while remaining similar bulk mechanical properties (2.79 ± 0.31 kPa) to that of MeHA hydrogel (3.08 ± 0.68 kPa). RGD peptides are either randomly decorated in the MeHA hydrogel network or on the immobilized SiO2 NPs (forming MeHA–SiO2). Our results showed that human mesenchymal stem cells exhibited a ~1.3-fold increase in the percentage of initial cell attachment, a ~2-fold increase in cell spreading area, and enhanced expressions of early-stage osteogenic markers (RUNX2 and alkaline phosphatase) for cells undergoing osteogenic differentiation with the osteogenic medium on MeHA–SiO2 hydrogel, compared to those cultured on MeHA hydrogel. Importantly, the cells cultivated on MeHA–SiO2 expressed a ~5-fold increase in nuclear localization ratio of the yes-associated protein, which is known to be mechanosensory in stem cells, compared to the cells cultured on MeHA hydrogel, thereby promoting osteogenic differentiation of stem cells. These findings demonstrate the potential use of nanomaterials into a soft polymeric matrix for enhanced cell adhesion and provide valuable guidance for the rational design of biomaterials for implantation.


Small ◽  
2022 ◽  
pp. 2105704
Author(s):  
Urandelger Tuvshindorj ◽  
Vanessa Trouillet ◽  
Aliaksei Vasilevich ◽  
Britta Koch ◽  
Steven Vermeulen ◽  
...  

2022 ◽  
Author(s):  
Sunil Kumar Boda ◽  
Conrado Aparicio

A dual keratinocyte attachment cell adhesive peptides (CAPs) and anti-inflammatory conjugated linoleic acid (CLA) coating as a strategy for promoting soft tissue sealing around transmucosal implants.


Marine Drugs ◽  
2021 ◽  
Vol 19 (12) ◽  
pp. 708
Author(s):  
Qiqi Gao ◽  
Byoung-Soo Kim ◽  
Ge Gao

Alginate is a natural polysaccharide that typically originates from various species of algae. Due to its low cost, good biocompatibility, and rapid ionic gelation, the alginate hydrogel has become a good option of bioink source for 3D bioprinting. However, the lack of cell adhesive moieties, erratic biodegradability, and poor printability are the critical limitations of alginate hydrogel bioink. This review discusses the pivotal properties of alginate hydrogel as a bioink for 3D bioprinting technologies. Afterward, a variety of advanced material formulations and biofabrication strategies that have recently been developed to overcome the drawbacks of alginate hydrogel bioink will be focused on. In addition, the applications of these advanced solutions for 3D bioprinting of tissue/organ mimicries such as regenerative implants and in vitro tissue models using alginate-based bioink will be systematically summarized.


Aging ◽  
2021 ◽  
Author(s):  
Dong-Qi Ni ◽  
Dan-Dan Ma ◽  
Shuang-Li Hao ◽  
Wan-Xi Yang ◽  
Tamas Kovacs ◽  
...  

2021 ◽  
Vol 33 (42) ◽  
pp. 2170333
Author(s):  
Tom Kamperman ◽  
Sieger Henke ◽  
João F. Crispim ◽  
Niels G. A. Willemen ◽  
Pieter J. Dijkstra ◽  
...  

2021 ◽  
pp. 2102660
Author(s):  
Tom Kamperman ◽  
Sieger Henke ◽  
João F. Crispim ◽  
Niels G. A. Willemen ◽  
Pieter J. Dijkstra ◽  
...  

Author(s):  
Yutaka Kawahara ◽  
Takahiro Sekiguchi ◽  
Yutaka Shinahara ◽  
Naotsugu Nagasawa ◽  
Yukihiro Nishikawa ◽  
...  

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