Serebral Palside Kök Hücre Tedavisi
Özet
Referanslar
Ahn, S. M., Byun, K., Kim, D., Lee, K., Yoo, J. S., Kim, S. U., Jho, E. H., Simpson, R. J., & Lee, B. (2008). Olig2-induced neural stem cell differentiation involves downregulation of Wnt signaling and induction of Dickkopf-1 expression. PloS one, 3(12), e3917. https://doi.org/10.1371/journal.pone.0003917
Alizadeh, R., Kamrava, S. K., Bagher, Z., Farhadi, M., Falah, M., Moradi, F., Boroujeni, M. E., Soleimani, M., Kamyab, A., & Komeili, A. (2019). Human olfactory stem cells: As a promising source of dopaminergic neuron-like cells for treatment of Parkinson's disease. Neuroscience letters, 696, 52–59. https://doi.org/10.1016/j.neulet.2018.12.011
Amanat, M., Majmaa, A., Zarrabi, M., Nouri, M., Akbari, M. G., Moaiedi, A. R., Ghaemi, O., Zamani, F., Najafi, S., Badv, R. S., Vosough, M., Hamidieh, A. A., Salehi, M., Montazerlotfelahi, H., Tavasoli, A. R., Heidari, M., Mohebi, H., Fatemi, A., Garakani, A., & Ashrafi, M. R. (2021). Clinical and imaging outcomes after intrathecal injection of umbilical cord tissue mesenchymal stem cells in cerebral palsy: a randomized double-blind sham-controlled clinical trial. Stem cell research & therapy, 12(1), 439. https://doi.org/10.1186/s13287-021-02513-4.
Asano, H., Aonuma, M., Sanosaka, T., Kohyama, J., Namihira, M., & Nakashima, K. (2009). Astrocyte differentiation of neural precursor cells is enhanced by retinoic acid through a change in epigenetic modification. Stem cells (Dayton, Ohio), 27(11), 2744–2752. https://doi.org/10.1002/stem.176
Atkinson, K. (2016). The mesenchymal stem cell, the mesenchymal stromal cell, and the mesenchymal stromal cell exosome. In: The Biology and Therapeutic Application of Mesenchymal Cells. John Wiley and Sons, Ltd; pp. 1–7.
Au, P., Daheron, L. M., Duda, D. G., Cohen, K. S., Tyrrell, J. A., Lanning, R. M., Fukumura, D., Scadden, D. T., & Jain, R. K. (2008). Differential in vivo potential of endothelial progenitor cells from human umbilical cord blood and adult peripheral blood to form functional long-lasting vessels. Blood, 111(3), 1302–1305. https://doi.org/10.1182/blood-2007-06-094318
Ben-David, U., & Benvenisty, N. (2011). The tumorigenicity of human embryonic and induced pluripotent stem cells. Nature reviews. Cancer, 11(4), 268–277. https://doi.org/10.1038/nrc3034
Bernardo, M. E., & Fibbe, W. E. (2013). Mesenchymal stromal cells: sensors and switchers of inflammation. Cell stem cell, 13(4), 392–402. https://doi.org/10.1016/j.stem.2013.09.006
Blando, S., Anchesi, I., Mazzon, E., & Gugliandolo, A. (2022). Can a Scaffold Enriched with Mesenchymal Stem Cells Be a Good Treatment for Spinal Cord Injury?. International journal of molecular sciences, 23(14), 7545. https://doi.org/10.3390/ijms23147545
Boltze, J., Reich, D. M., Hau, S., Reymann, K. G., Strassburger, M., Lobsien, D., Wagner, D. C., Kamprad, M., & Stahl, T. (2012). Assessment of neuroprotective effects of human umbilical cord blood mononuclear cell subpopulations in vitro and in vivo. Cell transplantation, 21(4), 723–737. https://doi.org/10.3727/096368911X586783
Boltze, J., Reich, D. M., Hau, S., Reymann, K. G., Strassburger, M., Lobsien, D., Wagner, D. C., Kamprad, M., & Stahl, T. (2012). Assessment of neuroprotective effects of human umbilical cord blood mononuclear cell subpopulations in vitro and in vivo. Cell transplantation, 21(4), 723–737. https://doi.org/10.3727/096368911X586783
Bond, A. M., Ming, G. L., & Song, H. (2015). Adult Mammalian Neural Stem Cells and Neurogenesis: Five Decades Later. Cell stem cell, 17(4), 385–395. https://doi.org/10.1016/j.stem.2015.09.003
Bosi, A., & Bartolozzi, B. (2010). Safety of bone marrow stem cell donation: a review. Transplantation proceedings, 42(6), 2192–2194. https://doi.org/10.1016/j.transproceed.2010.05.029
Brand, A., Rebulla, P., Engelfriet, C. P., Reesink, H. W., Beguin, Y., Baudoux, E., Kögler, G., Ebrahimi, M., Grazzini, G., Costa, A. N., Bosi, A., Sacchi, N., Lombardini, L., Pupella, S., Lecchi, L., Garcidueñas, E. D., van Beckhoven, J. M., de Wit, H. J., Fibbe, W. E., Zhiburt, E. B., … Regan, F. (2008). Cord blood banking. Vox sanguinis, 95(4), 335–348. https://doi.org/10.1111/j.1423-0410.2008.01106.x
