4.5 Article

Distribution, Differentiation, and Survival of Intravenously Administered Neural Stem Cells in a Rat Model of Amyotrophic Lateral Sclerosis

期刊

CELL TRANSPLANTATION
卷 19, 期 5, 页码 537-548

出版社

COGNIZANT COMMUNICATION CORP
DOI: 10.3727/096368910X498269

关键词

Amyotrophic lateral sclerosis (ALS); Neural stem cells; Cell transplantation therapy; Tumor necrosis factor (TNF); Rat

资金

  1. FNRS [3.4.545.05 F]
  2. Ministry of Science, Education and Sports of the Republic of Croatia [108-1081870-1902]
  3. Unity Through Knowledge Fund of the Republic of Croatia [35/08]
  4. M. Thierry Latran and La ferule Chambre Internationale 3 frontieres

向作者/读者索取更多资源

The transplantation of neural stem cells (NSCs) is a challenging therapeutic strategy for the treatment of neurodegenerative diseases such as amyotrophic lateral sclerosis (ALS). To provide insight into the potential of the intravenous delivery of NSCs, we evaluated the delivery of NSCs marked with green fluorescent protein to the central nervous system (CNS) via intravenous tail vein injections in an ALS model. The injected cell fates were followed I, 3, and 7 days after transplantation. The highest efficiency of cell delivery to the CNS was found in symptomatic ALS (up to 13%), moderate in presymptomatic ALS (up to 6%), and the lowest in wild-type animals (up to 0.3%). NSCs injected into ALS animals preferentially colonized the motor cortex, hippocampus, and spinal cord, and their differentiation was characterized by a decrease of nestin expression and the appearance of MAP2-, GFAP-, O4-, and CD68-positive cells. Tumor necrosis factor (TNF) administration increased the CNS delivery of transplanted cells in wild-type and presymptomatic, but not ALS symptomatic animals. Moreover, a TNF-related increase in NSC differentiation and survival was detected. Apoptosis was detected as the main cause of the loss of transplanted cells and it was influenced by TNF. Although 3 days after TNF treatment cell death was accelerated, TNF slowed down apoptosis after 7 days. This study provides elementary facts about the process occurring after NSCs leave the blood stream and enter the nervous tissue affected by inflammation/degeneration, which should help facilitate the planning of future bench-to-bedside translational projects.

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