The time-dependent manner of sinusoidal electromagnetic fields on rat bone marrow mesenchymal stem cells proliferation, differentiation, and mineralization
med./bio.
By:
Song MY, Yu JZ, Zhao DM, Wei S, Liu Y, Hu YM, Zhao WC, Yang Y, Wu H
Published in: Cell Biochem Biophys 2014; 69 (1): 47-54
Asadian N et al.
(2021):
EMF frequency dependent differentiation of rat bone marrow mesenchymal stem cells to astrocyte cells
Tabatabai TS et al.
(2021):
Synergic effects of extremely low-frequency electromagnetic field and betaine on in vitro osteogenic differentiation of human adipose tissue-derived mesenchymal stem cells
Samiei M et al.
(2020):
The effect of electromagnetic fields on survival and proliferation rate of dental pulp stem cells
Koziorowska A et al.
(2017):
The impact of electromagnetic fields with frequency of 50 Hz on metabolic activity of cells in vitro
Xie YF et al.
(2016):
Pulsed electromagnetic fields stimulate osteogenic differentiation and maturation of osteoblasts by upregulating the expression of BMPRII localized at the base of primary cilium
Ledda M et al.
(2015):
Nonpulsed sinusoidal electromagnetic fields as a noninvasive strategy in bone repair: the effect on human mesenchymal stem cell osteogenic differentiation
Yan JL et al.
(2015):
Pulsed electromagnetic fields promote osteoblast mineralization and maturation needing the existence of primary cilia
Ardeshirylajimi A et al.
(2015):
Enhanced growth and osteogenic differentiation of Induced Pluripotent Stem cells by Extremely Low-Frequency Electromagnetic Field
Yu JZ et al.
(2014):
Osteogenic differentiation of bone mesenchymal stem cells regulated by osteoblasts under EMF exposure in a co-culture system
Shahbazi-Gahrouei D et al.
(2014):
Effect of extremely low-frequency (50 Hz) field on proliferation rate of human adipose-derived mesenchymal stem cells
This website uses cookies to provide you the best browsing experience. By continuing to use this website you accept our use of cookies.