Broxmeyer, H. E., Douglas, G. W., Hangoc, G., Cooper, S., Bard, J., English, D., Arny, M., Thomas, L., & Boyse, E. A. (1989). Human umbilical cord blood as a potential source of transplantable hematopoietic stem/progenitor cells. Proceedings of the National Academy of Sciences of the United States of America, 86(10), 3828–3832. https://doi.org/10.1073/pnas.86.10.3828
Castillo-Melendez, M., Yawno, T., Jenkin, G., & Miller, S. L. (2013). Stem cell therapy to protect and repair the developing brain: a review of mechanisms of action of cord blood and amnion epithelial derived cells. Frontiers in neuroscience, 7, 194. https://doi.org/10.3389/fnins.2013.00194
Chen, G., Wang, Y., Xu, Z., Fang, F., Xu, R., Wang, Y., Hu, X., Fan, L., & Liu, H. (2013). Neural stem cell-like cells derived from autologous bone mesenchymal stem cells for the treatment of patients with cerebral palsy. Journal of translational medicine, 11, 21. https://doi.org/10.1186/1479-5876-11-21
Chen, L., Huang, H., Xi, H., Xie, Z., Liu, R., Jiang, Z., Zhang, F., Liu, Y., Chen, D., Wang, Q., Wang, H., Ren, Y., & Zhou, C. (2010). Intracranial transplant of olfactory ensheathing cells in children and adolescents with cerebral palsy: a randomized controlled clinical trial. Cell transplantation, 19(2), 185–191. https://doi.org/10.3727/096368910X492652
Cutler, C., & Antin, J. H. (2001). Peripheral blood stem cells for allogeneic transplantation: a review. Stem cells (Dayton, Ohio), 19(2), 108–117. https://doi.org/10.1634/stemcells.19-2-108
Danby, R., & Rocha, V. (2014). Improving engraftment and immune reconstitution in umbilical cord blood transplantation. Frontiers in immunology, 5, 68. https://doi.org/10.3389/fimmu.2014.00068
Davidson, J. O., van den Heuij, L. G., Fraser, M., Wassink, G., Miller, S. L., Lim, R., Wallace, E. M., Jenkin, G., Gunn, A. J., & Bennet, L. (2021). Window of opportunity for human amnion epithelial stem cells to attenuate astrogliosis after umbilical cord occlusion in preterm fetal sheep. Stem cells translational medicine, 10(3), 427–440. https://doi.org/10.1002/sctm.20-0314
Dekoninck, S., & Blanpain, C. (2019). Stem cell dynamics, migration and plasticity during wound healing. Nature cell biology, 21(1), 18–24. https://doi.org/10.1038/s41556-018-0237-6
Doyle, L. W., Anderson, P. J., Haslam, R., Lee, K. J., Crowther, C., & Australasian Collaborative Trial of Magnesium Sulphate (ACTOMgSO4) Study Group (2014). School-age outcomes of very preterm infants after antenatal treatment with magnesium sulfate vs placebo. JAMA, 312(11), 1105–1113. https://doi.org/10.1001/jama.2014.11189
Evans, M. A., Lim, R., Kim, H. A., Chu, H. X., Gardiner-Mann, C. V., Taylor, K. W. E., Chan, C. T., Brait, V. H., Lee, S., Dinh, Q. N., Vinh, A., Phan, T. G., Srikanth, V. K., Ma, H., Arumugam, T. V., Fann, D. Y., Poh, L., Hunt, C. P. J., Pouton, C. W., Haynes, J. M., … Broughton, B. R. S. (2018). Acute or Delayed Systemic Administration of Human Amnion Epithelial Cells Improves Outcomes in Experimental Stroke. Stroke, 49(3), 700–709. https://doi.org/10.1161/STROKEAHA.117.019136
Fallahi-Sichani, M., Soleimani, M., Najafi, S. M., Kiani, J., Arefian, E., & Atashi, A. (2007). In vitro differentiation of cord blood unrestricted somatic stem cells expressing dopamine-associated genes into neuron-like cells. Cell biology international, 31(3), 299–303. https://doi.org/10.1016/j.cellbi.2006.11.011
Féron, F., Perry, C., Cochrane, J., Licina, P., Nowitzke, A., Urquhart, S., Geraghty, T., & Mackay-Sim, A. (2005). Autologous olfactory ensheathing cell transplantation in human spinal cord injury. Brain : a journal of neurology, 128(Pt 12), 2951–2960. https://doi.org/10.1093/brain/awh657
Forraz, N., McGuckin, CP. (2011). The umbilical cord: A rich and ethical stem cell source to advance regenerative medicine. Cell Proliferation, 44 (1), 60–69. https://10.1111/j.1365-2184.2010.00729.x.
