| Literature DB >> 27854222 |
N Ito1,2, N Shimizu3, H Tanaka2,3, S Takeda1.
Abstract
BACKGROUND AND OBJECTIVES: Cell transplantation is a promising therapy for several muscle diseases, including Duchenne muscular dystrophy. Satellite cells are stem cells in skeletal muscle that provide an important cell source for transplantation therapy. However, culture of satellite cells in vitro causes them to lose their undifferentiated state, associated with reduced transplantation efficiency. It is therefore necessary to develop optimal culture conditions for maintaining the undifferentiated state of satellite cells.Entities:
Keywords: Satellite cell; cell transplantation therapy; leukemia inhibitory factor; muscular dystrophy
Mesh:
Substances:
Year: 2016 PMID: 27854222 PMCID: PMC5271580 DOI: 10.3233/JND-160156
Source DB: PubMed Journal: J Neuromuscul Dis
Fig.1LIF enhances expression of Pax7 in primary satellite cells. A) Representative single muscle fiber and primary satellite cells 5 days after isolation. Scale bar: 500 μm. B) Number of vehicle- or LIF-treated satellite cells 5 days after isolation. The number of cells per field was analyzed. n = 4. C) Expression of Pax7, MyoD or Myogenin in vehicle- or LIF-treated satellite cells 5 days after isolation. n = 8–9. D) Representative immunocytochemistry of Pax7 and MyoD (upper), or Myogenin and MyoD (lower) in vehicle- or LIF-treated satellite cells. Scale bar: 200 μm. E) Quantitative analysis of Pax7-negative (left) and Myogenin-negative nuclei (right) in vehicle- or LIF-treated satellite cells. n = 4; >500 cells were analyzed per group. *P < 0.05, **P < 0.01 ***P < 0.001 by Student’s t-tests. Error bars indicate standard error of mean.
Fig.2LIF enhances transplantation efficiency of satellite cells. A) Representative immunohistochemistry of GFP-positive fibers in transplanted muscles at 2 weeks after transplantation. Low-power field images were shown in left and center. Scale bar: 300 μm. High-power field image was shown in right. Scale bar: 100 μm. Right image was identical to the boxed area in center image. B) Quantitative analysis for the number of GFP-positive fibers surrounded by laminin α2 at 2 weeks after transplantation. n = 5. C) Quantitative analysis for the number of GFP-positive cells at 1, 2 or 4 days after transplantation. D) Representative immunohistochemistry of GFP/Ki-67-double positive cells in transplanted muscles at 2 days after transplantation. Scale bar: 100 μm. E) Quantitative analysis for the number of GFP/Ki-67-double positive cells. n = 4. F) Representative immunohistochemistry of GFP/TUNEL-double positive cells in transplanted cells at 1 day after transplantation. Arrows indicated GFP/TUNEL-double positive cells. Scale bar: 100 μm. G) Quantitative analysis for the number of GFP/TUNEL-double positive cells. n = 4. H) Representative immunohistochemistry of GFP/Dystrophin-double positive fibers in transplanted muscles. Scale bar: 100 μm. I) Quantitative analysis for the number of GFP/Dystrophin-double positive fibers. n = 4. All GFP-positive, GFP/Ki-67-double positive, GFP/TUNEL-double positive or GFP/Dystrophin-double positive cells or fibers in TA/EDL muscles were counted. **P < 0.01 ***P < 0.001 by Student’s t-tests. Error bars indicate standard error of mean.