A Three-Dimensional Culture System with Matrigel Promotes Purified Spiral Ganglion Neuron Survival and Function In Vitro

2017 ◽  
Vol 55 (3) ◽  
pp. 2070-2084 ◽  
Author(s):  
Wenqing Yan ◽  
Wenwen Liu ◽  
Jieyu Qi ◽  
Qiaojun Fang ◽  
Zhaomin Fan ◽  
...  
2014 ◽  
Vol 314 ◽  
pp. 60-64 ◽  
Author(s):  
Youzhong Li ◽  
Anquan Peng ◽  
Shenglei Ge ◽  
Qin Wang ◽  
Jiajia Liu

2011 ◽  
Vol 282 (1-2) ◽  
pp. 303-313 ◽  
Author(s):  
Thomas G. Landry ◽  
Andrew K. Wise ◽  
James B. Fallon ◽  
Robert K. Shepherd

2002 ◽  
Vol 167 (1-2) ◽  
pp. 110-121 ◽  
Author(s):  
Dominik Brors ◽  
Christoph Aletsee ◽  
Konrad Schwager ◽  
Robert Mlynski ◽  
Stefan Hansen ◽  
...  

2016 ◽  
Vol 2016 ◽  
pp. 1-15 ◽  
Author(s):  
Gaoying Sun ◽  
Wenwen Liu ◽  
Zhaomin Fan ◽  
Daogong Zhang ◽  
Yuechen Han ◽  
...  

Whole organ culture of the spiral ganglion region is a resourceful model system facilitating manipulation and analysis of live sprial ganglion neurons (SGNs). Three-dimensional (3D) cultures have been demonstrated to have many biomedical applications, but the effect of 3D culture in maintaining the SGNs structure and function in explant culture remains uninvestigated. In this study, we used the matrigel to encapsulate the spiral ganglion region isolated from neonatal mice. First, we optimized the matrigel concentration for the 3D culture system and found the 3D culture system protected the SGNs against apoptosis, preserved the structure of spiral ganglion region, and promoted the sprouting and outgrowth of SGNs neurites. Next, we found the 3D culture system promoted growth cone growth as evidenced by a higher average number and a longer average length of filopodia and a larger growth cone area. 3D culture system also significantly elevated the synapse density of SGNs. Last, we found that the 3D culture system combined with neurotrophic factors had accumulated effects in promoting the neurites outgrowth compared with 3D culture or NFs treatment only groups. Together, we conclude that the 3D culture system preserves the structure and function of SGN in explant culture.


2003 ◽  
Vol 12 (5) ◽  
pp. 491-498 ◽  
Author(s):  
Hideki Nonaka ◽  
Hirohiko Ise ◽  
Nobuhiro Sugihara ◽  
Shinichi Hirose ◽  
Naoki Negishi ◽  
...  

It is difficult to a produce highly functional bioartificial liver (BAL) using only hepatocytes, because it is believed that liver-specific three-dimensional structure is necessary to maintain high function for BAL. But it is difficult to construct a culture system with liver-specific three-dimensional structure in vitro. To realize a highly functional culture system with liver-specific three-dimensional structure, we developed a culture system using liver slices that keep liver-specific architecture, such as liver lobule and hepatic microvascular system. Liver slices were embedded in agarose gel to maintain them under a moist and three-dimensional environment. We examined the viability and function of liver slices by using various shapes of agarose gel. Liver slices were cultured 1) under stationary condition (control), 2) directly embedded in gel, and 3) embedded in cylindrical gel for good drainage of medium and ventilation of air. The viability and function of the incubated liver slices were evaluated by LDH leakage, histomorphology, and immunohistochemistry. At 10 days, the morphological condition and function of liver slices embedded in cylindrical gel were maintained better than liver slices directly embedded in gel or in the stationary condition. We suggest that high functionality and morphological condition of liver slices could be maintained by embedding in cylindrical gel. In the future, it is possible that this method could be used to develop a highly functional bioartificial liver.


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