Fuentealba, L. C., Obernier, K., & Alvarez-Buylla, A. (2012). Adult neural stem cells bridge their niche. Cell stem cell, 10(6), 698–708. https://doi.org/10.1016/j.stem.2012.05.012
Galieva, L. R., Mukhamedshina, Y. O., Arkhipova, S. S., & Rizvanov, A. A. (2017). Human Umbilical Cord Blood Cell Transplantation in Neuroregenerative Strategies. Frontiers in pharmacology, 8, 628. https://doi.org/10.3389/fphar.2017.00628
Ghodsizad, A., Ungerer, M. N., Bordel, V., Kallenbach, K., Kögler, G., Bruckner, B., Niehaus, M., Gregoric, I., Karck, M., & Ruhparwar, A. (2011). Transplanted human cord blood-derived unrestricted somatic stem cells preserve high-energy reserves at the site of acute myocardial infarction. Cytotherapy, 13(8), 956–961. https://doi.org/10.3109/14653249.2011.563290
Gong, M., Bi, Y., Jiang, W., Zhang, Y., Chen, L., Hou, N., Chen, J., & Li, T. (2013). Retinoic acid receptor beta mediates all-trans retinoic acid facilitation of mesenchymal stem cells neuronal differentiation. The international journal of biochemistry & cell biology, 45(4), 866–875. https://doi.org/10.1016/j.biocel.2013.01.002
Gu, J., Huang, L., Zhang, C., Wang, Y., Zhang, R., Tu, Z., Wang, H., Zhou, X., Xiao, Z., Liu, Z., Hu, X., Ke, Z., Wang, D., & Liu, L. (2020). Therapeutic evidence of umbilical cord-derived mesenchymal stem cell transplantation for cerebral palsy: a randomized, controlled trial. Stem cell research & therapy, 11(1), 43. https://doi.org/10.1186/s13287-019-1545-x.
Guillén, M. I., Platas, J., Pérez Del Caz, M. D., Mirabet, V., & Alcaraz, M. J. (2018). Paracrine Anti-inflammatory Effects of Adipose Tissue-Derived Mesenchymal Stem Cells in Human Monocytes. Frontiers in physiology, 9, 661. https://doi.org/10.3389/fphys.2018.00661
Han, Y., Yang, J., Fang, J., Zhou, Y., Candi, E., Wang, J., Hua, D., Shao, C., & Shi, Y. (2022). The secretion profile of mesenchymal stem cells and potential applications in treating human diseases. Signal transduction and targeted therapy, 7(1), 92. https://doi.org/10.1038/s41392-022-00932-0
Hsieh, J., & Gage, F. H. (2004). Epigenetic control of neural stem cell fate. Current opinion in genetics & development, 14(5), 461–469. https://doi.org/10.1016/j.gde.2004.07.006
Hsieh, J., Aimone, J. B., Kaspar, B. K., Kuwabara, T., Nakashima, K., & Gage, F. H. (2004). IGF-I instructs multipotent adult neural progenitor cells to become oligodendrocytes. The Journal of cell biology, 164(1), 111–122. https://doi.org/10.1083/jcb.200308101
Huang, L., Zhang, C., Gu, J., Wu, W., Shen, Z., Zhou, X., & Lu, H. (2018). A Randomized, Placebo-Controlled Trial of Human Umbilical Cord Blood Mesenchymal Stem Cell Infusion for Children With Cerebral Palsy. Cell transplantation, 27(2), 325–334. https://doi.org/10.1177/0963689717729379
Jantzie, L. L., Scafidi, J., & Robinson, S. (2018). Stem cells and cell-based therapies for cerebral palsy: a call for rigor. Pediatric research, 83(1-2), 345–355. https://doi.org/10.1038/pr.2017.233
Jantzie, L. L., Scafidi, J., & Robinson, S. (2018). Stem cells and cell-based therapies for cerebral palsy: a call for rigor. Pediatric research, 83(1-2), 345–355. https://doi.org/10.1038/pr.2017.233
Jin, S., Lv, Z., Kang, L., Wang, J., Tan, C., Shen, L., Wang, L., & Liu, J. (2022). Next generation of neurological therapeutics: Native and bioengineered extracellular vesicles derived from stem cells. Asian journal of pharmaceutical sciences, 17(6), 779–797. https://doi.org/10.1016/j.ajps.2022.10.002
Jurkowski, M. P., Bettio, L., K Woo, E., Patten, A., Yau, S. Y., & Gil-Mohapel, J. (2020). Beyond the Hippocampus and the SVZ: Adult Neurogenesis Throughout the Brain. Frontiers in cellular neuroscience, 14, 576444. https://doi.org/10.3389/fncel.2020.576444
