325 Development of bio-actuator using acellular tissue scaffold

Author(s):  
Kenichi YAMASAKI ◽  
Dohiko TERADA ◽  
Hideo KONDO ◽  
Shigehiro HASHIMOTO ◽  
Toshia FUJISATO
2021 ◽  
pp. 109963
Author(s):  
Yang Sun ◽  
Ruixue Li ◽  
Xiaohua Yu ◽  
Xueyan Li ◽  
Zhihui Han ◽  
...  

2019 ◽  
Vol 5 (7) ◽  
pp. 3462-3474 ◽  
Author(s):  
Eunsoo Lee ◽  
Hyun Jung Kim ◽  
Mohammed R. Shaker ◽  
Jae Ryun Ryu ◽  
Min Seok Ham ◽  
...  

2020 ◽  
Vol 27 (28) ◽  
pp. 4622-4646 ◽  
Author(s):  
Huayu Liu ◽  
Kun Liu ◽  
Xiao Han ◽  
Hongxiang Xie ◽  
Chuanling Si ◽  
...  

Background: Cellulose Nanofibrils (CNFs) are natural nanomaterials with nanometer dimensions. Compared with ordinary cellulose, CNFs own good mechanical properties, large specific surface areas, high Young's modulus, strong hydrophilicity and other distinguishing characteristics, which make them widely used in many fields. This review aims to introduce the preparation of CNFs-based hydrogels and their recent biomedical application advances. Methods: By searching the recent literatures, we have summarized the preparation methods of CNFs, including mechanical methods and chemical mechanical methods, and also introduced the fabrication methods of CNFs-based hydrogels, including CNFs cross-linked with metal ion and with polymers. In addition, we have summarized the biomedical applications of CNFs-based hydrogels, including scaffold materials and wound dressings. Results: CNFs-based hydrogels are new types of materials that are non-toxic and display a certain mechanical strength. In the tissue scaffold application, they can provide a micro-environment for the damaged tissue to repair and regenerate it. In wound dressing applications, it can fit the wound surface and protect the wound from the external environment, thereby effectively promoting the healing of skin tissue. Conclusion: By summarizing the preparation and application of CNFs-based hydrogels, we have analyzed and forecasted their development trends. At present, the research of CNFs-based hydrogels is still in the laboratory stage. It needs further exploration to be applied in practice. The development of medical hydrogels with high mechanical properties and biocompatibility still poses significant challenges.


2013 ◽  
Vol 95 ◽  
pp. 103-106 ◽  
Author(s):  
Tomoaki Kouya ◽  
Shin-ichiro Tada ◽  
Hiromi Minbu ◽  
Yu Nakajima ◽  
Makoto Horimizu ◽  
...  

Author(s):  
Chad E. Eckert ◽  
Brandon T. Mikulis ◽  
Dane Gerneke ◽  
Danielle Gottlieb ◽  
Bruce Smaill ◽  
...  

Engineered heart valve tissue (EHVT) has received much attention as a potential pediatric valve replacement therapy, offering prospective long-term functional improvements over current options. A significant gap in the literature exists, however, regarding estimating tissue mechanical properties from tissue-scaffold composites. Detailed three-dimensional structural information prior to implantation (in vitro) and after implantation in (in vivo) is needed for improved modeling of tissue properties. As such, a novel high-resolution imaging technique will be employed to obtain three-dimensional microstructural information. Analysis techniques will be used to fully quantify constituents of interest including scaffold, collagen, and cellular information and to develop appropriate two-dimensional sectioning sampling protocols. It is the intent of this work to guide modeling efforts to better elucidate EHVT tissue-specific mechanical properties.


2021 ◽  
pp. 1-4
Author(s):  
Preeti Prakash Kale ◽  
Amit Mani ◽  
Raju Anarthe ◽  
Rachita Mustilwar

Tissue engineering aims to reconstruct the natural target tissue by a combination of three key elements stem/progenitor cells (that will create the new tissue), signaling molecules (that instruct the cells to form the desired tissue) scaffold/extracellular matrix (to hold the cells). Regeneration of the periodontal tissues following destructive episodes of various forms of periodontitis is a formidable challenge to periodontologists. Bone morphogenic proteins have been considered as the most potent growth factors that can promote the bone regeneration. This review will emphasize on the unique nature of the tissue engineered bone morphogenic proteins molecules regarding their structure, classification, signaling mechanism, etc. which will further help in understanding their role and potential advances necessary to facilitate the process of regeneration in the field of periodontics.


2014 ◽  
Vol 4 (1) ◽  
Author(s):  
Pei-Shan Li ◽  
I. -Liang Lee ◽  
Wei-Lin Yu ◽  
Jui-Sheng Sun ◽  
Wann-Neng Jane ◽  
...  

Author(s):  
J. Kucinska-Lipka ◽  
H. Janik ◽  
A. Sulowska ◽  
A. Przybytek ◽  
P. Szarlej
Keyword(s):  

PAMM ◽  
2018 ◽  
Vol 18 (1) ◽  
Author(s):  
Julia Nachtsheim ◽  
Gözde Dursun ◽  
Bernd Markert ◽  
Marcus Stoffel

Author(s):  
V.P. Jani ◽  
R. Patel ◽  
R.K. Reddy ◽  
L.R. Zhang ◽  
C.T. Wagner ◽  
...  

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