mesenchymal stem cell culture
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2021 ◽  
Vol 43 (1) ◽  
pp. 251-263
Author(s):  
Egidijus Šimoliūnas ◽  
Paulius Kantakevičius ◽  
Miglė Kalvaitytė ◽  
Lina Bagdzevičiūtė ◽  
Milda Alksnė ◽  
...  

Effective cell number monitoring throughout the three-dimensional (3D) scaffold is a key factor in tissue engineering. There are many methods developed to evaluate cell number in 2D environments; however, they often encounter limitations in 3D. Therefore, there is a demand for reliable methods to measure cell proliferation in 3D surroundings. Here, we report a novel technique for the DNA content-based evaluation of cell proliferation using DNA-binding dye DAPI. We demonstrated the method’s compatibility with four different cell cultures: cancer lines MCF-7 and MH-22a, embryonic fibroblast cell line Swiss 3T3, and primary mesenchymal stem cell culture isolated from rat’s incisors. The DAPI based method was able to successfully evaluate cell proliferation in 2D, 2.5D, and 3D environments. Even though the proposed method does not discriminate between viable and dead cells, it might give a convenient snapshot of the cell number at a given time point. This should help to more reliably evaluate various processes proceeding in 2.5D and 3D cultures.


2021 ◽  
Vol 146 ◽  
pp. 110269
Author(s):  
Maria Guillot-Ferriols ◽  
Ana del Barrio ◽  
Carlos M. Costa ◽  
Senentxu Lanceros Méndez ◽  
José Carlos Rodríguez-Cabello ◽  
...  

2020 ◽  
Vol 117 ◽  
pp. 111281 ◽  
Author(s):  
M. Guillot-Ferriols ◽  
J.C. Rodríguez-Hernández ◽  
D.M. Correia ◽  
S.A.C. Carabineiro ◽  
S. Lanceros-Méndez ◽  
...  

2020 ◽  
Vol 196 ◽  
pp. 111322 ◽  
Author(s):  
María Laura Lastra ◽  
José Luis Gómez Ribelles ◽  
Ana María Cortizo

2020 ◽  
Vol 4 (11) ◽  
pp. 2000094
Author(s):  
Fiona Lau ◽  
Benjamin Dalisson ◽  
Yu Ling Zhang ◽  
Jing Zhao ◽  
Nicoletta Eliopoulos ◽  
...  

2020 ◽  
Vol 21 (12) ◽  
pp. 4298
Author(s):  
Shu-Wei Huang ◽  
Shian-Chiuan Tzeng ◽  
Jem-Kun Chen ◽  
Jui-Sheng Sun ◽  
Feng-Huei Lin

There have been many microfluid technologies combined with hanging-drop for cell culture gotten developed in the past decade. A common problem within these devices is that the cell suspension introduced at the central inlet could cause a number of cells in each microwell to not regularize. Also, the instability of droplets during the spheroid formation remains an unsolved ordeal. In this study, we designed a microfluidic-based hanging-drop culture system with the design of taper-tube that can increase the stability of droplets while enhancing the rate of liquid exchange. A ring is surrounding the taper-tube. The ring can hold the cells to enable us to seed an adequate amount of cells before perfusion. Moreover, during the period of cell culture, the mechanical force around the cell is relatively low to prevent stem cells from differentiate and maintain the phenotype. As a result of our hanging system design, cells are designed to accumulate at the bottom of the droplet. This method enhances convenience for observation activities and analysis of experiments. Thus, this microfluid chip can be used as an in vitro platform representing in vivo physiological conditions, and can be useful in regenerative therapy.


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