Kakishita, K., Elwan, M. A., Nakao, N., Itakura, T., & Sakuragawa, N. (2000). Human amniotic epithelial cells produce dopamine and survive after implantation into the striatum of a rat model of Parkinson's disease: a potential source of donor for transplantation therapy. Experimental neurology, 165(1), 27–34. https://doi.org/10.1006/exnr.2000.7449
Kaminska, A., Radoszkiewicz, K., Rybkowska, P., Wedzinska, A., & Sarnowska, A. (2022). Interaction of Neural Stem Cells (NSCs) and Mesenchymal Stem Cells (MSCs) as a Promising Approach in Brain Study and Nerve Regeneration. Cells, 11(9), 1464. https://doi.org/10.3390/cells11091464
Kang, M., Min, K., Jang, J., Kim, S. C., Kang, M. S., Jang, S. J., Lee, J. Y., Kim, S. H., Kim, M. K., An, S. A., & Kim, M. (2015). Involvement of Immune Responses in the Efficacy of Cord Blood Cell Therapy for Cerebral Palsy. Stem cells and development, 24(19), 2259–2268. https://doi.org/10.1089/scd.2015.0074
Kang, W., & Hébert, J. M. (2015). FGF Signaling Is Necessary for Neurogenesis in Young Mice and Sufficient to Reverse Its Decline in Old Mice. The Journal of neuroscience : the official journal of the Society for Neuroscience, 35(28), 10217–10223. https://doi.org/10.1523/JNEUROSCI.1469-15.2015
Karagiannis, P., Takahashi, K., Saito, M., Yoshida, Y., Okita, K., Watanabe, A., Inoue, H., Yamashita, J. K., Todani, M., Nakagawa, M., Osawa, M., Yashiro, Y., Yamanaka, S., & Osafune, K. (2019). Induced Pluripotent Stem Cells and Their Use in Human Models of Disease and Development. Physiological reviews, 99(1), 79–114. https://doi.org/10.1152/physrev.00039.2017
Kim, K. Y., Suh, Y. H., & Chang, K. A. (2020). Therapeutic Effects of Human Amniotic Epithelial Stem Cells in a Transgenic Mouse Model of Alzheimer's Disease. International journal of molecular sciences, 21(7), 2658. https://doi.org/10.3390/ijms21072658
Kim, T. K., Park, D., Ban, Y. H., Cha, Y., An, E. S., Choi, J., Choi, E. K., & Kim, Y. B. (2018). Improvement by Human Oligodendrocyte Progenitor Cells of Neurobehavioral Disorders in an Experimental Model of Neonatal Periventricular Leukomalacia. Cell transplantation, 27(7), 1168–1177. https://doi.org/10.1177/0963689718781330
Koutsoumparis, A. E., Patsiarika, A., Tsingotjidou, A., Pappas, I., & Tsiftsoglou, A. S. (2022). Neural Differentiation of Human Dental Mesenchymal Stem Cells Induced by ATRA and UDP-4: A Comparative Study. Biomolecules, 12(2), 218. https://doi.org/10.3390/biom12020218
Lee, J. Y., & Hong, S. H. (2020). Hematopoietic Stem Cells and Their Roles in Tissue Regeneration. International journal of stem cells, 13(1), 1–12. https://doi.org/10.15283/ijsc19127
Liu, G., David, B. T., Trawczynski, M., & Fessler, R. G. (2020). Advances in Pluripotent Stem Cells: History, Mechanisms, Technologies, and Applications. Stem cell reviews and reports, 16(1), 3–32. https://doi.org/10.1007/s12015-019-09935-x
Liu, Q. W., Huang, Q. M., Wu, H. Y., Zuo, G. S., Gu, H. C., Deng, K. Y., & Xin, H. B. (2021). Characteristics and Therapeutic Potential of Human Amnion-Derived Stem Cells. International journal of molecular sciences, 22(2), 970. https://doi.org/10.3390/ijms22020970
Luan, Z., Liu, W., Qu, S., Du, K., He, S., Wang, Z., Yang, Y., Wang, C., & Gong, X. (2012). Effects of neural progenitor cell transplantation in children with severe cerebral palsy. Cell transplantation, 21 Suppl 1, S91–S98. https://doi.org/10.3727/096368912X633806
Lv, Z., Li, Y., Wang, Y., Cong, F., Li, X., Cui, W., Han, C., Wei, Y., Hong, X., Liu, Y., Ma, L., Jiao, Y., Zhang, C., Li, H., Jin, M., Wang, L., Ni, S., & Liu, J. (2023). Safety and efficacy outcomes after intranasal administration of neural stem cells in cerebral palsy: a randomized phase 1/2 controlled trial. Stem cell research & therapy, 14(1), 23. https://doi.org/10.1186/s13287-022-03234-y.
