2018, Número 2
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Rev Invest Clin 2018; 70 (2)
Schwann Cell Precursor Transplant in a Rat Spinal Cord Injury Model
de la Garza-Castro O, Martínez-Rodríguez HG, Sánchez-González SG, Vidal-Torres O, Arreola-Romero A, de la Garza-Pineda O, Ancer-Arellano AG, Guzmán-López S, Elizondo-Omaña RE
Idioma: Ingles.
Referencias bibliográficas: 23
Paginas: 88-95
Archivo PDF: 422.10 Kb.
RESUMEN
Sin resumen.
REFERENCIAS (EN ESTE ARTÍCULO)
National Institute of Neurological Disorders and Stroke. "Spinal Cord Injury: Hope Through Research", NIH Publication No. 13- 160, July 2013. Available from: https://www.ninds.nih.gov/ Disorders/Patient-Caregiver-Education/Hope-Through-Research/ Spinal-Cord-Injury-Hope-Through-Research
Park WB, Kim SY, Lee SH, Kim HW, Park JS, Hyun JK. The effect of mesenchymal stem cell transplantation on the recovery of bladder and hindlimb function after spinal cord contusion in rats. BMC Neurosci. 2010;11:119.
Center NSCIS. Spinal Cord Injury Facts and Figures at a Glance. Birmingham, Alabama: national Spinal Cord Injury Statistical Center; 2013. Available from: National Spinal Cord Injury Statistical Center, Facts and Figures at a Glance. Birmingham, AL: University of Alabama at Birmingham, March 2013. Available from: https://www.nscisc.uab.edu/PublicDocuments/fact_figures_ docs/Facts%202013.pdf.
Roh DH, Seo MS, Choi HS, et al. Transplantation of human umbilical cord blood or amniotic epithelial stem cells alleviates mechanical allodynia after spinal cord injury in rats. Cell Transplant 2013;22:1577-90.
Willerth SM, Sakiyama-Elbert SE. Cell therapy for spinal cord regeneration. Adv Drug Deliv Rev. 2008;60:263-76
Lee KH, Suh-Kim H, Choi JS, et al. Human mesenchymal stem cell transplantation promotes functional recovery following acute spinal cord injury in rats. Acta Neurobiol Exp (Wars). 2007;67:13-22.
Razavi S, Ghasemi N, Mardani M, Salehi H. Remyelination improvement after neurotrophic factors secreting cells transplantation in rat spinal cord injury. Iran J Basic Med Sci. 2017;20 391-8.
Dasari VR, Spomar DG, Cady C, et al. Mesenchymal stem cells from rat bone marrow downregulate caspase-3-mediated apoptotic pathway after spinal cord injury in rats. Neurochem Res. 2007;32:2080-93.
Zhang H, Wang L, Wen S, et al. Magnetic resonance imaging tracing and assessing repair function of the bone marrow mesenchymal stem cells transplantation in a rat model of spinal cord injury. Oncotarget. 2017;8:58985-99.
Konig N, Trolle C, Kapuralin K, et al. Murine neural crest stem cells and embryonic stem cell-derived neuron precursors survive and differentiate after transplantation in a model of dorsal root avulsion. J Tissue Eng Regen Med. 2017;11:129-37.
Min J, Kim JH, Choi KH, Yoon HH, Jeon SR. Is there additive therapeutic effect when GCSF combined with adipose-derived stem cell in a rat model of acute spinal cord injury. J Korean Neurosurg Soc. 2017;60:404-16.
Ruzicka J, Machova-Urdzikova L, Gillick J, et al. A comparative study of three different types of stem cells for treatment of rat spinal cord injury. Cell Transplant. 2017;26:585-603.
Barros Filho TE, Molina AE. Analysis of the sensitivity and reproducibility of the basso, beattie, bresnahan (BBB) scale in wistar rats. Clinics (Sao Paulo). 2008;63:103-8.
Zhao Y, Tang F, Xiao Z, et al. Clinical study of NeuroRegen scaffold combined with human mesenchymal stem cells for the repair of chronic complete spinal cord injury. Cell Transplant. 2017;26:891-900.
Wang KK, Zhang Z, Moghieb A. Biomarkers for CNS injury and regeneration. In: So KF, Xu XM, editors. Neural Regeneration. London: Elsevier Science; 2015. p. 401-10.
Anderson KD, Guest JD, Dietrich WD, et al. Safety of autologous human schwann cell transplantation in subacute thoracic spinal cord injury. J Neurotrauma. 2017;34:2950-63.
Lu P, Ceto S, Wang Y, et al. Prolonged human neural stem cell maturation supports recovery in injured rodent CNS. J Clin Invest. 2017;127:3287-99.
Jiang L, Zhu JK, Liu XL, Xiang P, Hu J, WH. Y. Differentiation of rat adipose tissue-derived stem cells into Schwann-like cells in vitro. Neuroreport. 2008;19:1015-9.
Li WW, Penderis J, Zhao C, Schumacher M, Franklin RJ. Females remyelinate more efficiently than males following demyelination in the aged but not young adult CNS. Exp Neurol. 2006;202:250-254.
Dagci T, Armagan G, Konyalioglu S, Yalcin A. Alterations in the expression of the apurinic/apyrimidinic endonuclease-1/Redox Factor-1 (APE/Ref-1) and DNA damage in the caudal region of acute and chronic spinal cord injured rats treated by embryonic neural stem cells. Physiol Res. 2009;58:427-34.
Lukovic D, Moreno-Manzano V, Lopez-Mocholi E, et al. Complete rat spinal cord transection as a faithful model of spinal cord injury for translational cell transplantation. Sci Rep. 2015;5:9640.
Bonilla C, Otero L, Aguayo C, Rodríguez A, Zurita M, Vaquero Crespo J. Estudio de la utilidad del gel de fibrina como soporte celular en el trasplante intracerebral de células madre mesenquimales. Trauma Fund MAPFRE. 2009;20:243-8.
Ronsyn MW, Daans J, Spaepen G, et al. Plasmid-based genetic modification of human bone marrow-derived stromal cells: analysis of cell survival and transgene expression after transplantation in rat spinal cord. BMC Biotechnol. 2007;7:90.