[Mesenchymal stem cells from human cord blood promote engraftment of human umbilical cord blood-derived CD34+ cells in NOD/SCID mice]. 2005

Dun-hua Zhou, and Shao-liang Huang, and Ke Huang, and Yan-feng Wu, and Rong Bao, and Jing Wei, and Xu-chao Zhang, and Yang Li
Department of Pediatrics, Second Affiliated Hospital of Sun Yat-Sen University, Guangzhou 510120, China.

OBJECTIVE To explore whether the co-transplantation of mesenchymal stem cells (MSC) from human umbilical cord blood (UCB) with UCB-derived CD34(+) cells in NOD/SCID mice could promote engraftment and accelerate hematopoiesis recovery. METHODS After sublethal irradiated ((60)Co 2.5 Gy), NOD/SCID mice received within 24 hours UCB CD34(+) cells (1 x 10(5) per mouse for low dosage group or 1 x 10(6) per mouse for high dosage group) with or without human UCB-derived MSC (1 x 10(6) per mouse) transplantation by lateral tail vein injection. Peripheral blood cells of transplanted mice were measured for white blood cell count, hemoglobin and platelet count at 10th, 20th, 30th, 40th and 56th day. At the end of 8th week after transplantation, all the alive mice were sacrificed and human derived CD45(+), CD45(+)CD3(+), CD45(+)CD19(+), CD45(+)CD33(+) cells in the bone marrow (BM) were assayed by flow cytometry. RESULTS (1) In the low dosage group, co-transplantation of MSC significantly raised the engraftment rate (26.02% vs 16.52%) (P < 0.05). (2) The survival rate in high dosage group was 80% for co-transplantation mice and 70% for CD34(+) cells alone transplantation mice. The survival rate in low dosage group was 70% for co-transplantation mice and 50% in CD34(+) cells transplantation mice. (3) In both dosages groups co-transplantation accelerated the hematopoiesis recovery. (4) At the end of 8 weeks after transplantation, in low dosage group, CD45(+)CD33(+) and CD45(+)CD19(+) cells were more in co-transplantation mice than in CD34(+) cells alone transplantation mice, but in high dosage group, the percentage of these two kinds of cells had no difference. In both dosage groups the percentage of CD45(+)CD41a(+) cells were higher in co-transplantation than in transplantation alone mice. CD45(+)CD3(+) cells were low in all groups. CONCLUSIONS (1) In low dosage transplantation, human UCB MSC could promote human CD34(+) cells engraftment in transplanted mice. (2) Co-transplantation of human UCB MSC and human UCB CD34(+) cells could significantly promote the hematopoiesis reconstitution and improve the survival rate of NOD/SCID mice. (3) MSC could promote human UCB CD34(+) cells to differentiated into B-lymphocytes, granulocyte and megakaryocyte in vivo.

UI MeSH Term Description Entries
D005260 Female Females
D005312 Fetal Blood Blood of the fetus. Exchange of nutrients and waste between the fetal and maternal blood occurs via the PLACENTA. The cord blood is blood contained in the umbilical vessels (UMBILICAL CORD) at the time of delivery. Cord Blood,Umbilical Cord Blood,Blood, Cord,Blood, Fetal,Blood, Umbilical Cord,Bloods, Cord,Bloods, Fetal,Bloods, Umbilical Cord,Cord Blood, Umbilical,Cord Bloods,Cord Bloods, Umbilical,Fetal Bloods,Umbilical Cord Bloods
D006410 Hematopoiesis The development and formation of various types of BLOOD CELLS. Hematopoiesis can take place in the BONE MARROW (medullary) or outside the bone marrow (HEMATOPOIESIS, EXTRAMEDULLARY). Hematopoiesis, Medullary,Haematopoiesis,Medullary Hematopoiesis
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D014183 Transplantation, Heterologous Transplantation between animals of different species. Xenotransplantation,Heterograft Transplantation,Heterografting,Heterologous Transplantation,Xenograft Transplantation,Xenografting,Transplantation, Heterograft,Transplantation, Xenograft
D016513 Mice, SCID Mice homozygous for the mutant autosomal recessive gene "scid" which is located on the centromeric end of chromosome 16. These mice lack mature, functional lymphocytes and are thus highly susceptible to lethal opportunistic infections if not chronically treated with antibiotics. The lack of B- and T-cell immunity resembles severe combined immunodeficiency (SCID) syndrome in human infants. SCID mice are useful as animal models since they are receptive to implantation of a human immune system producing SCID-human (SCID-hu) hematochimeric mice. SCID Mice,SCID-hu Mice,Severe Combined Immunodeficient Mice,Immunodeficient Mice, Severe Combined,Mouse, SCID,Mouse, SCID-hu,Mice, SCID-hu,Mouse, SCID hu,SCID Mouse,SCID hu Mice,SCID-hu Mouse
D016688 Mice, Inbred NOD A strain of non-obese diabetic mice developed in Japan that has been widely studied as a model for T-cell-dependent autoimmune insulin-dependent diabetes mellitus in which insulitis is a major histopathologic feature, and in which genetic susceptibility is strongly MHC-linked. Non-Obese Diabetic Mice,Mice, NOD,Mouse, Inbred NOD,Mouse, NOD,Non-Obese Diabetic Mouse,Nonobese Diabetic Mice,Nonobese Diabetic Mouse,Diabetic Mice, Non-Obese,Diabetic Mice, Nonobese,Diabetic Mouse, Non-Obese,Diabetic Mouse, Nonobese,Inbred NOD Mice,Inbred NOD Mouse,Mice, Non-Obese Diabetic,Mice, Nonobese Diabetic,Mouse, Non-Obese Diabetic,Mouse, Nonobese Diabetic,NOD Mice,NOD Mice, Inbred,NOD Mouse,NOD Mouse, Inbred,Non Obese Diabetic Mice,Non Obese Diabetic Mouse
D045164 Mesenchymal Stem Cell Transplantation Transfer of MESENCHYMAL STEM CELLS between individuals within the same species (TRANSPLANTATION, HOMOLOGOUS) or transfer within the same individual (TRANSPLANTATION, AUTOLOGOUS). Stem Cell Transplantation, Mesenchymal,Transplantation, Mesenchymal Stem Cell
D051379 Mice The common name for the genus Mus. Mice, House,Mus,Mus musculus,Mice, Laboratory,Mouse,Mouse, House,Mouse, Laboratory,Mouse, Swiss,Mus domesticus,Mus musculus domesticus,Swiss Mice,House Mice,House Mouse,Laboratory Mice,Laboratory Mouse,Mice, Swiss,Swiss Mouse,domesticus, Mus musculus

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