Macquart-Moulin, G., Auquier, P., Le Corroller, A. G., Blache, J. L., Novakovitch, G., Blaise, D., Faucher, C., Viens, P., Maraninchi, D., & Moatti, J. P. (1995). Comparaison de l'anxiété et de la douleur au cours de deux procédures de recueil des cellules-souches hématopoïétiques: la cytaphérèse et le prélèvement de moelle osseuse [Comparison of anxiety and pain in two procedures of hematopoietic stem cell collection: cytapheresis and bone marrow collection]. Bulletin du cancer, 82(7), 582–588.
Mathew, J. L., Kaur, N., & Dsouza, J. M. (2022). Therapeutic hypothermia in neonatal hypoxic encephalopathy: A systematic review and meta-analysis. Journal of global health, 12, 04030. https://doi.org/10.7189/jogh.12.04030
McIntyre, S., Goldsmith, S., Webb, A., Ehlinger, V., Hollung, S. J., McConnell, K., Arnaud, C., Smithers-Sheedy, H., Oskoui, M., Khandaker, G., Himmelmann, K., & Global CP Prevalence Group* (2022). Global prevalence of cerebral palsy: A systematic analysis. Developmental medicine and child neurology, 64(12), 1494–1506. https://doi.org/10.1111/dmcn.15346
Miki T. (2011). Amnion-derived stem cells: in quest of clinical applications. Stem cell research & therapy, 2(3), 25. https://doi.org/10.1186/scrt66
Miller, F. D., & Gauthier, A. S. (2007). Timing is everything: making neurons versus glia in the developing cortex. Neuron, 54(3), 357–369. https://doi.org/10.1016/j.neuron.2007.04.019
Min, K., Song, J., Kang, J. Y., Ko, J., Ryu, J. S., Kang, M. S., Jang, S. J., Kim, S. H., Oh, D., Kim, M. K., Kim, S. S., & Kim, M. (2013). Umbilical cord blood therapy potentiated with erythropoietin for children with cerebral palsy: a double-blind, randomized, placebo-controlled trial. Stem cells (Dayton, Ohio), 31(3), 581–591. https://doi.org/10.1002/stem.1304
Min, K., Suh, M. R., Cho, K. H., Park, W., Kang, M. S., Jang, S. J., Kim, S. H., Rhie, S., Choi, J. I., Kim, H. J., Cha, K. Y., & Kim, M. (2020). Potentiation of cord blood cell therapy with erythropoietin for children with CP: a 2 × 2 factorial randomized placebo-controlled trial. Stem cell research & therapy, 11(1), 509. https://doi.org/10.1186/s13287-020-02020-y.
Nagamura-Inoue, T., & He, H. (2014). Umbilical cord-derived mesenchymal stem cells: Their advantages and potential clinical utility. World journal of stem cells, 6(2), 195–202. https://doi.org/10.4252/wjsc.v6.i2.195
Nunes, R. D., & Zandavalli, F. M. (2015). Association between maternal and fetal factors and quality of cord blood as a source of stem cells. Revista brasileira de hematologia e hemoterapia, 37(1), 38–42. https://doi.org/10.1016/j.bjhh.2014.07.023
Ong, W. K., & Sugii, S. (2013). Adipose-derived stem cells: fatty potentials for therapy. The international journal of biochemistry & cell biology, 45(6), 1083–1086. https://doi.org/10.1016/j.biocel.2013.02.013
Ottoboni, L., von Wunster, B., & Martino, G. (2020). Therapeutic Plasticity of Neural Stem Cells. Frontiers in neurology, 11, 148. https://doi.org/10.3389/fneur.2020.00148
Patel, D. M., Shah, J., & Srivastava, A. S. (2013). Therapeutic potential of mesenchymal stem cells in regenerative medicine. Stem cells international, 2013, 496218. https://doi.org/10.1155/2013/496218
Phinney, D. G., & Pittenger, M. F. (2017). Concise Review: MSC-Derived Exosomes for Cell-Free Therapy. Stem cells (Dayton, Ohio), 35(4), 851–858. https://doi.org/10.1002/stem.2575
Poliwoda, S., Noor, N., Downs, E., Schaaf, A., Cantwell, A., Ganti, L., Kaye, A. D., Mosel, L. I., Carroll, C. B., Viswanath, O., & Urits, I. (2022). Stem cells: a comprehensive review of origins and emerging clinical roles in medical practice. Orthopedic reviews, 14(3), 37498. https://doi.org/10.52965/001c.37498
Pourjafar, M., Saidijam, M., Mansouri, K., Ghasemibasir, H., Karimi Dermani, F., & Najafi, R. (2017). All-trans retinoic acid preconditioning enhances proliferation, angiogenesis and migration of mesenchymal stem cell in vitro and enhances wound repair in vivo. Cell proliferation, 50(1), e12315. https://doi.org/10.1111/cpr.12315
Purohit, D., Finkel, D. A., Malfa, A., Liao, Y., Ivanova, L., Kleinman, G. M., Hu, F., Shah, S., Thompson, C., Joseph, E., Wolin, M. S., Cairo, M. S., La Gamma, E. F., & Vinukonda, G. (2021). Human Cord Blood Derived Unrestricted Somatic Stem Cells Restore Aquaporin Channel Expression, Reduce Inflammation and Inhibit the Development of Hydrocephalus After Experimentally Induced Perinatal Intraventricular Hemorrhage. Frontiers in cellular neuroscience, 15, 633185. https://doi.org/10.3389/fncel.2021.633185
Qian, X., Shen, Q., Goderie, S. K., He, W., Capela, A., Davis, A. A., & Temple, S. (2000). Timing of CNS cell generation: a programmed sequence of neuron and glial cell production from isolated murine cortical stem cells. Neuron, 28(1), 69–80. https://doi.org/10.1016/s0896-6273(00)00086-6
Qiu, C., Ge, Z., Cui, W., Yu, L., & Li, J. (2020). Human Amniotic Epithelial Stem Cells: A Promising Seed Cell for Clinical Applications. International journal of molecular sciences, 21(20), 7730. https://doi.org/10.3390/ijms21207730
Rah, WJ., Lee, YH., Moon., JH., Jun. HJ., Kang, HR., Koh, H., Eom, HJ., Lee, JY., Lee, YJ., Kim, JY., Choi, YY., Park, K., Kim, MJ., Kim, SH. (2017) Neuroregenerative potential of intravenous G-CSF and autologous peripheral blood stem cells in children with cerebral palsy: a randomized, double-blind, cross-over study. J Transl Med. 2017, 15(1):16. https://doi.org/10.1186/s12967-017-1120-0 .
Rocha, V., Cornish, J., Sievers, E. L., Filipovich, A., Locatelli, F., Peters, C., Remberger, M., Michel, G., Arcese, W., Dallorso, S., Tiedemann, K., Busca, A., Chan, K. W., Kato, S., Ortega, J., Vowels, M., Zander, A., Souillet, G., Oakill, A., Woolfrey, A., … Gluckman, E. (2001). Comparison of outcomes of unrelated bone marrow and umbilical cord blood transplants in children with acute leukemia. Blood, 97(10), 2962–2971. https://doi.org/10.1182/blood.v97.10.2962
Rogers, I., & Casper, R. F. (2004). Umbilical cord blood stem cells. Best practice & research. Clinical obstetrics & gynaecology, 18(6), 893–908. https://doi.org/10.1016/j.bpobgyn.2004.06.004
Rogujski, P., Lukomska, B., Janowski, M., & Stanaszek, L. (2024). Glial-restricted progenitor cells: a cure for diseased brain?. Biological research, 57(1), 8. https://doi.org/10.1186/s40659-024-00486-1
Rosenbaum, P., Paneth, N., Leviton, A., Goldstein, M., Bax, M., Damiano, D., Dan, B., & Jacobsson, B. (2007). A report: the definition and classification of cerebral palsy April 2006. Developmental medicine and child neurology. Supplement, 109, 8–14.
Santos, J., Dalla, P. V., & Milthorpe, B. K. (2022). Molecular Dynamics of Cytokine Interactions and Signalling of Mesenchymal Stem Cells Undergoing Directed Neural-like Differentiation. Life (Basel, Switzerland), 12(3), 392. https://doi.org/10.3390/life12030392
Santourlidis, S., Wernet, P., Ghanjati, F., Graffmann, N., Springer, J., Kriegs, C., Zhao, X., Brands, J., Araúzo-Bravo, M. J., Neves, R., Koegler, G., & Uhrberg, M. (2011). Unrestricted somatic stem cells (USSC) from human umbilical cord blood display uncommitted epigenetic signatures of the major stem cell pluripotency genes. Stem cell research, 6(1), 60–69. https://doi.org/10.1016/j.scr.2010.08.003
Sauvageot, C. M., & Stiles, C. D. (2002). Molecular mechanisms controlling cortical gliogenesis. Current opinion in neurobiology, 12(3), 244–249. https://doi.org/10.1016/s0959-4388(02)00322-7
Shin, J. E., Jung, K., Kim, M., Hwang, K., Lee, H., Kim, I. S., Lee, B. H., Lee, I. S., & Park, K. I. (2018). Brain and spinal cord injury repair by implantation of human neural progenitor cells seeded onto polymer scaffolds. Experimental & molecular medicine, 50(4), 1–18. https://doi.org/10.1038/s12276-018-0054-9
Shrestha, B., Coykendall, K., Li, Y., Moon, A., Priyadarshani, P., & Yao, L. (2014). Repair of injured spinal cord using biomaterial scaffolds and stem cells. Stem cell research & therapy, 5(4), 91. https://doi.org/10.1186/scrt480
Si, Z., Wang, X., Sun, C., Kang, Y., Xu, J., Wang, X., & Hui, Y. (2019). Adipose-derived stem cells: Sources, potency, and implications for regenerative therapies. Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 114, 108765. https://doi.org/10.1016/j.biopha.2019.108765
Singhal, S., Powles, R., Kulkarni, S., Treleaven, J., Sirohi, B., Millar, B., Shepherd, V., Saso, R., Rowland, A., Long, S., Cabral, S., Horton, C., & Mehta, J. (2000). Comparison of marrow and blood cell yields from the same donors in a double-blind, randomized study of allogeneic marrow vs blood stem cell transplantation. Bone marrow transplantation, 25(5), 501–505. https://doi.org/10.1038/sj.bmt.1702173
Sipos, P. I., Bourque, S. L., Hubel, C. A., Baker, P. N., Sibley, C. P., Davidge, S. T., & Crocker, I. P. (2013). Endothelial colony-forming cells derived from pregnancies complicated by intrauterine growth restriction are fewer and have reduced vasculogenic capacity. The Journal of clinical endocrinology and metabolism, 98(12), 4953–4960. https://doi.org/10.1210/jc.2013-2580
Slack J. M. W. (2018). What is a stem cell?. Wiley interdisciplinary reviews. Developmental biology, 7(5), e323. https://doi.org/10.1002/wdev.323
Suh, M. R., Min, K., Cho, K. H., Kim, J., Lim, I., Park, M., Noh, E. M., & Kim, M. Y. (2023). Maintenance of the synergistic effects of cord blood cells and erythropoietin combination therapy after additional cord blood infusion in children with cerebral palsy: 1-year open-label extension study of randomized placebo-controlled trial. Stem cell research & therapy, 14(1), 362. https://doi.org/10.1186/s13287-023-03600-4.
Sun, J. M., Case, L. E., McLaughlin, C., Burgess, A., Skergan, N., Crane, S., Jasien, J. M., Mikati, M. A., Troy, J., & Kurtzberg, J. (2022). Motor function and safety after allogeneic cord blood and cord tissue-derived mesenchymal stromal cells in cerebral palsy: An open-label, randomized trial. Developmental medicine and child neurology, 64(12), 1477–1486. https://doi.org/10.1111/dmcn.15325.
Sun, J. M., Song, A. W., Case, L. E., Mikati, M. A., Gustafson, K. E., Simmons, R., Goldstein, R., Petry, J., McLaughlin, C., Waters-Pick, B., Chen, L. W., Wease, S., Blackwell, B., Worley, G., Troy, J., & Kurtzberg, J. (2017). Effect of Autologous Cord Blood Infusion on Motor Function and Brain Connectivity in Young Children with Cerebral Palsy: A Randomized, Placebo-Controlled Trial. Stem cells translational medicine, 6(12), 2071–2078. https://doi.org/10.1002/sctm.17-0102
Sweda, R., Phillips, A. W., Marx, J., Johnston, M. V., Wilson, M. A., & Fatemi, A. (2016). Glial-Restricted Precursors Protect Neonatal Brain Slices from Hypoxic-Ischemic Cell Death Without Direct Tissue Contact. Stem cells and development, 25(13), 975–985. https://doi.org/10.1089/scd.2015.0378
Taguchi, A., Soma, T., Tanaka, H., Kanda, T., Nishimura, H., Yoshikawa, H., Tsukamoto, Y., Iso, H., Fujimori, Y., Stern, D. M., Naritomi, H., & Matsuyama, T. (2004). Administration of CD34+ cells after stroke enhances neurogenesis via angiogenesis in a mouse model. The Journal of clinical investigation, 114(3), 330–338. https://doi.org/10.1172/JCI20622
Takizawa, T., Nakashima, K., Namihira, M., Ochiai, W., Uemura, A., Yanagisawa, M., Fujita, N., Nakao, M., & Taga, T. (2001). DNA methylation is a critical cell-intrinsic determinant of astrocyte differentiation in the fetal brain. Developmental cell, 1(6), 749–758. https://doi.org/10.1016/s1534-5807(01)00101-0
Thomas E. D. (1994). Bone marrow transplantation: past, present and future. Revista de investigacion clinica; organo del Hospital de Enfermedades de la Nutricion, Suppl, 5–6.
TILL, J. E., & McCULLOCH, E. A. (1961). A direct measurement of the radiation sensitivity of normal mouse bone marrow cells. Radiation research, 14, 213–222.
Wang, R., Wang, X., Yang, S., Xiao, Y., Jia, Y., Zhong, J., Gao, Q., & Zhang, X. (2021). Umbilical cord-derived mesenchymal stem cells promote myeloid-derived suppressor cell enrichment by secreting CXCL1 to prevent graft-versus-host disease after hematopoietic stem cell transplantation. Cytotherapy, 23(11), 996–1006. https://doi.org/10.1016/j.jcyt.2021.07.009
Zakrzewski, W., Dobrzyński, M., Szymonowicz, M., & Rybak, Z. (2019). Stem cells: past, present, and future. Stem cell research & therapy, 10(1), 68. https://doi.org/10.1186/s13287-019-1165-5
Zarrabi, M., Akbari, M. G., Amanat, M., Majmaa, A., Moaiedi, A. R., Montazerlotfelahi, H., Nouri, M., Hamidieh, A. A., Badv, R. S., Karimi, H., Rabbani, A., Mohebbi, A., Rahimi-Dehgolan, S., Rahimi, R., Dehghan, E., Vosough, M., Abroun, S., Shamsabadi, F. M., Tavasoli, A. R., Alizadeh, H., … Ashrafi, M. R. (2022). The safety and efficacy of umbilical cord blood mononuclear cells in individuals with spastic cerebral palsy: a randomized double-blind sham-controlled clinical trial. BMC neurology, 22(1), 123. https://doi.org/10.1186/s12883-022-02636-y
Zeddou, M., Briquet, A., Relic, B., Josse, C., Malaise, M. G., Gothot, A., Lechanteur, C., & Beguin, Y. (2010). The umbilical cord matrix is a better source of mesenchymal stem cells (MSC) than the umbilical cord blood. Cell biology international, 34(7), 693–701. https://doi.org/10.1042/CBI20090414
Zhang, L. P., Liao, J. X., Liu, Y. Y., Luo, H. L., & Zhang, W. J. (2023). Potential therapeutic effect of olfactory ensheathing cells in neurological diseases: neurodegenerative diseases and peripheral nerve injuries. Frontiers in immunology, 14, 1280186. https://doi.org/10.3389/fimmu.2023.1280186
Zhang, Q., & Lai, D. (2020). Application of human amniotic epithelial cells in regenerative medicine: a systematic review. Stem cell research & therapy, 11(1), 439. https://doi.org/10.1186/s13287-020-01951-w
Zhou, W., Lin, J., Zhao, K., Jin, K., He, Q., Hu, Y., Feng, G., Cai, Y., Xia, C., Liu, H., Shen, W., Hu, X., & Ouyang, H. (2019). Single-Cell Profiles and Clinically Useful Properties of Human Mesenchymal Stem Cells of Adipose and Bone Marrow Origin. The American journal of sports medicine, 47(7), 1722–1733. https://doi.org/10.1177/0363546519848678
Zhou, Y., Yamamoto, Y., Xiao, Z., & Ochiya, T. (2019). The Immunomodulatory Functions of Mesenchymal Stromal/Stem Cells Mediated via Paracrine Activity. Journal of clinical medicine, 8(7), 1025. https://doi.org/10.3390/jcm8071025